SCIP

    Solving Constraint Integer Programs

    expr_sum.c
    Go to the documentation of this file.
    1/* * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * */
    2/* */
    3/* This file is part of the program and library */
    4/* SCIP --- Solving Constraint Integer Programs */
    5/* */
    6/* Copyright (c) 2002-2026 Zuse Institute Berlin (ZIB) */
    7/* */
    8/* Licensed under the Apache License, Version 2.0 (the "License"); */
    9/* you may not use this file except in compliance with the License. */
    10/* You may obtain a copy of the License at */
    11/* */
    12/* http://www.apache.org/licenses/LICENSE-2.0 */
    13/* */
    14/* Unless required by applicable law or agreed to in writing, software */
    15/* distributed under the License is distributed on an "AS IS" BASIS, */
    16/* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. */
    17/* See the License for the specific language governing permissions and */
    18/* limitations under the License. */
    19/* */
    20/* You should have received a copy of the Apache-2.0 license */
    21/* along with SCIP; see the file LICENSE. If not visit scipopt.org. */
    22/* */
    23/* * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * */
    24
    25/**@file expr_sum.c
    26 * @ingroup DEFPLUGINS_EXPR
    27 * @brief sum expression handler
    28 * @author Stefan Vigerske
    29 * @author Benjamin Mueller
    30 * @author Felipe Serrano
    31 */
    32
    33/*---+----1----+----2----+----3----+----4----+----5----+----6----+----7----+----8----+----9----+----0----+----1----+----2*/
    34
    35#include <stddef.h>
    36
    37#include "scip/expr_sum.h"
    38#include "scip/expr_value.h"
    39#include "scip/expr_product.h"
    40#include "scip/expr_exp.h"
    41#include "scip/expr_pow.h"
    43
    44#define EXPRHDLR_NAME "sum"
    45#define EXPRHDLR_DESC "summation with coefficients and a constant"
    46#define EXPRHDLR_PRECEDENCE 40000
    47#define EXPRHDLR_HASHKEY SCIPcalcFibHash(47161.0)
    48
    49/** macro to activate/deactivate debugging information of simplify method */
    50/*lint -emacro(774,debugSimplify) */
    51#ifdef SIMPLIFY_DEBUG
    52#define debugSimplify printf
    53#else
    54#define debugSimplify while( FALSE ) printf
    55#endif
    56
    57/*
    58 * Data structures
    59 */
    60
    61/** expression data */
    62struct SCIP_ExprData
    63{
    64 SCIP_Real constant; /**< constant coefficient */
    65 SCIP_Real* coefficients; /**< coefficients of children */
    66 int coefssize; /**< size of the coefficients array */
    67};
    68
    69/*
    70 * Local methods
    71 */
    72
    73/** creates expression data */
    74static
    76 SCIP* scip, /**< SCIP data structure */
    77 SCIP_EXPRDATA** exprdata, /**< pointer where to store expression data */
    78 int ncoefficients, /**< number of coefficients (i.e., number of children) */
    79 SCIP_Real* coefficients, /**< array with coefficients for all children (or NULL if all 1.0) */
    80 SCIP_Real constant /**< constant term of sum */
    81 )
    82{
    83 assert(exprdata != NULL);
    84 assert(ncoefficients >= 0);
    85
    87
    88 if( coefficients != NULL )
    89 {
    90 SCIP_CALL( SCIPduplicateBlockMemoryArray(scip, &(*exprdata)->coefficients, coefficients, ncoefficients) );
    91 }
    92 else
    93 {
    94 int i;
    95
    96 SCIP_CALL( SCIPallocBlockMemoryArray(scip, &(*exprdata)->coefficients, ncoefficients) );
    97 for( i = 0; i < ncoefficients; ++i )
    98 (*exprdata)->coefficients[i] = 1.0;
    99 }
    100
    101 (*exprdata)->coefssize = ncoefficients;
    102 (*exprdata)->constant = constant;
    103
    104 return SCIP_OKAY;
    105}
    106
    107/** simplifies the `idx`-th child of the sum expression `duplicate` in order for it to be able to be a child of a simplified sum
    108 *
    109 * for example, this means that the `idx`-th child cannot be itself a sum
    110 * if it is, we have to flatten it, i.e., take all its children and make them children of `duplicate`
    111 */
    112static
    114 SCIP* scip, /**< SCIP data structure */
    115 SCIP_EXPR* duplicate, /**< expression to be simplified */
    116 int idx, /**< idx of children to be simplified */
    117 SCIP_Bool* changed, /**< pointer to store if some term actually got simplified */
    118 SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), /**< function to call to create ownerdata */
    119 void* ownercreatedata /**< data to pass to ownercreate */
    120 )
    121{
    122 SCIP_EXPR** children;
    123 SCIP_EXPR* expr;
    124 SCIP_Real* coefs;
    125 SCIP_Real constant ;
    126 SCIP_Real coef;
    127
    128 assert(duplicate != NULL);
    129 assert(idx >= 0);
    130 assert(idx < SCIPexprGetNChildren(duplicate));
    131 assert(changed != NULL);
    132
    133 children = SCIPexprGetChildren(duplicate);
    134 coefs = SCIPgetCoefsExprSum(duplicate);
    135 constant = SCIPgetConstantExprSum(duplicate);
    136
    137 coef = coefs[idx];
    138 expr = children[idx];
    139 assert(expr != NULL);
    140
    141 /* enforces SS3 */
    142 if( SCIPisExprValue(scip, expr) )
    143 {
    144 *changed = TRUE;
    145 constant += coef * SCIPgetValueExprValue(expr);
    146 SCIPsetConstantExprSum(duplicate, constant);
    147
    148 /* TODO: remove child? */
    149 coefs[idx] = 0.0;
    150
    151 return SCIP_OKAY;
    152 }
    153
    154 /* enforces SS2 */
    155 if( SCIPisExprSum(scip, expr) )
