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								/**
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								 * Marlin 3D Printer Firmware
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								 * Copyright (C) 2016 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
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								 *
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								 * Based on Sprinter and grbl.
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								 * Copyright (C) 2011 Camiel Gubbels / Erik van der Zalm
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								 *
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								 * This program is free software: you can redistribute it and/or modify
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								 * it under the terms of the GNU General Public License as published by
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								 * the Free Software Foundation, either version 3 of the License, or
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								 * (at your option) any later version.
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								 *
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								 * This program is distributed in the hope that it will be useful,
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								 * but WITHOUT ANY WARRANTY; without even the implied warranty of
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								 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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								 * GNU General Public License for more details.
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								 *
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								 * You should have received a copy of the GNU General Public License
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								 * along with this program.  If not, see <http://www.gnu.org/licenses/>.
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								 *
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								 */
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								#include "qr_solve.h"
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								#if ENABLED(AUTO_BED_LEVELING_GRID)
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								#include <stdlib.h>
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								#include <math.h>
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								//# include "r8lib.h"
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								int i4_min(int i1, int i2)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    I4_MIN returns the smaller of two I4's.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    29 August 2006
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Input, int I1, I2, two integers to be compared.
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								    Output, int I4_MIN, the smaller of I1 and I2.
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								*/
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								{
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								  return (i1 < i2) ? i1 : i2;
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								}
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								double r8_epsilon(void)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    R8_EPSILON returns the R8 round off unit.
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								  Discussion:
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								    R8_EPSILON is a number R which is a power of 2 with the property that,
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								    to the precision of the computer's arithmetic,
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								      1 < 1 + R
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								    but
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								      1 = ( 1 + R / 2 )
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    01 September 2012
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Output, double R8_EPSILON, the R8 round-off unit.
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								*/
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								{
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								  const double value = 2.220446049250313E-016;
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								  return value;
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								}
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								double r8_max(double x, double y)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    R8_MAX returns the maximum of two R8's.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    07 May 2006
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Input, double X, Y, the quantities to compare.
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								    Output, double R8_MAX, the maximum of X and Y.
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								*/
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								{
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								  return (y < x) ? x : y;
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								}
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								double r8_abs(double x)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    R8_ABS returns the absolute value of an R8.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    07 May 2006
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Input, double X, the quantity whose absolute value is desired.
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								    Output, double R8_ABS, the absolute value of X.
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								*/
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								{
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								  return (x < 0.0) ? -x : x;
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								}
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								double r8_sign(double x)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    R8_SIGN returns the sign of an R8.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    08 May 2006
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Input, double X, the number whose sign is desired.
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								    Output, double R8_SIGN, the sign of X.
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								*/
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								{
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								  return (x < 0.0) ? -1.0 : 1.0;
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								}
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								double r8mat_amax(int m, int n, double a[])
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    R8MAT_AMAX returns the maximum absolute value entry of an R8MAT.
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								  Discussion:
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								    An R8MAT is a doubly dimensioned array of R8 values, stored as a vector
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								    in column-major order.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    07 September 2012
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Input, int M, the number of rows in A.
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								    Input, int N, the number of columns in A.
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								    Input, double A[M*N], the M by N matrix.
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								    Output, double R8MAT_AMAX, the maximum absolute value entry of A.
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								*/
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								{
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								  double value = r8_abs(a[0 + 0 * m]);
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								  for (int j = 0; j < n; j++) {
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								    for (int i = 0; i < m; i++) {
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								      NOLESS(value, r8_abs(a[i + j * m]));
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								    }
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								  }
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								  return value;
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								}
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								void r8mat_copy(double a2[], int m, int n, double a1[])
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    R8MAT_COPY_NEW copies one R8MAT to a "new" R8MAT.
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								  Discussion:
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								    An R8MAT is a doubly dimensioned array of R8 values, stored as a vector
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								    in column-major order.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    26 July 2008
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								  Author:
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								    John Burkardt
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								  Parameters:
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								    Input, int M, N, the number of rows and columns.
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								    Input, double A1[M*N], the matrix to be copied.
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								    Output, double R8MAT_COPY_NEW[M*N], the copy of A1.
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								*/
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								{
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								  for (int j = 0; j < n; j++) {
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								    for (int i = 0; i < m; i++)
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								      a2[i + j * m] = a1[i + j * m];
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								  }
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								}
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								/******************************************************************************/
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								void daxpy(int n, double da, double dx[], int incx, double dy[], int incy)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    DAXPY computes constant times a vector plus a vector.
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								  Discussion:
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								    This routine uses unrolled loops for increments equal to one.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    30 March 2007
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								  Author:
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								    C version by John Burkardt
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								  Reference:
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								    Jack Dongarra, Cleve Moler, Jim Bunch, Pete Stewart,
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								    LINPACK User's Guide,
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								    SIAM, 1979.
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								    Charles Lawson, Richard Hanson, David Kincaid, Fred Krogh,
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								    Basic Linear Algebra Subprograms for Fortran Usage,
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								    Algorithm 539,
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								    ACM Transactions on Mathematical Software,
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								    Volume 5, Number 3, September 1979, pages 308-323.
