CONOPT
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triabad04.f90
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1!> @file triabad04.f90
2!! @ingroup FORT1THREAD_EXAMPLES
3!!
4!! This is a CONOPT implementation of the GAMS model:
5!!
6!! @verbatim
7!! variable x1, x2, x3;
8!! equation e1, e3, e4, e5;
9!!
10!! e1 .. sqr(x1) =E= 1;
11!! e3 .. 1*x2 =E= 1;
12!! e4 .. -2.e-10*x2 =E= -2.e-10;
13!! e5 .. x3 =E= sqr(x1 + x2);
14!!
15!! x1.l = 0.99;
16!! x2.l = 0.7;
17!!
18!! model m / all /;
19!! solve m using nlp maximizing x3;
20!! @endverbatim
21!!
22!! Similar to previous models but without nonlinearity in e3. x2 is
23!! therefore unique.
24!!
25!! Overall, the model is feasible and should end in a locally optimal
26!! point with (x1,x2,x3) = (1,1,4)
27!!
28!!
29!! For more information about the individual callbacks, please have a look at the source code.
30
31#if defined(_WIN32) && !defined(_WIN64)
32#define dec_directives_win32
33#endif
34
35!> Main program. A simple setup and call of CONOPT
36!!
37Program triabad04
38
40 Use conopt
41 implicit None
42!
43! Declare the user callback routines as Integer, External:
44!
45 Integer, External :: tria_readmatrix ! Mandatory Matrix definition routine defined below
46 Integer, External :: tria_fdeval ! Function and Derivative evaluation routine
47 ! needed a nonlinear model.
48 Integer, External :: std_status ! Standard callback for displaying solution status
49 Integer, External :: std_solution ! Standard callback for displaying solution values
50 Integer, External :: std_message ! Standard callback for managing messages
51 Integer, External :: std_errmsg ! Standard callback for managing error messages
52 Integer, External :: std_triord ! Standard callback for triangular order
53#ifdef dec_directives_win32
54!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Tria_ReadMatrix
55!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Tria_FDEval
56!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Std_Status
57!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Std_Solution
58!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Std_Message
59!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Std_ErrMsg
60!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Std_TriOrd
61#endif
62!
63! Control vector
64!
65 INTEGER, Dimension(:), Pointer :: cntvect
66 INTEGER :: coi_error
67
68 call startup
69!
70! Create and initialize a Control Vector
71!
72 coi_error = coi_create( cntvect )
73!
74! Tell CONOPT about the size of the model by populating the Control Vector:
75!
76 coi_error = max( coi_error, coidef_numvar( cntvect, 3 ) ) ! # variables
77 coi_error = max( coi_error, coidef_numcon( cntvect, 4 ) ) ! # constraints
78 coi_error = max( coi_error, coidef_numnz( cntvect, 6 ) ) ! # nonzeros in the Jacobian
79 coi_error = max( coi_error, coidef_numnlnz( cntvect, 3 ) ) ! # of which are nonlinear
80 coi_error = max( coi_error, coidef_optdir( cntvect, +1 ) ) ! Maximize
81 coi_error = max( coi_error, coidef_objvar( cntvect, 3 ) ) ! Objective is variable 3
82 coi_error = max( coi_error, coidef_optfile( cntvect, 'triabad04.opt' ) )
83!
84! Tell CONOPT about the callback routines:
85!
86 coi_error = max( coi_error, coidef_readmatrix( cntvect, tria_readmatrix ) )
87 coi_error = max( coi_error, coidef_fdeval( cntvect, tria_fdeval ) )
88 coi_error = max( coi_error, coidef_status( cntvect, std_status ) )
89 coi_error = max( coi_error, coidef_solution( cntvect, std_solution ) )
90 coi_error = max( coi_error, coidef_message( cntvect, std_message ) )
91 coi_error = max( coi_error, coidef_errmsg( cntvect, std_errmsg ) )
92 coi_error = max( coi_error, coidef_triord( cntvect, std_triord ) )
93
94#if defined(CONOPT_LICENSE_INT_1) && defined(CONOPT_LICENSE_INT_2) && defined(CONOPT_LICENSE_INT_3) && defined(CONOPT_LICENSE_TEXT)
95 coi_error = max( coi_error, coidef_license( cntvect, conopt_license_int_1, conopt_license_int_2, conopt_license_int_3, conopt_license_text) )
96#endif
97
98 If ( coi_error .ne. 0 ) THEN
99 write(*,*)
100 write(*,*) '**** Fatal Error while loading CONOPT Callback routines.'