    156 {
    157 *changed = TRUE;
    158
    159 /* pass constant to parent */
    160 constant += coef * SCIPgetConstantExprSum(expr);
    161 SCIPsetConstantExprSum(duplicate, constant);
    162
    163 /* append all children of expr on parent except the first one */
    164 if( SCIPexprGetNChildren(expr) > 1 )
    165 {
    166 int i;
    167
    168 for( i = 1; i < SCIPexprGetNChildren(expr); ++i )
    169 {
    170 assert(!SCIPisExprSum(scip, SCIPexprGetChildren(expr)[i]));
    172 coef * SCIPgetCoefsExprSum(expr)[i]) );
    173 }
    174 }
    175
    176 /* replace expr with first child; need to get data again since it might be re-allocated */
    177 assert(!SCIPisExprSum(scip, SCIPexprGetChildren(expr)[0]));
    178
    179 coefs = SCIPgetCoefsExprSum(duplicate);
    180
    181 coefs[idx] = coef * SCIPgetCoefsExprSum(expr)[0];
    182 SCIP_CALL( SCIPreplaceExprChild(scip, duplicate, idx, SCIPexprGetChildren(expr)[0]) );
    183
    184 return SCIP_OKAY;
    185 }
    186
    187 /* enforce SS9 */
    188 if( REALABS(coef) != 1.0 && SCIPisExprProduct(scip, expr) )
    189 {
    190 SCIP_EXPR* expchild = NULL;
    191 int i;
    192
    193 for( i = 0; i < SCIPexprGetNChildren(expr); ++i )
    194 {
    195 SCIP_EXPR* child = SCIPexprGetChildren(expr)[i];
    196 assert(child != NULL);
    197
    198 if( SCIPisExprExp(scip, child) )
    199 {
    200 expchild = child;
    201 break;
    202 }
    203 }
    204
    205 /* coef != +- 1, term is product and one factor is an exponential -> enforce SS9 */
    206 if( expchild != NULL )
    207 {
    208 SCIP_EXPR* sum;
    209 SCIP_EXPR* prod;
    210 SCIP_EXPR* simplifiedprod;
    211 SCIP_EXPR* simplifiedsum;
    212 SCIP_EXPR* exponential;
    213 SCIP_EXPR* simplifiedexp;
    214 SCIP_Real expconstant;
    215
    216 /* inform that expression will change */
    217 *changed = TRUE;
    218
    219 /* compute expchild's coefficient as +- 1.0 * exp(log(abs(coef))) */
    220 if( coef > 0.0 )
    221 {
    222 expconstant = log(coef);
    223 coefs[idx] = 1.0;
    224 }
    225 else
    226 {
    227 expconstant = log(-coef);
    228 coefs[idx] = -1.0;
    229 }
    230
    231 /* add constant to exponential's child */
    232 SCIP_CALL( SCIPcreateExprSum(scip, &sum, 1, SCIPexprGetChildren(expchild), NULL, expconstant, ownercreate,
    233 ownercreatedata) );
    234
    235 /* simplify sum */
    236 SCIP_CALL( SCIPcallExprSimplify(scip, sum, &simplifiedsum, ownercreate, ownercreatedata) );
    238
    239 /* create exponential with new child */
    240 SCIP_CALL( SCIPcreateExprExp(scip, &exponential, simplifiedsum, ownercreate, ownercreatedata) );
    241 SCIP_CALL( SCIPreleaseExpr(scip, &simplifiedsum) );
    242
    243 /* simplify exponential */
    244 SCIP_CALL( SCIPcallExprSimplify(scip, exponential, &simplifiedexp, ownercreate, ownercreatedata) );
    245 SCIP_CALL( SCIPreleaseExpr(scip, &exponential) );
    246
    247 /* create product with new child */
    248 SCIP_CALL( SCIPcreateExprProduct(scip, &prod, 0, NULL, 1.0, ownercreate, ownercreatedata) );
    249
    250 for( i = 0; i < SCIPexprGetNChildren(expr); ++i )
    251 {
    252 if( SCIPexprGetChildren(expr)[i] == expchild )
    253 {
    254 SCIP_CALL( SCIPappendExprChild(scip, prod, simplifiedexp) );
    255 }
    256 else
    257 {
    259 }
    260 }
    261 SCIP_CALL( SCIPreleaseExpr(scip, &simplifiedexp) );
    262
    263 /* simplify product */
    264 SCIP_CALL( SCIPcallExprSimplify(scip, prod, &simplifiedprod, ownercreate, ownercreatedata) );
    265 SCIP_CALL( SCIPreleaseExpr(scip, &prod) );
    266
    267 /* replace current child with simplified product */
    268 SCIP_CALL( SCIPreplaceExprChild(scip, duplicate, idx, simplifiedprod) );
    269 SCIP_CALL( SCIPreleaseExpr(scip, &simplifiedprod) );
    270
    271 /* since the simplified product can be a sum ( exp(-1)*exp(log(x+y)+1) -> x+y ),
    272 * we call the function we are in again
    273 * this is no endless recursion, since the coef is now +- 1
    274 */
    275 SCIP_CALL( simplifyTerm(scip, duplicate, idx, changed, ownercreate, ownercreatedata) );
    276
    277 return SCIP_OKAY;
    278 }
    279 }
    280
    281 /* enforce SS10 */
    282 if( REALABS(coef) != 1.0 && SCIPisExprExp(scip, expr) )
    283 {
    284 /* coef != +- 1, term is exponential -> enforce SS10 by moving |coef| into argument of exponential */
    285
    286 SCIP_EXPR* sum;
    287 SCIP_EXPR* simplifiedsum;
    288 SCIP_EXPR* exponential;
    289 SCIP_EXPR* simplifiedexp;
    290 SCIP_Real expconstant;
    291
    292 /* inform that expression will change */
    293 *changed = TRUE;
    294
    295 /* compute expchild's coefficient as +- 1.0 * exp(log(abs(coef))) */
    296 if( coef > 0.0 )
    297 {
    298 expconstant = log(coef);
    299 coefs[idx] = 1.0;
    300 }
    301 else
    302 {
    303 expconstant = log(-coef);
    304 coefs[idx] = -1.0;
    305 }
    306
    307 /* add constant to exponential's child */
    308 SCIP_CALL( SCIPcreateExprSum(scip, &sum, 1, SCIPexprGetChildren(expr), NULL, expconstant, ownercreate,
    309 ownercreatedata) ); /* expconstant+expchild */
    310
    311 /* simplify sum */
    312 SCIP_CALL( SCIPcallExprSimplify(scip, sum, &simplifiedsum, ownercreate, ownercreatedata) );
    314
    315 /* create exponential with new child */
    316 SCIP_CALL( SCIPcreateExprExp(scip, &exponential, simplifiedsum, ownercreate, ownercreatedata) );
    317 SCIP_CALL( SCIPreleaseExpr(scip, &simplifiedsum) );