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								  Parameters:
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								    Input, int N, the number of elements in DX and DY.
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								    Input, double DA, the multiplier of DX.
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								    Input, double DX[*], the first vector.
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								    Input, int INCX, the increment between successive entries of DX.
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								    Input/output, double DY[*], the second vector.
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								    On output, DY[*] has been replaced by DY[*] + DA * DX[*].
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								    Input, int INCY, the increment between successive entries of DY.
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								*/
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								{
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								  if (n <= 0 || da == 0.0) return;
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								  int i, ix, iy, m;
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								  /**
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								    Code for unequal increments or equal increments
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								    not equal to 1.
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								  */
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								  if (incx != 1 || incy != 1) {
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								    if (0 <= incx)
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								      ix = 0;
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								    else
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								      ix = (- n + 1) * incx;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    if (0 <= incy)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      iy = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    else
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      iy = (- n + 1) * incy;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 0; i < n; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dy[iy] = dy[iy] + da * dx[ix];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      ix = ix + incx;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      iy = iy + incy;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Code for both increments equal to 1.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  else {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    m = n % 4;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    for (i = 0; i < m; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dy[i] = dy[i] + da * dx[i];
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    for (i = m; i < n; i = i + 4) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dy[i  ] = dy[i  ] + da * dx[i  ];
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      dy[i + 1] = dy[i + 1] + da * dx[i + 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dy[i + 2] = dy[i + 2] + da * dx[i + 2];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dy[i + 3] = dy[i + 3] + da * dx[i + 3];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								double ddot(int n, double dx[], int incx, double dy[], int incy)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								/**
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Purpose:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DDOT forms the dot product of two vectors.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Discussion:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    This routine uses unrolled loops for increments equal to one.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Licensing:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    This code is distributed under the GNU LGPL license.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Modified:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    30 March 2007
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Author:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    C version by John Burkardt
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Reference:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Jack Dongarra, Cleve Moler, Jim Bunch, Pete Stewart,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    LINPACK User's Guide,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    SIAM, 1979.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Charles Lawson, Richard Hanson, David Kincaid, Fred Krogh,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Basic Linear Algebra Subprograms for Fortran Usage,
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Algorithm 539,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    ACM Transactions on Mathematical Software,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Volume 5, Number 3, September 1979, pages 308-323.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Parameters:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int N, the number of entries in the vectors.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, double DX[*], the first vector.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int INCX, the increment between successive entries in DX.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, double DY[*], the second vector.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int INCY, the increment between successive entries in DY.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Output, double DDOT, the sum of the product of the corresponding
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    entries of DX and DY.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								*/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								{
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (n <= 0) return 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  int i, m;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  double dtemp = 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Code for unequal increments or equal increments
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    not equal to 1.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  if (incx != 1 || incy != 1) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    int ix = (incx >= 0) ? 0 : (-n + 1) * incx,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        iy = (incy >= 0) ? 0 : (-n + 1) * incy;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 0; i < n; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dtemp += dx[ix] * dy[iy];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      ix = ix + incx;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      iy = iy + incy;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Code for both increments equal to 1.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  else {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    m = n % 5;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    for (i = 0; i < m; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dtemp += dx[i] * dy[i];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = m; i < n; i = i + 5) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      dtemp += dx[i] * dy[i]
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              + dx[i + 1] * dy[i + 1]
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              + dx[i + 2] * dy[i + 2]
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              + dx[i + 3] * dy[i + 3]
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              + dx[i + 4] * dy[i + 4];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  return dtemp;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								double dnrm2(int n, double x[], int incx)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								/**
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Purpose:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DNRM2 returns the euclidean norm of a vector.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Discussion:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								     DNRM2 ( X ) = sqrt ( X' * X )
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Licensing:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    This code is distributed under the GNU LGPL license.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Modified:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    30 March 2007
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Author:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    C version by John Burkardt
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Reference:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Jack Dongarra, Cleve Moler, Jim Bunch, Pete Stewart,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    LINPACK User's Guide,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    SIAM, 1979.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Charles Lawson, Richard Hanson, David Kincaid, Fred Krogh,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Basic Linear Algebra Subprograms for Fortran Usage,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Algorithm 539,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    ACM Transactions on Mathematical Software,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Volume 5, Number 3, September 1979, pages 308-323.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Parameters:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int N, the number of entries in the vector.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, double X[*], the vector whose norm is to be computed.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int INCX, the increment between successive entries of X.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Output, double DNRM2, the Euclidean norm of X.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								*/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								{
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  double norm;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (n < 1 || incx < 1)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    norm = 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  else if (n == 1)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    norm = r8_abs(x[0]);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  else {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    double scale = 0.0, ssq = 1.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    int ix = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (int i = 0; i < n; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      if (x[ix] != 0.0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        double absxi = r8_abs(x[ix]);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        if (scale < absxi) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          ssq = 1.0 + ssq * (scale / absxi) * (scale / absxi);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          scale = absxi;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								        }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        else
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								          ssq = ssq + (absxi / scale) * (absxi / scale);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      ix += incx;
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    norm = scale * sqrt(ssq);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  return norm;
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
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							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								void dqrank(double a[], int lda, int m, int n, double tol, int* kr,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								            int jpvt[], double qraux[])
							 | 
						
