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Replace amos with slatec
382 lines
15 KiB
Fortran
382 lines
15 KiB
Fortran
*DECK SNSQE
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SUBROUTINE SNSQE (FCN, JAC, IOPT, N, X, FVEC, TOL, NPRINT, INFO,
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+ WA, LWA)
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C***BEGIN PROLOGUE SNSQE
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C***PURPOSE An easy-to-use code to find a zero of a system of N
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C nonlinear functions in N variables by a modification of
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C the Powell hybrid method.
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C***LIBRARY SLATEC
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C***CATEGORY F2A
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C***TYPE SINGLE PRECISION (SNSQE-S, DNSQE-D)
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C***KEYWORDS EASY-TO-USE, NONLINEAR SQUARE SYSTEM,
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C POWELL HYBRID METHOD, ZEROS
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C***AUTHOR Hiebert, K. L., (SNLA)
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C***DESCRIPTION
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C
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C 1. Purpose.
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C
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C
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C The purpose of SNSQE is to find a zero of a system of N non-
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C linear functions in N variables by a modification of the Powell
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C hybrid method. This is done by using the more general nonlinear
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C equation solver SNSQ. The user must provide a subroutine which
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C calculates the functions. The user has the option of either to
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C provide a subroutine which calculates the Jacobian or to let the
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C code calculate it by a forward-difference approximation. This
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C code is the combination of the MINPACK codes (Argonne) HYBRD1
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C and HYBRJ1.
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C
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C
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C 2. Subroutine and Type Statements.
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C
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C SUBROUTINE SNSQE(FCN,JAC,IOPT,N,X,FVEC,TOL,NPRINT,INFO,
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C * WA,LWA)
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C INTEGER IOPT,N,NPRINT,INFO,LWA
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C REAL TOL
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C REAL X(N),FVEC(N),WA(LWA)
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C EXTERNAL FCN,JAC
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C
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C
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C 3. Parameters.
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C
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C Parameters designated as input parameters must be specified on
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C entry to SNSQE and are not changed on exit, while parameters
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C designated as output parameters need not be specified on entry
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C and are set to appropriate values on exit from SNSQE.
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C
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C FCN is the name of the user-supplied subroutine which calculates
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C the functions. FCN must be declared in an EXTERNAL statement
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C in the user calling program, and should be written as follows.
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C
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C SUBROUTINE FCN(N,X,FVEC,IFLAG)
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C INTEGER N,IFLAG
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C REAL X(N),FVEC(N)
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C ----------
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C Calculate the functions at X and
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C return this vector in FVEC.
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C ----------
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C RETURN
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C END
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C
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C The value of IFLAG should not be changed by FCN unless the
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C user wants to terminate execution of SNSQE. In this case, set
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C IFLAG to a negative integer.
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C
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C JAC is the name of the user-supplied subroutine which calculates
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C the Jacobian. If IOPT=1, then JAC must be declared in an
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C EXTERNAL statement in the user calling program, and should be
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C written as follows.
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C
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C SUBROUTINE JAC(N,X,FVEC,FJAC,LDFJAC,IFLAG)
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C INTEGER N,LDFJAC,IFLAG
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C REAL X(N),FVEC(N),FJAC(LDFJAC,N)
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C ----------
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C Calculate the Jacobian at X and return this
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C matrix in FJAC. FVEC contains the function
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C values at X and should not be altered.
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C ----------
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C RETURN
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C END
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C
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C The value of IFLAG should not be changed by JAC unless the
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C user wants to terminate execution of SNSQE. In this case, set
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C IFLAG to a negative integer.
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C
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C If IOPT=2, JAC can be ignored (treat it as a dummy argument).
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C
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C IOPT is an input variable which specifies how the Jacobian will
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C be calculated. If IOPT=1, then the user must supply the
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C Jacobian through the subroutine JAC. If IOPT=2, then the
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C code will approximate the Jacobian by forward-differencing.
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C
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C N is a positive integer input variable set to the number of
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C functions and variables.
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C
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C X is an array of length N. On input, X must contain an initial
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C estimate of the solution vector. On output, X contains the
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C final estimate of the solution vector.
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C
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C FVEC is an output array of length N which contains the functions
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C evaluated at the output X.