    318
    319 /* simplify exponential */
    320 SCIP_CALL( SCIPcallExprSimplify(scip, exponential, &simplifiedexp, ownercreate, ownercreatedata) );
    321 SCIP_CALL( SCIPreleaseExpr(scip, &exponential) );
    322
    323 /* replace current child with simplified exponential */
    324 SCIP_CALL( SCIPreplaceExprChild(scip, duplicate, idx, simplifiedexp) );
    325 SCIP_CALL( SCIPreleaseExpr(scip, &simplifiedexp) );
    326
    327 return SCIP_OKAY;
    328 }
    329
    330 /* other types of (simplified) expressions can be a child of a simplified sum */
    331 assert(!SCIPisExprSum(scip, expr));
    332 assert(!SCIPisExprValue(scip, expr));
    333
    334 return SCIP_OKAY;
    335}
    336
    337/** helper struct for expressions sort */
    338typedef struct
    339{
    340 SCIP* scip; /**< SCIP data structure */
    341 SCIP_EXPR** exprs; /**< expressions */
    343
    344static
    346{
    347 SORTEXPRDATA* data = (SORTEXPRDATA*)dataptr;
    348
    349 return SCIPcompareExpr(data->scip, data->exprs[ind1], data->exprs[ind2]);
    350}
    351
    352/*
    353 * Callback methods of expression handler
    354 */
    355
    356/** simplifies a sum expression
    357 *
    358 * goes through each child and simplifies it; then sorts the simplified children; then sum the children that are equal;
    359 * finally creates a sum expression with all the children that do not have a 0 coefficient and post-process so that SS6
    360 * and SS7 are satisfied
    361 */
    362static
    364{ /*lint --e{715}*/
    365 SCIP_EXPR** children;
    366 SCIP_EXPR* duplicate = NULL;
    367 SCIP_EXPR** newchildren = NULL;
    368 SCIP_Real* newcoefs = NULL;
    369 int nnewchildren;
    370 SCIP_Real newconstant;
    371 SCIP_Real* coefs;
    372 int i;
    373 int nchildren;
    374 SCIP_Bool changed;
    375 SORTEXPRDATA sortdata;
    376 int* order = NULL;
    377
    378 assert(expr != NULL);
    379 assert(simplifiedexpr != NULL);
    380 assert(SCIPexprGetHdlr(expr) == SCIPgetExprhdlrSum(scip));
    381
    382 changed = FALSE;
    383
    384 /* TODO: maybe have a flag to know if it is simplified ? */
    385 /* TODO: can we do this with a shallow duplicate + copy of children pointer? currently simplifyTerm may modify children,
    386 * so one would need to be careful
    387 */
    388 SCIP_CALL( SCIPduplicateExpr(scip, expr, &duplicate, NULL, NULL, ownercreate, ownercreatedata) );
    389 assert(duplicate != NULL);
    390
    391 nchildren = SCIPexprGetNChildren(duplicate);
    392 for( i = 0; i < nchildren; i++ )
    393 {
    394 /* enforces SS8 TODO: remove child? */
    395 /* we have to ask for the coefs everytime, since it might get realloced in simpifyTerm */
    396 if( SCIPgetCoefsExprSum(duplicate)[i] == 0.0 )
    397 {
    398 changed = TRUE;
    399 continue;
    400 }
    401
    402 /* enforces SS2, SS3, SS9, and SS10 */
    403 SCIP_CALL( simplifyTerm(scip, duplicate, i, &changed, ownercreate, ownercreatedata) );
    404 }
    405
    406 /* simplifyTerm can add new children to duplicate and realloc them; so get them again */
    407 nchildren = SCIPexprGetNChildren(duplicate);
    408 children = SCIPexprGetChildren(duplicate);
    409 coefs = SCIPgetCoefsExprSum(duplicate);
    410
    411 /* treat zero term case */
    412 if( nchildren == 0 )
    413 {
    414 SCIP_CALL( SCIPcreateExprValue(scip, simplifiedexpr, SCIPgetConstantExprSum(duplicate), ownercreate, ownercreatedata) );
    415 goto CLEANUP;
    416 }
    417
    418 /* treat one term case */
    419 if( nchildren == 1 )
    420 {
    421 if( coefs[0] == 0.0 )
    422 {
    423 SCIP_CALL( SCIPcreateExprValue(scip, simplifiedexpr, SCIPgetConstantExprSum(duplicate), ownercreate, ownercreatedata) );
    424 goto CLEANUP;
    425 }
    426
    427 if( coefs[0] == 1.0 && SCIPgetConstantExprSum(duplicate) == 0.0 )
    428 *simplifiedexpr = children[0]; /* SS7 */
    429 else
    430 *simplifiedexpr = changed ? duplicate : expr;
    431
    432 SCIPcaptureExpr(*simplifiedexpr);
    433
    434 goto CLEANUP;
    435 }
    436
    437 /* enforces SS5: sort children */
    438 SCIP_CALL( SCIPallocBufferArray(scip, &order, nchildren) );
    439 for( i = 0; i < nchildren; i++ )
    440 order[i] = i;
    441 sortdata.scip = scip;
    442 sortdata.exprs = children;
    443 SCIPsortInd(order, sortExprComp, (void*)&sortdata, nchildren);
    444
    445 /* create sorted variant of children and coefs */
    446 SCIP_CALL( SCIPallocBufferArray(scip, &newchildren, nchildren) );
    447 SCIP_CALL( SCIPallocBufferArray(scip, &newcoefs, nchildren) );
    448 for( i = 0; i < nchildren; ++i )
    449 {
    450 newchildren[i] = children[order[i]];
    451 newcoefs[i] = coefs[order[i]];
    452 if( order[i] != i )
    453 changed = TRUE;
    454 }
    455
    456 /* post-process */
    457
    458 /* enforces SS4 */
    459 nnewchildren = 0;
    460 for( i = 0; i < nchildren; i++ )
    461 {
    462 /* eliminate zero-coefficients */
    463 if( newcoefs[i] == 0.0 )
    464 {
    465 changed = TRUE;
    466 continue;
    467 }
    468
    469 /* sum equal expressions */
    470 if( i < nchildren-1 && SCIPcompareExpr(scip, newchildren[i], newchildren[i+1]) == 0 )
    471 {
    472 changed = TRUE;
    473 /* if we substract two almost equal not-so-small numbers, then set new coefficient to 0.0
    474 * instead of some tiny value that is likely the result of some random round-off error
    475 * E.g., on instance ex1221, we have x1^2 + b3 = 1.25.