					
						
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								/******************************************************************************/
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								/**
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Purpose:
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DQRANK computes the QR factorization of a rectangular matrix.
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								  Discussion:
							 | 
						
					
						
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    This routine is used in conjunction with DQRLSS to solve
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    overdetermined, underdetermined and singular linear systems
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    in a least squares sense.
							 | 
						
					
						
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DQRANK uses the LINPACK subroutine DQRDC to compute the QR
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    factorization, with column pivoting, of an M by N matrix A.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    The numerical rank is determined using the tolerance TOL.
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Note that on output, ABS ( A(1,1) ) / ABS ( A(KR,KR) ) is an estimate
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    of the condition number of the matrix of independent columns,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    and of R.  This estimate will be <= 1/TOL.
							 | 
						
					
						
							| 
								
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							 | 
						
					
						
							| 
								
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							 | 
							
							
								  Licensing:
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    This code is distributed under the GNU LGPL license.
							 | 
						
					
						
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							 | 
						
					
						
							| 
								
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								  Modified:
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    21 April 2012
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
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								  Author:
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
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							 | 
							
							
								    C version by John Burkardt.
							 | 
						
					
						
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							 | 
						
					
						
							| 
								
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								  Reference:
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Jack Dongarra, Cleve Moler, Jim Bunch, Pete Stewart,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    LINPACK User's Guide,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    SIAM, 1979,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    ISBN13: 978-0-898711-72-1,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    LC: QA214.L56.
							 | 
						
					
						
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							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Parameters:
							 | 
						
					
						
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							 | 
							
							
								
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							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input/output, double A[LDA*N].  On input, the matrix whose
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    decomposition is to be computed.  On output, the information from DQRDC.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    The triangular matrix R of the QR factorization is contained in the
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    upper triangle and information needed to recover the orthogonal
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    matrix Q is stored below the diagonal in A and in the vector QRAUX.
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int LDA, the leading dimension of A, which must
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    be at least M.
							 | 
						
					
						
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int M, the number of rows of A.
							 | 
						
					
						
							| 
								
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
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								    Input, int N, the number of columns of A.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, double TOL, a relative tolerance used to determine the
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    numerical rank.  The problem should be scaled so that all the elements
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    of A have roughly the same absolute accuracy, EPS.  Then a reasonable
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    value for TOL is roughly EPS divided by the magnitude of the largest
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    element.
							 | 
						
					
						
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							| 
								
							 | 
							
								
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								    Output, int *KR, the numerical rank.
							 | 
						
					
						
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							| 
								
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							 | 
							
							
								    Output, int JPVT[N], the pivot information from DQRDC.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Columns JPVT(1), ..., JPVT(KR) of the original matrix are linearly
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    independent to within the tolerance TOL and the remaining columns
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    are linearly dependent.
							 | 
						
					
						
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							| 
								
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							 | 
							
							
								    Output, double QRAUX[N], will contain extra information defining
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    the QR factorization.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								*/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								{
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  double work[n];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  for (int i = 0; i < n; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    jpvt[i] = 0;
							 | 
						
					
						
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								  int job = 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  dqrdc(a, lda, m, n, qraux, jpvt, work, job);
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  *kr = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  int k = i4_min(m, n);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  for (int j = 0; j < k; j++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    if (r8_abs(a[j + j * lda]) <= tol * r8_abs(a[0 + 0 * lda]))
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      return;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    *kr = j + 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								void dqrdc(double a[], int lda, int n, int p, double qraux[], int jpvt[],
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								           double work[], int job)
							 | 
						
					
						
							| 
								
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							| 
								
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							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								/**
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Purpose:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DQRDC computes the QR factorization of a real rectangular matrix.
							 | 
						
					
						
							| 
								
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							 | 
						
					
						
							| 
								
							 | 
							
								
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							 | 
							
							
								  Discussion:
							 | 
						
					
						
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							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DQRDC uses Householder transformations.
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Column pivoting based on the 2-norms of the reduced columns may be
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    performed at the user's option.
							 | 
						
					
						
							| 
								
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							 | 
						
					
						
							| 
								
							 | 
							
								
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							 | 
							
							
								  Licensing:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    This code is distributed under the GNU LGPL license.
							 | 
						
					
						
							| 
								
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							 | 
							
								
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							 | 
						
					
						
							| 
								
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								  Modified:
							 | 
						
					
						
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							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    07 June 2005
							 | 
						
					
						
							| 
								
							 | 
							
								
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							 | 
						
					
						
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								  Author:
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
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							 | 
							
							
								    C version by John Burkardt.
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
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							 | 
							