101 write(*,*)
102 call flog( "Skipping Solve due to setup errors", 1 )
103 ENDIF
104!
105! Save the solution so we can check the duals:
106!
107 do_allocate = .true.
108!
109! Start CONOPT:
110!
111 coi_error = coi_solve( cntvect )
112
113 write(*,*)
114 write(*,*) 'End of Triabad04 example. Return code=',coi_error
115
116 If ( coi_error /= 0 ) then
117 call flog( "Errors encountered during solution", 1 )
118 elseif ( stacalls == 0 .or. solcalls == 0 ) then
119 call flog( "Status or Solution routine was not called", 1 )
120 elseif ( sstat /= 1 .or. mstat /= 2 ) then
121 call flog( "Solver and Model Status was not as expected (1,2)", 1 )
122 elseif ( abs( obj-4.0d0 ) > 0.000001d0 ) then
123 call flog( "Incorrect objective returned", 1 )
124 Else
125 Call checkdual( 'Triabad04', maximize )
126 endif
127
128 if ( coi_free(cntvect) /= 0 ) call flog( "Error while freeing control vector",1)
129
130 call flog( "Successful Solve", 0 )
132End Program triabad04
133!
134! ============================================================================
135! Define information about the model:
136!
137
138!> Define information about the model
139!!
140!! @include{doc} readMatrix_params.dox
141Integer Function tria_readmatrix( lower, curr, upper, vsta, type, rhs, esta, &
142 colsta, rowno, value, nlflag, n, m, nz, &
143 usrmem )
144#ifdef dec_directives_win32
145!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Tria_ReadMatrix
146#endif
147 implicit none
148 integer, intent (in) :: n ! number of variables
149 integer, intent (in) :: m ! number of constraints
150 integer, intent (in) :: nz ! number of nonzeros
151 real*8, intent (in out), dimension(n) :: lower ! vector of lower bounds
152 real*8, intent (in out), dimension(n) :: curr ! vector of initial values
153 real*8, intent (in out), dimension(n) :: upper ! vector of upper bounds
154 integer, intent (in out), dimension(n) :: vsta ! vector of initial variable status
155 ! (not defined here)
156 integer, intent (out), dimension(m) :: type ! vector of equation types
157 integer, intent (in out), dimension(m) :: esta ! vector of initial equation status
158 ! (not defined here)
159 real*8, intent (in out), dimension(m) :: rhs ! vector of right hand sides
160 integer, intent (in out), dimension(n+1) :: colsta ! vector with start of column indices
161 integer, intent (out), dimension(nz) :: rowno ! vector of row numbers
162 integer, intent (in out), dimension(nz) :: nlflag ! vector of nonlinearity flags
163 real*8, intent (in out), dimension(nz) :: value ! vector of matrix values
164 real*8 usrmem(*) ! optional user memory
165!
166! Information about Variables:
167! Default: Lower = -Inf, Curr = 0, and Upper = +inf.
168! Default: the status information in Vsta is not used.
169!
170! The model uses initial values for x1 and x2
171!
172 curr(1) = 0.99d0
173 curr(2) = 0.70d0
174!
175! Information about Constraints:
176! Default: Rhs = 0
177! Default: the status information in Esta and the function
178! value in FV are not used.
179! Default: Type: There is no default.
180! 0 = Equality,
181! 1 = Greater than or equal,
182! 2 = Less than or equal,
183! 3 = Non binding.
184!
185! Constraint 1: e1
186! Rhs = 1.0 and type Equality
187!
188 rhs(1) = 1.0d0
189 type(1) = 0
190!
191! Constraint 2: e3
192! Rhs = 1.0 and type Equality
193!
194 rhs(2) = 1.0d0
195 type(2) = 0
196!
197! Constraint 3: e4
198! Rhs = -2.0d-10 and type Equality
199!
200 rhs(3) = -2.0d-10
201 type(3) = 0
202!
203! Constraint 4: e5
204! Rhs = 0.0 and type Equality
205!
206 type(4) = 0
207!