    476 * Probing finds an aggregation x1 = 1.11803 - 0.618034 b3.
    477 * Simplify would then produce 1.25 + 1e-16 x1 = 1.25.
    478 */
    479 if( SCIPisEQ(scip, newcoefs[i], -newcoefs[i+1]) && REALABS(newcoefs[i]) >= 1.0 )
    480 newcoefs[i+1] = 0.0;
    481 else
    482 newcoefs[i+1] += newcoefs[i];
    483 continue;
    484 }
    485
    486 /* move i-th child to new position */
    487 newchildren[nnewchildren] = newchildren[i];
    488 newcoefs[nnewchildren] = newcoefs[i];
    489 nnewchildren++;
    490 }
    491
    492 /* build sum expression from finalchildren and post-simplify */
    493 newconstant = SCIPgetConstantExprSum(duplicate);
    494
    495 debugSimplify("what to do? finalchildren has length %d\n", nnewchildren); /*lint !e506 !e681*/
    496
    497 /* enforces SS6: if they are no children, return value */
    498 if( nnewchildren == 0 )
    499 {
    500 debugSimplify("[sum] got empty list, return value %g\n", newconstant); /*lint !e506 !e681*/
    501 SCIP_CALL( SCIPcreateExprValue(scip, simplifiedexpr, newconstant, ownercreate, ownercreatedata) );
    502
    503 goto CLEANUP;
    504 }
    505
    506 /* enforces SS7: if list consists of one expr with coef 1.0 and constant is 0, return that expr */
    507 if( nnewchildren == 1 && newcoefs[0] == 1.0 && newconstant == 0.0 )
    508 {
    509 *simplifiedexpr = newchildren[0];
    510 SCIPcaptureExpr(*simplifiedexpr);
    511
    512 goto CLEANUP;
    513 }
    514
    515 /* build sum expression from children */
    516 if( changed )
    517 {
    518 SCIP_CALL( SCIPcreateExprSum(scip, simplifiedexpr, nnewchildren, newchildren, newcoefs, newconstant,
    519 ownercreate, ownercreatedata) );
    520
    521 goto CLEANUP;
    522 }
    523
    524 *simplifiedexpr = expr;
    525
    526 /* we have to capture it, since it must simulate a "normal" simplified call in which a new expression is created */
    527 SCIPcaptureExpr(*simplifiedexpr);
    528
    529 /* free memory */
    530 CLEANUP:
    531 SCIPfreeBufferArrayNull(scip, &newcoefs);
    532 SCIPfreeBufferArrayNull(scip, &newchildren);
    534 SCIP_CALL( SCIPreleaseExpr(scip, &duplicate) );
    535
    536 return SCIP_OKAY;
    537}
    538
    539/** expression callback to get information for symmetry detection */
    540static
    542{ /*lint --e{715}*/
    543 SCIP_EXPRDATA* exprdata;
    544 int i;
    545
    546 assert(scip != NULL);
    547 assert(expr != NULL);
    548
    549 exprdata = SCIPexprGetData(expr);
    550 assert(exprdata != NULL);
    551
    553
    554 (*symdata)->nconstants = 1;
    555 (*symdata)->ncoefficients = exprdata->coefssize;
    556
    557 SCIP_CALL( SCIPallocBlockMemoryArray(scip, &(*symdata)->constants, 1) );
    558 (*symdata)->constants[0] = exprdata->constant;
    559
    560 SCIP_CALL( SCIPallocBlockMemoryArray(scip, &(*symdata)->coefficients, exprdata->coefssize) );
    561 for( i = 0; i < exprdata->coefssize; ++i )
    562 (*symdata)->coefficients[i] = exprdata->coefficients[i];
    563
    564 SCIP_CALL( SCIPallocBlockMemoryArray(scip, &(*symdata)->children, exprdata->coefssize) );
    565 for( i = 0; i < exprdata->coefssize; ++i )
    566 (*symdata)->children[i] = SCIPexprGetChildren(expr)[i];
    567
    568 return SCIP_OKAY;
    569}
    570
    571/** compares two sum expressions
    572 *
    573 * The order of two sum expressions is a lexicographical order on the terms.