							
								  Reference:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Jack Dongarra, Cleve Moler, Jim Bunch and Pete Stewart,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    LINPACK User's Guide,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    SIAM, (Society for Industrial and Applied Mathematics),
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    3600 University City Science Center,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Philadelphia, PA, 19104-2688.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    ISBN 0-89871-172-X
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Parameters:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input/output, double A(LDA,P).  On input, the N by P matrix
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    whose decomposition is to be computed.  On output, A contains in
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    its upper triangle the upper triangular matrix R of the QR
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    factorization.  Below its diagonal A contains information from
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    which the orthogonal part of the decomposition can be recovered.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Note that if pivoting has been requested, the decomposition is not that
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    of the original matrix A but that of A with its columns permuted
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    as described by JPVT.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int LDA, the leading dimension of the array A.  LDA must
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    be at least N.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int N, the number of rows of the matrix A.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int P, the number of columns of the matrix A.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Output, double QRAUX[P], contains further information required
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    to recover the orthogonal part of the decomposition.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input/output, integer JPVT[P].  On input, JPVT contains integers that
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    control the selection of the pivot columns.  The K-th column A(*,K) of A
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    is placed in one of three classes according to the value of JPVT(K).
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      > 0, then A(K) is an initial column.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      = 0, then A(K) is a free column.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      < 0, then A(K) is a final column.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Before the decomposition is computed, initial columns are moved to
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    the beginning of the array A and final columns to the end.  Both
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    initial and final columns are frozen in place during the computation
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    and only free columns are moved.  At the K-th stage of the
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    reduction, if A(*,K) is occupied by a free column it is interchanged
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    with the free column of largest reduced norm.  JPVT is not referenced
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    if JOB == 0.  On output, JPVT(K) contains the index of the column of the
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    original matrix that has been interchanged into the K-th column, if
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    pivoting was requested.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Workspace, double WORK[P].  WORK is not referenced if JOB == 0.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int JOB, initiates column pivoting.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    0, no pivoting is done.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    nonzero, pivoting is done.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								*/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								{
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int jp;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  int j;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int lup;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int maxj;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  double maxnrm, nrmxl, t, tt;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int pl = 1, pu = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    If pivoting is requested, rearrange the columns.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  if (job != 0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (j = 1; j <= p; j++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      int swapj = (0 < jpvt[j - 1]);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      jpvt[j - 1] = (jpvt[j - 1] < 0) ? -j : j;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      if (swapj) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        if (j != pl)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          dswap(n, a + 0 + (pl - 1)*lda, 1, a + 0 + (j - 1), 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        jpvt[j - 1] = jpvt[pl - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        jpvt[pl - 1] = j;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        pl++;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    pu = p;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    for (j = p; 1 <= j; j--) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      if (jpvt[j - 1] < 0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        jpvt[j - 1] = -jpvt[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        if (j != pu) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          dswap(n, a + 0 + (pu - 1)*lda, 1, a + 0 + (j - 1)*lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          jp = jpvt[pu - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          jpvt[pu - 1] = jpvt[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          jpvt[j - 1] = jp;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        pu = pu - 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Compute the norms of the free columns.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  for (j = pl; j <= pu; j++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    qraux[j - 1] = dnrm2(n, a + 0 + (j - 1) * lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  for (j = pl; j <= pu; j++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    work[j - 1] = qraux[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Perform the Householder reduction of A.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  lup = i4_min(n, p);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  for (int l = 1; l <= lup; l++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      Bring the column of largest norm into the pivot position.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    if (pl <= l && l < pu) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      maxnrm = 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      maxj = l;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      for (j = l; j <= pu; j++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        if (maxnrm < qraux[j - 1]) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          maxnrm = qraux[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          maxj = j;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      if (maxj != l) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        dswap(n, a + 0 + (l - 1)*lda, 1, a + 0 + (maxj - 1)*lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        qraux[maxj - 1] = qraux[l - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        work[maxj - 1] = work[l - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        jp = jpvt[maxj - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        jpvt[maxj - 1] = jpvt[l - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        jpvt[l - 1] = jp;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      Compute the Householder transformation for column L.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    qraux[l - 1] = 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    if (l != n) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      nrmxl = dnrm2(n - l + 1, a + l - 1 + (l - 1) * lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      if (nrmxl != 0.0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        if (a[l - 1 + (l - 1)*lda] != 0.0)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          nrmxl = nrmxl * r8_sign(a[l - 1 + (l - 1) * lda]);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        dscal(n - l + 1, 1.0 / nrmxl, a + l - 1 + (l - 1)*lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        a[l - 1 + (l - 1)*lda] = 1.0 + a[l - 1 + (l - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								        /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								          Apply the transformation to the remaining columns, updating the norms.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        for (j = l + 1; j <= p; j++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          t = -ddot(n - l + 1, a + l - 1 + (l - 1) * lda, 1, a + l - 1 + (j - 1) * lda, 1)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              / a[l - 1 + (l - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          daxpy(n - l + 1, t, a + l - 1 + (l - 1)*lda, 1, a + l - 1 + (j - 1)*lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          if (pl <= j && j <= pu) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								            if (qraux[j - 1] != 0.0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              tt = 1.0 - pow(r8_abs(a[l - 1 + (j - 1) * lda]) / qraux[j - 1], 2);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              tt = r8_max(tt, 0.0);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              t = tt;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								              tt = 1.0 + 0.05 * tt * pow(qraux[j - 1] / work[j - 1], 2);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              if (tt != 1.0)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								                qraux[j - 1] = qraux[j - 1] * sqrt(t);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              else {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								                qraux[j - 1] = dnrm2(n - l, a + l + (j - 1) * lda, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								                work[j - 1] = qraux[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								            }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								        /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								          Save the transformation.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        qraux[l - 1] = a[l - 1 + (l - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        a[l - 1 + (l - 1)*lda] = -nrmxl;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
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								      }