208! Information about the Jacobian. CONOPT expects a columnwise
209! representation in Rowno, Value, Nlflag and Colsta.
210!
211! Colsta = Start of column indices (No Defaults):
212! Rowno = Row indices
213! Value = Value of derivative (by default only linear
214! derivatives are used)
215! Nlflag = 0 for linear and 1 for nonlinear derivative
216! (not needed for completely linear models)
217!
218! Indices
219! x(1) x(2) x(3)
220! 1: 1
221! 2: 3
222! 3: 4
223! 4: 2 5 6
224!
225 colsta(1) = 1
226 colsta(2) = 3
227 colsta(3) = 6
228 colsta(4) = 7
229 rowno(1) = 1
230 rowno(2) = 4
231 rowno(3) = 2
232 rowno(4) = 3
233 rowno(5) = 4
234 rowno(6) = 4
235!
236! Nonlinearity Structure: L = 0 are linear and NL = 1 are nonlinear
237! x(1) x(2) x(3)
238! 1: NL
239! 2: L
240! 3: L
241! 4: NL NL L
242!
243 nlflag(1) = 1
244 nlflag(2) = 1
245 nlflag(3) = 0
246 nlflag(4) = 0
247 nlflag(5) = 1
248 nlflag(6) = 0
249!
250! Value (Linear only)
251! x(1) x(2) x(3)
252! 1: NL
253! 2: 1
254! 3: -2.0d-10
255! 4: NL NL 1.0
256!
257 value(3) = 1.d0
258 value(4) = -2.0d-10
259 value(6) = 1.d0
260
261 tria_readmatrix = 0 ! Return value means OK
262
263end Function tria_readmatrix
264!
265!==========================================================================
266! Compute nonlinear terms and non-constant Jacobian elements
267!
268
269!> Compute nonlinear terms and non-constant Jacobian elements
270!!
271!! @include{doc} fdeval_params.dox
272Integer Function tria_fdeval( x, g, jac, rowno, jcnm, mode, ignerr, errcnt, &
273 n, nz, thread, usrmem )
274#ifdef dec_directives_win32
275!DEC$ ATTRIBUTES STDCALL, REFERENCE, NOMIXED_STR_LEN_ARG :: Tria_FDEval
276#endif
277 implicit none
278 integer, intent (in) :: n ! number of variables
279 integer, intent (in) :: rowno ! number of the row to be evaluated
280 integer, intent (in) :: nz ! number of nonzeros in this row
281 real*8, intent (in), dimension(n) :: x ! vector of current solution values
282 real*8, intent (in out) :: g ! constraint value
283 real*8, intent (in out), dimension(n) :: jac ! vector of derivatives for current constraint
284 integer, intent (in), dimension(nz) :: jcnm ! list of variables that appear nonlinearly
285 ! in this row. Ffor information only.
286 integer, intent (in) :: mode ! evaluation mode: 1 = function value
287 ! 2 = derivatives, 3 = both
288 integer, intent (in) :: ignerr ! if 1 then errors can be ignored as long
289 ! as errcnt is incremented
290 integer, intent (in out) :: errcnt ! error counter to be incremented in case
291 ! of function evaluation errors.
292 integer, intent (in) :: thread
293 real*8 usrmem(*) ! optional user memory
294!
295! Row 1: e1 .. sqr(x1) =E= 1;
296!
297 if ( rowno == 1 ) then
298!
299! Mode = 1 or 3. G = sqr(x1)
300!
301 if ( mode == 1 .or. mode == 3 ) then
302 g = x(1)*x(1)
303 endif
304!
305! Mode = 2 or 3: Derivative values:
306!
307 if ( mode .eq. 2 .or. mode .eq. 3 ) then
308 jac(1) = 2.d0*x(1)
309 endif
310 tria_fdeval = 0
311 else if ( rowno == 4 ) then
312!
313! e5 .. x3 =E= sqr(x1 + x2);
314!