    574 *
    575 * Starting from the *last*, we find the first child where they differ, say, the i-th.
    576 * Then u < v <=> u_i < v_i.
    577 * If there are no such children and they have different number of children, then u < v <=> nchildren(u) < nchildren(v).
    578 * If there are no such children and they have the same number of children, then u < v <=> const(u) < const(v).
    579 * Otherwise, they are the same.
    580 *
    581 * Note: we are assuming expression are simplified, so within u, we have u_1 < u_2, etc
    582 *
    583 * Example: y + z < x + y + z, 2*x + 3*y < 3*x + 3*y
    584 */
    585static
    587{ /*lint --e{715}*/
    588 SCIP_Real const1;
    589 SCIP_Real* coefs1;
    590 SCIP_EXPR** children1;
    591 int nchildren1;
    592 SCIP_Real const2;
    593 SCIP_Real* coefs2;
    594 SCIP_EXPR** children2;
    595 int nchildren2;
    596 int compareresult;
    597 int i;
    598 int j;
    599
    600 nchildren1 = SCIPexprGetNChildren(expr1);
    601 nchildren2 = SCIPexprGetNChildren(expr2);
    602 children1 = SCIPexprGetChildren(expr1);
    603 children2 = SCIPexprGetChildren(expr2);
    604 coefs1 = SCIPgetCoefsExprSum(expr1);
    605 coefs2 = SCIPgetCoefsExprSum(expr2);
    606 const1 = SCIPgetConstantExprSum(expr1);
    607 const2 = SCIPgetConstantExprSum(expr2);
    608
    609 for( i = nchildren1 - 1, j = nchildren2 - 1; i >= 0 && j >= 0; --i, --j )
    610 {
    611 compareresult = SCIPcompareExpr(scip, children1[i], children2[j]);
    612 if( compareresult != 0 )
    613 return compareresult;
    614 else
    615 {
    616 /* expressions are equal, compare coefficient */
    617 if( (coefs1 ? coefs1[i] : 1.0) < (coefs2 ? coefs2[j] : 1.0) )
    618 return -1;
    619 if( (coefs1 ? coefs1[i] : 1.0) > (coefs2 ? coefs2[j] : 1.0) )
    620 return 1;
    621
    622 /* coefficients are equal, continue */
    623 }
    624 }
    625
    626 /* all children of one expression are children of the other expression, use number of children as a tie-breaker */
    627 if( i < j )
    628 {
    629 assert(i == -1);
    630 /* expr1 has less elements, hence expr1 < expr2 */
    631 return -1;
    632 }
    633 if( i > j )
    634 {
    635 assert(j == -1);
    636 /* expr1 has more elements, hence expr1 > expr2 */
    637 return 1;
    638 }
    639
    640 /* everything is equal, use constant/coefficient as tie-breaker */
    641 assert(i == -1 && j == -1);
    642 if( const1 < const2 )
    643 return -1;
    644 if( const1 > const2 )
    645 return 1;
    646
    647 /* they are equal */
    648 return 0;
    649}
    650
    651/** expression handler copy callback */
    652static
    654{ /*lint --e{715}*/
    656
    657 return SCIP_OKAY;
    658}
    659
    660/** expression data copy callback */
    661static
    663{ /*lint --e{715}*/
    664 SCIP_EXPRDATA* sourceexprdata;
    665
    666 assert(targetexprdata != NULL);
    667 assert(sourceexpr != NULL);
    668
    669 sourceexprdata = SCIPexprGetData(sourceexpr);
    670 assert(sourceexprdata != NULL);
    671
    672 SCIP_CALL( createData(targetscip, targetexprdata, SCIPexprGetNChildren(sourceexpr),
    673 sourceexprdata->coefficients, sourceexprdata->constant) );
    674
    675 return SCIP_OKAY;
    676}
    677
    678/** expression data free callback */
    679static
    681{ /*lint --e{715}*/
    682 SCIP_EXPRDATA* exprdata;
    683
    684 assert(expr != NULL);
    685
    686 exprdata = SCIPexprGetData(expr);
    687 assert(exprdata != NULL);
    688
    689 SCIPfreeBlockMemoryArray(scip, &(exprdata->coefficients), exprdata->coefssize);
    690 SCIPfreeBlockMemory(scip, &exprdata);
    691
    692 SCIPexprSetData(expr, NULL);
    693
    694 return SCIP_OKAY;
    695}
    696
    697/** expression print callback */
    698static
    700{ /*lint --e{715}*/
    701 SCIP_EXPRDATA* exprdata;
    702
    703 assert(expr != NULL);
    704
    705 exprdata = SCIPexprGetData(expr);
    706 assert(exprdata != NULL);
    707
    708 /**! [SnippetExprPrintSum] */
    709 switch( stage )
    710 {
    712 {
    713 /* print opening parenthesis, if necessary */
    714 if( EXPRHDLR_PRECEDENCE <= parentprecedence )
    715 {
    716 SCIPinfoMessage(scip, file, "(");
    717 }
    718
    719 /* print constant, if nonzero */
    720 if( exprdata->constant != 0.0 )
    721 {
    722 SCIPinfoMessage(scip, file, "%.15g", exprdata->constant);
    723 }
    724 break;
    725 }
    726
    728 {
    729 SCIP_Real coef;
    730
    731 coef = exprdata->coefficients[currentchild];
    732
    733 /* print coefficient, if necessary */
    734 if( coef == 1.0 )
    735 {
    736 /* if coefficient is 1.0, then print only "+" if not the first term */
    737 if( exprdata->constant != 0.0 || currentchild > 0 )
    738 {