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								    }
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								  }
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								}
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								/******************************************************************************/
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								int dqrls(double a[], int lda, int m, int n, double tol, int* kr, double b[],
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								          double x[], double rsd[], int jpvt[], double qraux[], int itask)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    DQRLS factors and solves a linear system in the least squares sense.
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								  Discussion:
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								    The linear system may be overdetermined, underdetermined or singular.
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								    The solution is obtained using a QR factorization of the
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								    coefficient matrix.
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								    DQRLS can be efficiently used to solve several least squares
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								    problems with the same matrix A.  The first system is solved
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								    with ITASK = 1.  The subsequent systems are solved with
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								    ITASK = 2, to avoid the recomputation of the matrix factors.
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								    The parameters KR, JPVT, and QRAUX must not be modified
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								    between calls to DQRLS.
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								    DQRLS is used to solve in a least squares sense
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								    overdetermined, underdetermined and singular linear systems.
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								    The system is A*X approximates B where A is M by N.
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								    B is a given M-vector, and X is the N-vector to be computed.
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								    A solution X is found which minimimzes the sum of squares (2-norm)
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								    of the residual,  A*X - B.
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								    The numerical rank of A is determined using the tolerance TOL.
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								    DQRLS uses the LINPACK subroutine DQRDC to compute the QR
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								    factorization, with column pivoting, of an M by N matrix A.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    10 September 2012
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								  Author:
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								    C version by John Burkardt.
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								  Reference:
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								    David Kahaner, Cleve Moler, Steven Nash,
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								    Numerical Methods and Software,
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								    Prentice Hall, 1989,
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								    ISBN: 0-13-627258-4,
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								    LC: TA345.K34.
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								  Parameters:
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								    Input/output, double A[LDA*N], an M by N matrix.
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								    On input, the matrix whose decomposition is to be computed.
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								    In a least squares data fitting problem, A(I,J) is the
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								    value of the J-th basis (model) function at the I-th data point.
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								    On output, A contains the output from DQRDC.  The triangular matrix R
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								    of the QR factorization is contained in the upper triangle and
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								    information needed to recover the orthogonal matrix Q is stored
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								    below the diagonal in A and in the vector QRAUX.
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								    Input, int LDA, the leading dimension of A.
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								    Input, int M, the number of rows of A.
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								    Input, int N, the number of columns of A.
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								    Input, double TOL, a relative tolerance used to determine the
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								    numerical rank.  The problem should be scaled so that all the elements
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								    of A have roughly the same absolute accuracy EPS.  Then a reasonable
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								    value for TOL is roughly EPS divided by the magnitude of the largest
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								    element.
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								    Output, int *KR, the numerical rank.
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								    Input, double B[M], the right hand side of the linear system.
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								    Output, double X[N], a least squares solution to the linear
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								    system.
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								    Output, double RSD[M], the residual, B - A*X.  RSD may
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								    overwrite B.
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								    Workspace, int JPVT[N], required if ITASK = 1.
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								    Columns JPVT(1), ..., JPVT(KR) of the original matrix are linearly
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								    independent to within the tolerance TOL and the remaining columns
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								    are linearly dependent.  ABS ( A(1,1) ) / ABS ( A(KR,KR) ) is an estimate
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								    of the condition number of the matrix of independent columns,
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								    and of R.  This estimate will be <= 1/TOL.
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								    Workspace, double QRAUX[N], required if ITASK = 1.
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								    Input, int ITASK.
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								    1, DQRLS factors the matrix A and solves the least squares problem.
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								    2, DQRLS assumes that the matrix A was factored with an earlier
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								       call to DQRLS, and only solves the least squares problem.
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								    Output, int DQRLS, error code.
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								    0:  no error
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								    -1: LDA < M   (fatal error)
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								    -2: N < 1     (fatal error)
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								    -3: ITASK < 1 (fatal error)
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								*/
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								{
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								  int ind;
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								  if (lda < m) {
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								    /*fprintf ( stderr, "\n" );
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								    fprintf ( stderr, "DQRLS - Fatal error!\n" );
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								    fprintf ( stderr, "  LDA < M.\n" );*/
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								    ind = -1;
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								    return ind;
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								  }
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								  if (n <= 0) {
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								    /*fprintf ( stderr, "\n" );
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								    fprintf ( stderr, "DQRLS - Fatal error!\n" );
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								    fprintf ( stderr, "  N <= 0.\n" );*/
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								    ind = -2;
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								    return ind;
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								  }
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								  if (itask < 1) {
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								    /*fprintf ( stderr, "\n" );
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								    fprintf ( stderr, "DQRLS - Fatal error!\n" );
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								    fprintf ( stderr, "  ITASK < 1.\n" );*/
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								    ind = -3;
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								    return ind;
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								  }
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								  ind = 0;
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								  /**
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								    Factor the matrix.
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								  */
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								  if (itask == 1)
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								    dqrank(a, lda, m, n, tol, kr, jpvt, qraux);
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								  /**
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								    Solve the least-squares problem.
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								  */
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								  dqrlss(a, lda, m, n, *kr, b, x, rsd, jpvt, qraux);
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								  return ind;
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								}
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								/******************************************************************************/
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								void dqrlss(double a[], int lda, int m, int n, int kr, double b[], double x[],
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								            double rsd[], int jpvt[], double qraux[])
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    DQRLSS solves a linear system in a least squares sense.