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C
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C TOL is a non-negative input variable. Termination occurs when
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C the algorithm estimates that the relative error between X and
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C the solution is at most TOL. Section 4 contains more details
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C about TOL.
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C
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C NPRINT is an integer input variable that enables controlled
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C printing of iterates if it is positive. In this case, FCN is
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C called with IFLAG = 0 at the beginning of the first iteration
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C and every NPRINT iteration thereafter and immediately prior
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C to return, with X and FVEC available for printing. Appropriate
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C print statements must be added to FCN (see example). If NPRINT
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C is not positive, no special calls of FCN with IFLAG = 0 are
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C made.
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C
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C INFO is an integer output variable. If the user has terminated
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C execution, INFO is set to the (negative) value of IFLAG. See
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C description of FCN and JAC. Otherwise, INFO is set as follows.
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C
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C INFO = 0 improper input parameters.
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C
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C INFO = 1 algorithm estimates that the relative error between
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C X and the solution is at most TOL.
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C
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C INFO = 2 number of calls to FCN has reached or exceeded
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C 100*(N+1) for IOPT=1 or 200*(N+1) for IOPT=2.
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C
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C INFO = 3 TOL is too small. No further improvement in the
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C approximate solution X is possible.
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C
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C INFO = 4 iteration is not making good progress.
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C
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C Sections 4 and 5 contain more details about INFO.
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C
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C WA is a work array of length LWA.
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C
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C LWA is a positive integer input variable not less than
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C (3*N**2+13*N))/2.
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C
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C
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C 4. Successful Completion.
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C
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C The accuracy of SNSQE is controlled by the convergence parame-
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C ter TOL. This parameter is used in a test which makes a compar-
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C ison between the approximation X and a solution XSOL. SNSQE
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C terminates when the test is satisfied. If TOL is less than the
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C machine precision (as defined by the function R1MACH(4)), then
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C SNSQE attempts only to satisfy the test defined by the machine
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C precision. Further progress is not usually possible. Unless
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C high precision solutions are required, the recommended value
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C for TOL is the square root of the machine precision.
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C
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C The test assumes that the functions are reasonably well behaved,
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C and, if the Jacobian is supplied by the user, that the functions
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C and the Jacobian coded consistently. If these conditions
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C are not satisfied, SNSQE may incorrectly indicate convergence.
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C The coding of the Jacobian can be checked by the subroutine
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C CHKDER. If the Jacobian is coded correctly or IOPT=2, then
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C the validity of the answer can be checked, for example, by
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C rerunning SNSQE with a tighter tolerance.
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C
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C Convergence Test. If ENORM(Z) denotes the Euclidean norm of a
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C vector Z, then this test attempts to guarantee that
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C
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C ENORM(X-XSOL) .LE. TOL*ENORM(XSOL).
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C
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C If this condition is satisfied with TOL = 10**(-K), then the
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C larger components of X have K significant decimal digits and
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C INFO is set to 1. There is a danger that the smaller compo-
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C nents of X may have large relative errors, but the fast rate
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C of convergence of SNSQE usually avoids this possibility.
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C
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C
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C 5. Unsuccessful Completion.
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C
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C Unsuccessful termination of SNSQE can be due to improper input
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C parameters, arithmetic interrupts, an excessive number of func-
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C tion evaluations, errors in the functions, or lack of good prog-
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C ress.
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C
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C Improper Input Parameters. INFO is set to 0 if IOPT .LT. 1, or
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C IOPT .GT. 2, or N .LE. 0, or TOL .LT. 0.E0, or
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C LWA .LT. (3*N**2+13*N)/2.
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C
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C Arithmetic Interrupts. If these interrupts occur in the FCN
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C subroutine during an early stage of the computation, they may
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C be caused by an unacceptable choice of X by SNSQE. In this
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C case, it may be possible to remedy the situation by not evalu-
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C ating the functions here, but instead setting the components
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C of FVEC to numbers that exceed those in the initial FVEC.
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C
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C Excessive Number of Function Evaluations. If the number of
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C calls to FCN reaches 100*(N+1) for IOPT=1 or 200*(N+1) for
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C IOPT=2, then this indicates that the routine is converging
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C very slowly as measured by the progress of FVEC, and INFO is
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C set to 2. This situation should be unusual because, as
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C indicated below, lack of good progress is usually diagnosed
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C earlier by SNSQE, causing termination with INFO = 4.