    739 SCIPinfoMessage(scip, file, "+");
    740 }
    741 }
    742 else if( coef == -1.0 )
    743 {
    744 /* if coefficient is -1.0, then print only "-" */
    745 SCIPinfoMessage(scip, file, "-");
    746 }
    747 else
    748 {
    749 /* force "+" sign on positive coefficient if not the first term */
    750 SCIPinfoMessage(scip, file, (exprdata->constant != 0.0 || currentchild > 0) ? "%+.15g*" : "%.15g*", coef);
    751 }
    752
    753 break;
    754 }
    755
    757 {
    758 /* print closing parenthesis, if necessary */
    759 if( EXPRHDLR_PRECEDENCE <= parentprecedence )
    760 {
    761 SCIPinfoMessage(scip, file, ")");
    762 }
    763 break;
    764 }
    765
    767 default: ;
    768 }
    769 /**! [SnippetExprPrintSum] */
    770
    771 return SCIP_OKAY;
    772}
    773
    774/** expression point evaluation callback */
    775static
    777{ /*lint --e{715}*/
    778 SCIP_EXPRDATA* exprdata;
    779 int c;
    780
    781 assert(expr != NULL);
    782
    783 exprdata = SCIPexprGetData(expr);
    784 assert(exprdata != NULL);
    785
    786 /**! [SnippetExprEvalSum] */
    787 *val = exprdata->constant;
    788 for( c = 0; c < SCIPexprGetNChildren(expr); ++c )
    789 {
    790 assert(SCIPexprGetEvalValue(SCIPexprGetChildren(expr)[c]) != SCIP_INVALID); /*lint !e777*/
    791
    792 *val += exprdata->coefficients[c] * SCIPexprGetEvalValue(SCIPexprGetChildren(expr)[c]);
    793 }
    794 /**! [SnippetExprEvalSum] */
    795
    796 return SCIP_OKAY;
    797}
    798
    799/** expression forward derivative evaluation callback */
    800static
    802{ /*lint --e{715}*/
    803 SCIP_EXPRDATA* exprdata;
    804 int c;
    805
    806 assert(expr != NULL);
    807 assert(dot != NULL);
    808
    809 exprdata = SCIPexprGetData(expr);
    810 assert(exprdata != NULL);
    811
    812 *dot = 0.0;
    813 for( c = 0; c < SCIPexprGetNChildren(expr); ++c )
    814 {
    815 assert(SCIPexprGetDot(SCIPexprGetChildren(expr)[c]) != SCIP_INVALID); /*lint !e777*/
    816
    817 *dot += exprdata->coefficients[c] * SCIPexprGetDot(SCIPexprGetChildren(expr)[c]);
    818 }
    819
    820 return SCIP_OKAY;
    821}
    822
    823/** expression derivative evaluation callback */
    824static
    826{ /*lint --e{715}*/
    827 assert(expr != NULL);
    828 assert(SCIPexprGetData(expr) != NULL);
    829 assert(childidx >= 0 && childidx < SCIPexprGetNChildren(expr));
    830 assert(SCIPexprGetChildren(expr)[childidx] != NULL);
    831 assert(!SCIPisExprValue(scip, SCIPexprGetChildren(expr)[childidx]));
    832
    833 *val = SCIPgetCoefsExprSum(expr)[childidx];
    834
    835 return SCIP_OKAY;
    836}
    837
    838/** expression backward forward derivative evaluation callback */
    839static
    841{ /*lint --e{715}*/
    842 assert(bardot != NULL);
    843
    844 *bardot = 0.0;
    845
    846 return SCIP_OKAY;
    847}
    848
    849/** expression interval evaluation callback */
    850static
    852{ /*lint --e{715}*/
    853 SCIP_EXPRDATA* exprdata;
    854 SCIP_INTERVAL suminterval;
    855 int c;
    856
    857 assert(expr != NULL);
    858
    859 exprdata = SCIPexprGetData(expr);
    860 assert(exprdata != NULL);
    861
    862 SCIPintervalSet(interval, exprdata->constant);
    863
    864 SCIPdebugMsg(scip, "inteval %p with %d children: %.20g", (void*)expr, SCIPexprGetNChildren(expr), exprdata->constant);
    865
    866 for( c = 0; c < SCIPexprGetNChildren(expr); ++c )
    867 {
    868 SCIP_INTERVAL childinterval;
    869
    870 childinterval = SCIPexprGetActivity(SCIPexprGetChildren(expr)[c]);
    871 if( SCIPintervalIsEmpty(SCIP_INTERVAL_INFINITY, childinterval) )
    872 {
    873 SCIPintervalSetEmpty(interval);
    874 break;
    875 }
    876
    877 /* compute coefficients[c] * childinterval and add the result to the so far computed interval */
    878 if( exprdata->coefficients[c] == 1.0 )
    879 {
    880 SCIPintervalAdd(SCIP_INTERVAL_INFINITY, interval, *interval, childinterval);
    881 }
    882 else
    883 {
    884 SCIPintervalMulScalar(SCIP_INTERVAL_INFINITY, &suminterval, childinterval, exprdata->coefficients[c]);
    885 SCIPintervalAdd(SCIP_INTERVAL_INFINITY, interval, *interval, suminterval);
    886 }
    887
    888 SCIPdebugMsgPrint(scip, " %+.20g*[%.20g,%.20g]", exprdata->coefficients[c], childinterval.inf, childinterval.sup);
    889 }
    890 SCIPdebugMsgPrint(scip, " = [%.20g,%.20g]\n", interval->inf, interval->sup);
    891
    892 return SCIP_OKAY;
    893}
    894
    895/** initial estimators callback */
    896static
    898{ /*lint --e{715}*/
    899 SCIP_EXPRDATA* exprdata;
    900
    901#ifdef SCIP_DEBUG
    902 SCIPinfoMessage(scip, NULL, "initEstimatesSum %d children: ", SCIPexprGetNChildren(expr));
    903 SCIPprintExpr(scip, expr, NULL);