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								  Discussion:
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								    DQRLSS must be preceded by a call to DQRANK.
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								    The system is to be solved is
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								      A * X = B
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								    where
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								      A is an M by N matrix with rank KR, as determined by DQRANK,
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								      B is a given M-vector,
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								      X is the N-vector to be computed.
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								    A solution X, with at most KR nonzero components, is found which
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								    minimizes the 2-norm of the residual (A*X-B).
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								    Once the matrix A has been formed, DQRANK should be
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								    called once to decompose it.  Then, for each right hand
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								    side B, DQRLSS should be called once to obtain the
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								    solution and residual.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    10 September 2012
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								  Author:
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								    C version by John Burkardt
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								  Parameters:
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								    Input, double A[LDA*N], the QR factorization information
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								    from DQRANK.  The triangular matrix R of the QR factorization is
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								    contained in the upper triangle and information needed to recover
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								    the orthogonal matrix Q is stored below the diagonal in A and in
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								    the vector QRAUX.
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								    Input, int LDA, the leading dimension of A, which must
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								    be at least M.
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								    Input, int M, the number of rows of A.
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								    Input, int N, the number of columns of A.
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								    Input, int KR, the rank of the matrix, as estimated by DQRANK.
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								    Input, double B[M], the right hand side of the linear system.
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								    Output, double X[N], a least squares solution to the
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								    linear system.
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								    Output, double RSD[M], the residual, B - A*X.  RSD may
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								    overwrite B.
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								    Input, int JPVT[N], the pivot information from DQRANK.
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								    Columns JPVT[0], ..., JPVT[KR-1] of the original matrix are linearly
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								    independent to within the tolerance TOL and the remaining columns
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								    are linearly dependent.
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								    Input, double QRAUX[N], auxiliary information from DQRANK
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								    defining the QR factorization.
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								*/
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								{
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								  int i;
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								  int info;
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								  int j;
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								  int job;
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								  int k;
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								  double t;
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								  if (kr != 0) {
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								    job = 110;
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								    info = dqrsl(a, lda, m, kr, qraux, b, rsd, rsd, x, rsd, rsd, job); UNUSED(info);
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								  }
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								  for (i = 0; i < n; i++)
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								    jpvt[i] = - jpvt[i];
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								  for (i = kr; i < n; i++)
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								    x[i] = 0.0;
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								  for (j = 1; j <= n; j++) {
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								    if (jpvt[j - 1] <= 0) {
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								      k = - jpvt[j - 1];
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								      jpvt[j - 1] = k;
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								      while (k != j) {
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								        t = x[j - 1];
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								        x[j - 1] = x[k - 1];
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								        x[k - 1] = t;
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								        jpvt[k - 1] = -jpvt[k - 1];
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								        k = jpvt[k - 1];
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								      }
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								    }
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								  }
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								}
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								/******************************************************************************/
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								int dqrsl(double a[], int lda, int n, int k, double qraux[], double y[],
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								          double qy[], double qty[], double b[], double rsd[], double ab[], int job)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    DQRSL computes transformations, projections, and least squares solutions.
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								  Discussion:
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								    DQRSL requires the output of DQRDC.
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								    For K <= min(N,P), let AK be the matrix
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								      AK = ( A(JPVT[0]), A(JPVT(2)), ..., A(JPVT(K)) )
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								    formed from columns JPVT[0], ..., JPVT(K) of the original
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								    N by P matrix A that was input to DQRDC.  If no pivoting was
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								    done, AK consists of the first K columns of A in their
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								    original order.  DQRDC produces a factored orthogonal matrix Q
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								    and an upper triangular matrix R such that
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								      AK = Q * (R)
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								               (0)
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								    This information is contained in coded form in the arrays
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								    A and QRAUX.
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								    The parameters QY, QTY, B, RSD, and AB are not referenced
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								    if their computation is not requested and in this case
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								    can be replaced by dummy variables in the calling program.
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								    To save storage, the user may in some cases use the same
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								    array for different parameters in the calling sequence.  A
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								    frequently occurring example is when one wishes to compute
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								    any of B, RSD, or AB and does not need Y or QTY.  In this
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								    case one may identify Y, QTY, and one of B, RSD, or AB, while
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								    providing separate arrays for anything else that is to be
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								    computed.
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								    Thus the calling sequence
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								      dqrsl ( a, lda, n, k, qraux, y, dum, y, b, y, dum, 110, info )
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								    will result in the computation of B and RSD, with RSD
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								    overwriting Y.  More generally, each item in the following
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								    list contains groups of permissible identifications for
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								    a single calling sequence.
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								      1. (Y,QTY,B) (RSD) (AB) (QY)
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								      2. (Y,QTY,RSD) (B) (AB) (QY)
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								      3. (Y,QTY,AB) (B) (RSD) (QY)
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								      4. (Y,QY) (QTY,B) (RSD) (AB)
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								      5. (Y,QY) (QTY,RSD) (B) (AB)
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								      6. (Y,QY) (QTY,AB) (B) (RSD)
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								    In any group the value returned in the array allocated to
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								    the group corresponds to the last member of the group.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    07 June 2005
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								  Author:
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								    C version by John Burkardt.
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								  Reference:
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								    Jack Dongarra, Cleve Moler, Jim Bunch and Pete Stewart,
							 | 
						