315 if ( mode == 1 .or. mode == 3 ) then
316 g = -(x(1)+x(2))*(x(1)+x(2))
317 endif
318 if ( mode .eq. 2 .or. mode .eq. 3 ) then
319 jac(1) = -2.d0*(x(1)+x(2))
320 jac(2) = jac(1)
321 endif
322 tria_fdeval = 0
323 else
324 tria_fdeval = 1
325 endif
326
327end Function tria_fdeval
328
integer function std_solution(xval, xmar, xbas, xsta, yval, ymar, ybas, ysta, n, m, usrmem)
Definition comdecl.f90:132
integer function std_status(modsta, solsta, iter, objval, usrmem)
Definition comdecl.f90:88
subroutine checkdual(case, minmax)
Definition comdecl.f90:394
integer function std_message(smsg, dmsg, nmsg, llen, usrmem, msgv)
Definition comdecl.f90:205
integer function std_triord(mode, type, status, irow, icol, inf, value, resid, usrmem)
Definition comdecl.f90:289
integer function std_errmsg(rowno, colno, posno, msglen, usrmem, msg)
Definition comdecl.f90:248
integer(c_int) function coidef_message(cntvect, coi_message)
define callback routine for handling messages returned during the solution process.
Definition conopt.f90:1265
integer(c_int) function coidef_solution(cntvect, coi_solution)
define callback routine for returning the final solution values.
Definition conopt.f90:1238
integer(c_int) function coidef_status(cntvect, coi_status)
define callback routine for returning the completion status.
Definition conopt.f90:1212
integer(c_int) function coidef_readmatrix(cntvect, coi_readmatrix)
define callback routine for providing the matrix data to CONOPT.
Definition conopt.f90:1111
integer(c_int) function coidef_errmsg(cntvect, coi_errmsg)
define callback routine for returning error messages for row, column or Jacobian elements.
Definition conopt.f90:1291
integer(c_int) function coidef_fdeval(cntvect, coi_fdeval)
define callback routine for performing function and derivative evaluations.
Definition conopt.f90:1135
integer(c_int) function coidef_optfile(cntvect, optfile)
define callback routine for defining an options file.
Definition conopt.f90:928
integer(c_int) function coidef_triord(cntvect, coi_triord)
define callback routine for providing the triangular order information.
Definition conopt.f90:1371
integer(c_int) function coidef_license(cntvect, licint1, licint2, licint3, licstring)
define the License Information.
Definition conopt.f90:293
integer(c_int) function coidef_numvar(cntvect, numvar)
defines the number of variables in the model.
Definition conopt.f90:97
integer(c_int) function coidef_numcon(cntvect, numcon)
defines the number of constraints in the model.
Definition conopt.f90:121
integer(c_int) function coidef_numnlnz(cntvect, numnlnz)
defines the Number of Nonlinear Nonzeros.
Definition conopt.f90:167
integer(c_int) function coidef_optdir(cntvect, optdir)
defines the Optimization Direction.
Definition conopt.f90:213
integer(c_int) function coidef_numnz(cntvect, numnz)
defines the number of nonzero elements in the Jacobian.
Definition conopt.f90:144
integer(c_int) function coidef_objvar(cntvect, objvar)
defines the Objective Variable.
Definition conopt.f90:257
integer(c_int) function coi_create(cntvect)
initializes CONOPT and creates the control vector.
Definition conopt.f90:1726
integer(c_int) function coi_free(cntvect)
frees the control vector.
Definition conopt.f90:1749
integer(c_int) function coi_solve(cntvect)
method for starting the solving process of CONOPT.
Definition conopt.f90:1625
real *8 obj
Definition comdecl.f90:16
integer solcalls
Definition comdecl.f90:15
integer sstat
Definition comdecl.f90:18
integer stacalls
Definition comdecl.f90:14
subroutine flog(msg, code)
Definition comdecl.f90:62
logical do_allocate
Definition comdecl.f90:27
integer, parameter maximize
Definition comdecl.f90:31
integer mstat
Definition comdecl.f90:17
subroutine startup
Definition comdecl.f90:41
integer function tria_fdeval(x, g, jac, rowno, jcnm, mode, ignerr, errcnt, n, nz, thread, usrmem)
Compute nonlinear terms and non-constant Jacobian elements.
Definition tria01.f90:253
integer function tria_readmatrix(lower, curr, upper, vsta, type, rhs, esta, colsta, rowno, value, nlflag, n, m, nz, usrmem)
Define information about the model.
Definition tria01.f90:136
program triabad04
Main program. A simple setup and call of CONOPT.
Definition triabad04.f90:39