    904 SCIPinfoMessage(scip, NULL, "\n");
    905#endif
    906 assert(scip != NULL);
    907 assert(expr != NULL);
    908 assert(coefs[0] != NULL);
    909 assert(constant != NULL);
    910 assert(nreturned != NULL);
    911
    913
    914 exprdata = SCIPexprGetData(expr);
    915 assert(exprdata != NULL);
    916
    917 BMScopyMemoryArray(coefs[0], exprdata->coefficients, SCIPexprGetNChildren(expr));
    918 *constant = exprdata->constant;
    919 *nreturned = 1;
    920
    921 return SCIP_OKAY;
    922}
    923
    924/** expression estimate callback */
    925static
    927{ /*lint --e{715}*/
    928 SCIP_EXPRDATA* exprdata;
    929
    930 assert(scip != NULL);
    931 assert(expr != NULL);
    932 assert(islocal != NULL);
    933 assert(success != NULL);
    934 assert(branchcand != NULL);
    935
    937
    938 exprdata = SCIPexprGetData(expr);
    939 assert(exprdata != NULL);
    940
    941 /* NOTE: nlhdlr_default assumes in nlhdlrInitSepaDefault that this estimator can be used for both under- and overestimation */
    942
    943 BMScopyMemoryArray(coefs, exprdata->coefficients, SCIPexprGetNChildren(expr));
    944 *constant = exprdata->constant;
    945 *islocal = FALSE;
    946 *success = TRUE;
    947
    948 /* for none of our children, branching would improve the underestimator, so set branchcand[i]=FALSE everywhere
    949 * if we branch for numerical reasons, then cons-expr-core should figure out what the candidates are
    950 */
    951 BMSclearMemoryArray(branchcand, SCIPexprGetNChildren(expr));
    952
    953 return SCIP_OKAY;
    954}
    955
    956/** expression reverse propagation callback */
    957static
    959{ /*lint --e{715}*/
    960 SCIP_EXPRDATA* exprdata;
    961 SCIP_INTERVAL* newbounds;
    962 int nchildren;
    963 int nreductions;
    964
    965 assert(scip != NULL);
    966 assert(expr != NULL);
    967 assert(infeasible != NULL);
    968
    969 nchildren = SCIPexprGetNChildren(expr);
    970 assert(nchildren > 0);
    971
    972 exprdata = SCIPexprGetData(expr);
    973 assert(exprdata != NULL);
    974
    975 SCIP_CALL( SCIPallocBufferArray(scip, &newbounds, nchildren) );
    976
    977 nreductions = SCIPintervalPropagateWeightedSum(SCIP_INTERVAL_INFINITY, nchildren, childrenbounds,
    978 exprdata->coefficients, exprdata->constant, bounds, newbounds, infeasible);
    979
    980 if( !*infeasible && nreductions > 0 )
    981 BMScopyMemoryArray(childrenbounds, newbounds, nchildren);
    982
    983 SCIPfreeBufferArray(scip, &newbounds);
    984
    985 return SCIP_OKAY;
    986}
    987
    988/** sum hash callback */
    989static
    991{ /*lint --e{715}*/
    992 SCIP_EXPRDATA* exprdata;
    993 int c;
    994
    995 assert(scip != NULL);
    996 assert(expr != NULL);
    997 assert(hashkey != NULL);
    998 assert(childrenhashes != NULL);
    999
    1000 exprdata = SCIPexprGetData(expr);
    1001 assert(exprdata != NULL);
    1002
    1003 /**! [SnippetExprHashSum] */
    1004 *hashkey = EXPRHDLR_HASHKEY;
    1005 *hashkey ^= SCIPcalcFibHash(exprdata->constant);
    1006
    1007 for( c = 0; c < SCIPexprGetNChildren(expr); ++c )
    1008 *hashkey ^= SCIPcalcFibHash(exprdata->coefficients[c]) ^ childrenhashes[c];
    1009 /**! [SnippetExprHashSum] */
    1010
    1011 return SCIP_OKAY;
    1012}
    1013
    1014/** expression curvature detection callback */
    1015static
    1017{ /*lint --e{715}*/
    1018 SCIP_EXPRDATA* exprdata;
    1019 int i;
    1020
    1021 assert(scip != NULL);
    1022 assert(expr != NULL);
    1023 assert(childcurv != NULL);
    1024 assert(success != NULL);
    1025
    1026 exprdata = SCIPexprGetData(expr);
    1027 assert(exprdata != NULL);
    1028
    1029 for( i = 0; i < SCIPexprGetNChildren(expr); ++i )
    1030 childcurv[i] = SCIPexprcurvMultiply(exprdata->coefficients[i], exprcurvature);
    1031
    1032 *success = TRUE;
    1033
    1034 return SCIP_OKAY;
    1035}
    1036
    1037/** expression monotonicity detection callback */
    1038static
    1040{ /*lint --e{715}*/
    1041 SCIP_EXPRDATA* exprdata;
    1042
    1043 assert(scip != NULL);
    1044 assert(expr != NULL);
    1045 assert(result != NULL);
    1046 assert(childidx >= 0 && childidx < SCIPexprGetNChildren(expr));
    1047
    1048 exprdata = SCIPexprGetData(expr);
    1049 assert(exprdata != NULL);
    1050
    1051 *result = exprdata->coefficients[childidx] >= 0.0 ? SCIP_MONOTONE_INC : SCIP_MONOTONE_DEC;
    1052
    1053 return SCIP_OKAY;
    1054}
    1055
    1056/** expression integrality detection callback */
    1057static
    1059{ /*lint --e{715}*/
    1060 SCIP_EXPRDATA* exprdata;
    1061 int i;
    1062
    1063 assert(scip != NULL);
    1064 assert(expr != NULL);
    1065 assert(integrality != NULL);