					
						
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							 | 
							
							
								    LINPACK User's Guide,
							 | 
						
					
						
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							 | 
							
							
								    SIAM, (Society for Industrial and Applied Mathematics),
							 | 
						
					
						
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								    3600 University City Science Center,
							 | 
						
					
						
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								    Philadelphia, PA, 19104-2688.
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								    ISBN 0-89871-172-X
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								  Parameters:
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								    Input, double A[LDA*P], contains the output of DQRDC.
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								    Input, int LDA, the leading dimension of the array A.
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								    Input, int N, the number of rows of the matrix AK.  It must
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								    have the same value as N in DQRDC.
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								    Input, int K, the number of columns of the matrix AK.  K
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							 | 
							
							
								    must not be greater than min(N,P), where P is the same as in the
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								    calling sequence to DQRDC.
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								    Input, double QRAUX[P], the auxiliary output from DQRDC.
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								    Input, double Y[N], a vector to be manipulated by DQRSL.
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								    Output, double QY[N], contains Q * Y, if requested.
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								    Output, double QTY[N], contains Q' * Y, if requested.
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								    Output, double B[K], the solution of the least squares problem
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								      minimize norm2 ( Y - AK * B),
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								    if its computation has been requested.  Note that if pivoting was
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								    requested in DQRDC, the J-th component of B will be associated with
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								    column JPVT(J) of the original matrix A that was input into DQRDC.
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								    Output, double RSD[N], the least squares residual Y - AK * B,
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								    if its computation has been requested.  RSD is also the orthogonal
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								    projection of Y onto the orthogonal complement of the column space
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								    of AK.
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								    Output, double AB[N], the least squares approximation Ak * B,
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								    if its computation has been requested.  AB is also the orthogonal
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								    projection of Y onto the column space of A.
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								    Input, integer JOB, specifies what is to be computed.  JOB has
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								    the decimal expansion ABCDE, with the following meaning:
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								      if A != 0, compute QY.
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								      if B != 0, compute QTY.
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								      if C != 0, compute QTY and B.
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								      if D != 0, compute QTY and RSD.
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								      if E != 0, compute QTY and AB.
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								    Note that a request to compute B, RSD, or AB automatically triggers
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								    the computation of QTY, for which an array must be provided in the
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								    calling sequence.
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								    Output, int DQRSL, is zero unless the computation of B has
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								    been requested and R is exactly singular.  In this case, INFO is the
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								    index of the first zero diagonal element of R, and B is left unaltered.
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								*/
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								{
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								  int cab;
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								  int cb;
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								  int cqty;
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								  int cqy;
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								  int cr;
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								  int i;
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								  int info;
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								  int j;
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								  int jj;
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								  int ju;
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								  double t;
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								  double temp;
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								  /**
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								    Set INFO flag.
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								  */
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								  info = 0;
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								  /**
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								    Determine what is to be computed.
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								  */
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								  cqy  = ( job / 10000        != 0);
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								  cqty = ((job % 10000)       != 0);
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								  cb   = ((job %  1000) / 100 != 0);
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								  cr   = ((job %   100) /  10 != 0);
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								  cab  = ((job %    10)       != 0);
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								  ju = i4_min(k, n - 1);
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								  /**
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								    Special action when N = 1.
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								  */
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								  if (ju == 0) {
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								    if (cqy)
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								      qy[0] = y[0];
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								    if (cqty)
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								      qty[0] = y[0];
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								    if (cab)
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								      ab[0] = y[0];
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								    if (cb) {
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								      if (a[0 + 0 * lda] == 0.0)
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								        info = 1;
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								      else
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								        b[0] = y[0] / a[0 + 0 * lda];
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								    }
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								    if (cr)
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								      rsd[0] = 0.0;
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								    return info;
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								  }
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								  /**
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								    Set up to compute QY or QTY.
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								  */
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								  if (cqy) {
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								    for (i = 1; i <= n; i++)
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								      qy[i - 1] = y[i - 1];
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								  }
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								  if (cqty) {
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								    for (i = 1; i <= n; i++)
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								      qty[i - 1] = y[i - 1];
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								  }
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								  /**
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								    Compute QY.
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								  */
							 | 
						
					
						
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								  if (cqy) {
							 | 
						
					
						
							| 
								
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								    for (jj = 1; jj <= ju; jj++) {
							 | 
						
					
						
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								      j = ju - jj + 1;
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								      if (qraux[j - 1] != 0.0) {
							 | 
						
					
						
							| 
								
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							 | 
							
							
								        temp = a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
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							 | 
							
							
								        a[j - 1 + (j - 1)*lda] = qraux[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        t = -ddot(n - j + 1, a + j - 1 + (j - 1) * lda, 1, qy + j - 1, 1) / a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        daxpy(n - j + 1, t, a + j - 1 + (j - 1)*lda, 1, qy + j - 1, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
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								        a[j - 1 + (j - 1)*lda] = temp;
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
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							 | 
							
							
								    }
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							| 
								
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							 | 
							
							
								  }
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								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
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								    Compute Q'*Y.
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  if (cqty) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (j = 1; j <= ju; j++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      if (qraux[j - 1] != 0.0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        temp = a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        a[j - 1 + (j - 1)*lda] = qraux[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        t = -ddot(n - j + 1, a + j - 1 + (j - 1) * lda, 1, qty + j - 1, 1) / a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        daxpy(n - j + 1, t, a + j - 1 + (j - 1)*lda, 1, qty + j - 1, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        a[j - 1 + (j - 1)*lda] = temp;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Set up to compute B, RSD, or AB.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  if (cb) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 1; i <= k; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      b[i - 1] = qty[i - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (cab) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 1; i <= k; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      ab[i - 1] = qty[i - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (cr && k < n) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = k + 1; i <= n; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      rsd[i - 1] = qty[i - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (cab && k + 1 <= n) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = k + 1; i <= n; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      ab[i - 1] = 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (cr) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 1; i <= k; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      rsd[i - 1] = 0.0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Compute B.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  if (cb) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (jj = 1; jj <= k; jj++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      j = k - jj + 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      if (a[j - 1 + (j - 1)*lda] == 0.0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        info = j;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        break;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      b[j - 1] = b[j - 1] / a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      if (j != 1) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        t = -b[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        daxpy(j - 1, t, a + 0 + (j - 1)*lda, 1, b, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  /**
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    Compute RSD or AB as required.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  */
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  if (cr || cab) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (jj = 1; jj <= ju; jj++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      j = ju - jj + 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      if (qraux[j - 1] != 0.0) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        temp = a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        a[j - 1 + (j - 1)*lda] = qraux[j - 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        if (cr) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          t = -ddot(n - j + 1, a + j - 1 + (j - 1) * lda, 1, rsd + j - 1, 1)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              / a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          daxpy(n - j + 1, t, a + j - 1 + (j - 1)*lda, 1, rsd + j - 1, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								        if (cab) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          t = -ddot(n - j + 1, a + j - 1 + (j - 1) * lda, 1, ab + j - 1, 1)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								              / a[j - 1 + (j - 1) * lda];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								          daxpy(n - j + 1, t, a + j - 1 + (j - 1)*lda, 1, ab + j - 1, 1);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								        }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								        a[j - 1 + (j - 1)*lda] = temp;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  return info;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								void dscal(int n, double sa, double x[], int incx)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								/**
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Purpose:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    DSCAL scales a vector by a constant.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Licensing:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    This code is distributed under the GNU LGPL license.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Modified:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    30 March 2007
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Author:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    C version by John Burkardt
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Reference:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Jack Dongarra, Cleve Moler, Jim Bunch, Pete Stewart,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    LINPACK User's Guide,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    SIAM, 1979.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Charles Lawson, Richard Hanson, David Kincaid, Fred Krogh,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Basic Linear Algebra Subprograms for Fortran Usage,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Algorithm 539,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    ACM Transactions on Mathematical Software,
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Volume 5, Number 3, September 1979, pages 308-323.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  Parameters:
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int N, the number of entries in the vector.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, double SA, the multiplier.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input/output, double X[*], the vector to be scaled.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    Input, int INCX, the increment between successive entries of X.
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								*/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								{
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int i;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int ix;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  int m;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (n <= 0) return;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  if (incx == 1) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    m = n % 5;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 0; i < m; i++)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      x[i] = sa * x[i];
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    for (i = m; i < n; i = i + 5) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      x[i]   = sa * x[i];
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      x[i + 1] = sa * x[i + 1];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      x[i + 2] = sa * x[i + 2];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      x[i + 3] = sa * x[i + 3];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      x[i + 4] = sa * x[i + 4];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  else {
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								    if (0 <= incx)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      ix = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    else
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
							 | 
							