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C
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C Errors in the Functions. When IOPT=2, the choice of step length
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C in the forward-difference approximation to the Jacobian
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C assumes that the relative errors in the functions are of the
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C order of the machine precision. If this is not the case,
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C SNSQE may fail (usually with INFO = 4). The user should
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C then either use SNSQ and set the step length or use IOPT=1
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C and supply the Jacobian.
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C
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C Lack of Good Progress. SNSQE searches for a zero of the system
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C by minimizing the sum of the squares of the functions. In so
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C doing, it can become trapped in a region where the minimum
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C does not correspond to a zero of the system and, in this situ-
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C ation, the iteration eventually fails to make good progress.
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C In particular, this will happen if the system does not have a
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C zero. If the system has a zero, rerunning SNSQE from a dif-
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C ferent starting point may be helpful.
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C
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C
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C 6. Characteristics of the Algorithm.
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C
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C SNSQE is a modification of the Powell hybrid method. Two of
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C its main characteristics involve the choice of the correction as
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C a convex combination of the Newton and scaled gradient direc-
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C tions, and the updating of the Jacobian by the rank-1 method of
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C Broyden. The choice of the correction guarantees (under reason-
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C able conditions) global convergence for starting points far from
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C the solution and a fast rate of convergence. The Jacobian is
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C calculated at the starting point by either the user-supplied
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C subroutine or a forward-difference approximation, but it is not
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C recalculated until the rank-1 method fails to produce satis-
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C factory progress.
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C
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C Timing. The time required by SNSQE to solve a given problem
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C depends on N, the behavior of the functions, the accuracy
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C requested, and the starting point. The number of arithmetic
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C operations needed by SNSQE is about 11.5*(N**2) to process
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C each evaluation of the functions (call to FCN) and 1.3*(N**3)
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C to process each evaluation of the Jacobian (call to JAC,
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C if IOPT = 1). Unless FCN and JAC can be evaluated quickly,
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C the timing of SNSQE will be strongly influenced by the time
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C spent in FCN and JAC.
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C
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C Storage. SNSQE requires (3*N**2 + 17*N)/2 single precision
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C storage locations, in addition to the storage required by the
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C program. There are no internally declared storage arrays.
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C
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C
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C 7. Example.
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C
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C The problem is to determine the values of X(1), X(2), ..., X(9),
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C which solve the system of tridiagonal equations
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C
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C (3-2*X(1))*X(1) -2*X(2) = -1
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C -X(I-1) + (3-2*X(I))*X(I) -2*X(I+1) = -1, I=2-8
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C -X(8) + (3-2*X(9))*X(9) = -1
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C
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C **********
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C
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C PROGRAM TEST
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C C
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C C Driver for SNSQE example.
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C C
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C INTEGER J,N,IOPT,NPRINT,INFO,LWA,NWRITE
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C REAL TOL,FNORM
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C REAL X(9),FVEC(9),WA(180)
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C REAL ENORM,R1MACH
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C EXTERNAL FCN
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C DATA NWRITE /6/
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C C
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C IOPT = 2
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C N = 9
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C C
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C C The following starting values provide a rough solution.
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C C
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C DO 10 J = 1, 9
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C X(J) = -1.E0
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C 10 CONTINUE
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C
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C LWA = 180
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C NPRINT = 0
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C C
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C C Set TOL to the square root of the machine precision.
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C C Unless high precision solutions are required,
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C C this is the recommended setting.
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C C
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C TOL = SQRT(R1MACH(4))
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C C
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C CALL SNSQE(FCN,JAC,IOPT,N,X,FVEC,TOL,NPRINT,INFO,WA,LWA)
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C FNORM = ENORM(N,FVEC)
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C WRITE (NWRITE,1000) FNORM,INFO,(X(J),J=1,N)
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C STOP
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C 1000 FORMAT (5X,' FINAL L2 NORM OF THE RESIDUALS',E15.7 //
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C * 5X,' EXIT PARAMETER',16X,I10 //
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C * 5X,' FINAL APPROXIMATE SOLUTION' // (5X,3E15.7))
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C END
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C SUBROUTINE FCN(N,X,FVEC,IFLAG)
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C INTEGER N,IFLAG
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C REAL X(N),FVEC(N)
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C INTEGER K
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C REAL ONE,TEMP,TEMP1,TEMP2,THREE,TWO,ZERO
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C DATA ZERO,ONE,TWO,THREE /0.E0,1.E0,2.E0,3.E0/
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C C
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C DO 10 K = 1, N
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C TEMP = (THREE - TWO*X(K))*X(K)
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C TEMP1 = ZERO
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C IF (K .NE. 1) TEMP1 = X(K-1)
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C TEMP2 = ZERO
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C IF (K .NE. N) TEMP2 = X(K+1)
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C FVEC(K) = TEMP - TEMP1 - TWO*TEMP2 + ONE
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C 10 CONTINUE
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C RETURN
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C END
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C
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C Results obtained with different compilers or machines
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C may be slightly different.
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C
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C FINAL L2 NORM OF THE RESIDUALS 0.1192636E-07
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C
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C EXIT PARAMETER 1
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C
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C FINAL APPROXIMATE SOLUTION
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C
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C -0.5706545E+00 -0.6816283E+00 -0.7017325E+00
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C -0.7042129E+00 -0.7013690E+00 -0.6918656E+00
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C -0.6657920E+00 -0.5960342E+00 -0.4164121E+00
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C
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C***REFERENCES M. J. D. Powell, A hybrid method for nonlinear equa-
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C tions. In Numerical Methods for Nonlinear Algebraic
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C Equations, P. Rabinowitz, Editor. Gordon and Breach,
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C 1988.
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C***ROUTINES CALLED SNSQ, XERMSG
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C***REVISION HISTORY (YYMMDD)
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C 800301 DATE WRITTEN
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C 890831 Modified array declarations. (WRB)
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C 890831 REVISION DATE from Version 3.2
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C 891214 Prologue converted to Version 4.0 format. (BAB)
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C 900315 CALLs to XERROR changed to CALLs to XERMSG. (THJ)
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C 920501 Reformatted the REFERENCES section. (WRB)
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C***END PROLOGUE SNSQE
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INTEGER IOPT,N,NPRINT,INFO,LWA
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REAL TOL
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REAL X(*),FVEC(*),WA(LWA)
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EXTERNAL FCN, JAC
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INTEGER INDEX,J,LR,MAXFEV,ML,MODE,MU,NFEV,NJEV
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REAL EPSFCN,FACTOR,ONE,XTOL,ZERO
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SAVE FACTOR, ONE, ZERO
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DATA FACTOR,ONE,ZERO /1.0E2,1.0E0,0.0E0/
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C***FIRST EXECUTABLE STATEMENT SNSQE
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INFO = 0
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C
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C CHECK THE INPUT PARAMETERS FOR ERRORS.
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C
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IF (IOPT .LT. 1 .OR. IOPT .GT. 2 .OR. N .LE. 0
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1 .OR. TOL .LT. ZERO .OR. LWA .LT. (3*N**2 +13*N)/2)
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2 GO TO 20
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C
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C CALL SNSQ.
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C
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MAXFEV = 100*(N + 1)
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IF (IOPT .EQ. 2) MAXFEV = 2*MAXFEV
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XTOL = TOL
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ML = N - 1
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MU = N - 1
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EPSFCN = ZERO
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MODE = 2
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DO 10 J = 1, N
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WA(J) = ONE
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10 CONTINUE
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LR = (N*(N + 1))/2
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INDEX=6*N+LR
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CALL SNSQ(FCN,JAC,IOPT,N,X,FVEC,WA(INDEX+1),N,XTOL,MAXFEV,ML,MU,
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1 EPSFCN,WA(1),MODE,FACTOR,NPRINT,INFO,NFEV,NJEV,
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2 WA(6*N+1),LR,WA(N+1),WA(2*N+1),WA(3*N+1),WA(4*N+1),
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3 WA(5*N+1))
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IF (INFO .EQ. 5) INFO = 4
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20 CONTINUE
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IF (INFO .EQ. 0) CALL XERMSG ('SLATEC', 'SNSQE',
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+ 'INVALID INPUT PARAMETER.', 2, 1)
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RETURN
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C
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C LAST CARD OF SUBROUTINE SNSQE.
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C
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END
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