								
							 | 
							
							
								      ix = (- n + 1) * incx;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    for (i = 0; i < n; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      x[ix] = sa * x[ix];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								      ix = ix + incx;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								    }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  }
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								/******************************************************************************/
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
									
										
									
								
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								void dswap(int n, double x[], int incx, double y[], int incy)
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    DSWAP interchanges two vectors.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    30 March 2007
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								  Author:
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								    C version by John Burkardt
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								  Reference:
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								    Jack Dongarra, Cleve Moler, Jim Bunch, Pete Stewart,
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								    LINPACK User's Guide,
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								    SIAM, 1979.
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								    Charles Lawson, Richard Hanson, David Kincaid, Fred Krogh,
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								    Basic Linear Algebra Subprograms for Fortran Usage,
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								    Algorithm 539,
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								    ACM Transactions on Mathematical Software,
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								    Volume 5, Number 3, September 1979, pages 308-323.
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								  Parameters:
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								    Input, int N, the number of entries in the vectors.
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								    Input/output, double X[*], one of the vectors to swap.
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								    Input, int INCX, the increment between successive entries of X.
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								    Input/output, double Y[*], one of the vectors to swap.
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								    Input, int INCY, the increment between successive elements of Y.
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								*/
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								{
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								  if (n <= 0) return;
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								  int i, ix, iy, m;
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								  double temp;
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								  if (incx == 1 && incy == 1) {
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								    m = n % 3;
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								    for (i = 0; i < m; i++) {
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								      temp = x[i];
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								      x[i] = y[i];
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								      y[i] = temp;
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								    }
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								    for (i = m; i < n; i = i + 3) {
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								      temp = x[i];
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								      x[i] = y[i];
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								      y[i] = temp;
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								      temp = x[i + 1];
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								      x[i + 1] = y[i + 1];
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								      y[i + 1] = temp;
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								      temp = x[i + 2];
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								      x[i + 2] = y[i + 2];
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								      y[i + 2] = temp;
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								    }
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								  }
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								  else {
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								    ix = (incx >= 0) ? 0 : (-n + 1) * incx;
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								    iy = (incy >= 0) ? 0 : (-n + 1) * incy;
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								    for (i = 0; i < n; i++) {
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								      temp = x[ix];
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								      x[ix] = y[iy];
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								      y[iy] = temp;
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								      ix = ix + incx;
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								      iy = iy + incy;
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								    }
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								  }
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								}
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								/******************************************************************************/
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								/******************************************************************************/
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								void qr_solve(double x[], int m, int n, double a[], double b[])
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								/******************************************************************************/
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								/**
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								  Purpose:
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								    QR_SOLVE solves a linear system in the least squares sense.
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								  Discussion:
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								    If the matrix A has full column rank, then the solution X should be the
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								    unique vector that minimizes the Euclidean norm of the residual.
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								    If the matrix A does not have full column rank, then the solution is
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								    not unique; the vector X will minimize the residual norm, but so will
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								    various other vectors.
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								  Licensing:
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								    This code is distributed under the GNU LGPL license.
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								  Modified:
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								    11 September 2012
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								  Author:
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								    John Burkardt
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								  Reference:
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								    David Kahaner, Cleve Moler, Steven Nash,
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								    Numerical Methods and Software,
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								    Prentice Hall, 1989,
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								    ISBN: 0-13-627258-4,
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								    LC: TA345.K34.
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								  Parameters:
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								    Input, int M, the number of rows of A.
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								    Input, int N, the number of columns of A.
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								    Input, double A[M*N], the matrix.
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								    Input, double B[M], the right hand side.
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								    Output, double QR_SOLVE[N], the least squares solution.
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								*/
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								{
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								  double a_qr[n * m], qraux[n], r[m], tol;
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								  int ind, itask, jpvt[n], kr, lda;
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								  r8mat_copy(a_qr, m, n, a);
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								  lda = m;
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								  tol = r8_epsilon() / r8mat_amax(m, n, a_qr);
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								  itask = 1;
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								  ind = dqrls(a_qr, lda, m, n, tol, &kr, b, x, r, jpvt, qraux, itask); UNUSED(ind);
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								}
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								/******************************************************************************/
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								#endif
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