    1066
    1067 exprdata = SCIPexprGetData(expr);
    1068 assert(exprdata != NULL);
    1069
    1070 /**! [SnippetExprIntegralitySum] */
    1071 *integrality = EPSISINT(exprdata->constant, 0.0) ? SCIP_IMPLINTTYPE_STRONG : SCIP_IMPLINTTYPE_NONE; /*lint !e835 */
    1072
    1073 for( i = 0; i < SCIPexprGetNChildren(expr) && *integrality != SCIP_IMPLINTTYPE_NONE; ++i )
    1074 {
    1075 SCIP_EXPR* child = SCIPexprGetChildren(expr)[i];
    1076 assert(child != NULL);
    1077
    1078 if( EPSISINT(exprdata->coefficients[i], 0.0) ) /*lint !e835*/
    1079 *integrality = MIN(*integrality, SCIPexprGetIntegrality(child)); /*lint !e666*/
    1080 else
    1081 *integrality = SCIP_IMPLINTTYPE_NONE;
    1082 }
    1083 /**! [SnippetExprIntegralitySum] */
    1084
    1085 return SCIP_OKAY;
    1086}
    1087
    1088/** creates the handler for sum expressions and includes it into SCIP */
    1090 SCIP* scip /**< SCIP data structure */
    1091 )
    1092{
    1093 SCIP_EXPRHDLR* exprhdlr;
    1094
    1096 assert(exprhdlr != NULL);
    1097
    1098 SCIPexprhdlrSetCopyFreeHdlr(exprhdlr, copyhdlrSum, NULL);
    1099 SCIPexprhdlrSetCopyFreeData(exprhdlr, copydataSum, freedataSum);
    1100 SCIPexprhdlrSetSimplify(exprhdlr, simplifySum);
    1101 SCIPexprhdlrSetCompare(exprhdlr, compareSum);
    1102 SCIPexprhdlrSetPrint(exprhdlr, printSum);
    1103 SCIPexprhdlrSetIntEval(exprhdlr, intevalSum);
    1104 SCIPexprhdlrSetEstimate(exprhdlr, initEstimatesSum, estimateSum);
    1105 SCIPexprhdlrSetReverseProp(exprhdlr, reversepropSum);
    1106 SCIPexprhdlrSetHash(exprhdlr, hashSum);
    1107 SCIPexprhdlrSetDiff(exprhdlr, bwdiffSum, fwdiffSum, bwfwdiffSum);
    1108 SCIPexprhdlrSetCurvature(exprhdlr, curvatureSum);
    1109 SCIPexprhdlrSetMonotonicity(exprhdlr, monotonicitySum);
    1110 SCIPexprhdlrSetIntegrality(exprhdlr, integralitySum);
    1111 SCIPexprhdlrSetGetSymdata(exprhdlr, getSymDataSum);
    1112
    1113 return SCIP_OKAY;
    1114}
    1115
    1116/** creates a sum expression */
    1118 SCIP* scip, /**< SCIP data structure */
    1119 SCIP_EXPR** expr, /**< pointer where to store expression */
    1120 int nchildren, /**< number of children */
    1121 SCIP_EXPR** children, /**< children */
    1122 SCIP_Real* coefficients, /**< array with coefficients for all children (or NULL if all 1.0) */
    1123 SCIP_Real constant, /**< constant term of sum */
    1124 SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), /**< function to call to create ownerdata */
    1125 void* ownercreatedata /**< data to pass to ownercreate */
    1126 )
    1127{
    1128 SCIP_EXPRDATA* exprdata;
    1129
    1130 SCIP_CALL( createData(scip, &exprdata, nchildren, coefficients, constant) );
    1131
    1132 SCIP_CALL( SCIPcreateExpr(scip, expr, SCIPgetExprhdlrSum(scip), exprdata, nchildren, children, ownercreate, ownercreatedata) );
    1133
    1134 return SCIP_OKAY;
    1135}
    1136
    1137/** sets the constant of a summation expression */
    1139 SCIP_EXPR* expr, /**< sum expression */
    1140 SCIP_Real constant /**< constant */
    1141 )
    1142{
    1143 SCIP_EXPRDATA* exprdata;
    1144
    1145 assert(expr != NULL);
    1146
    1147 exprdata = SCIPexprGetData(expr);
    1148 assert(exprdata != NULL);
    1149
    1150 exprdata->constant = constant;
    1151}
    1152
    1153/** appends an expression to a sum expression */
    1155 SCIP* scip, /**< SCIP data structure */
    1156 SCIP_EXPR* expr, /**< sum expression */
    1157 SCIP_EXPR* child, /**< expression to be appended */
    1158 SCIP_Real childcoef /**< child's coefficient */
    1159 )
    1160{
    1161 SCIP_EXPRDATA* exprdata;
    1162 int nchildren;
    1163
    1164 assert(expr != NULL);
    1165 assert(SCIPisExprSum(scip, expr));
    1166
    1167 exprdata = SCIPexprGetData(expr);
    1168 assert(exprdata != NULL);
    1169
    1170 nchildren = SCIPexprGetNChildren(expr);
    1171
    1172 SCIP_CALL( SCIPensureBlockMemoryArray(scip, &exprdata->coefficients, &exprdata->coefssize, nchildren + 1) );
    1173
    1174 assert(exprdata->coefssize > nchildren);
    1175 exprdata->coefficients[nchildren] = childcoef;
    1176
    1177 SCIP_CALL( SCIPappendExprChild(scip, expr, child) );
    1178
    1179 return SCIP_OKAY;
    1180}
    1181
    1182/** multiplies given sum expression by a constant */
    1184 SCIP_EXPR* expr, /**< sum expression */
    1185 SCIP_Real constant /**< constant that multiplies sum expression */
    1186 )
    1187{
    1188 int i;
    1189 SCIP_EXPRDATA* exprdata;
    1190
    1191 assert(expr != NULL);
    1192
    1193 exprdata = SCIPexprGetData(expr);
    1194 assert(exprdata != NULL);
    1195
    1196 for( i = 0; i < SCIPexprGetNChildren(expr); ++i )
    1197 exprdata->coefficients[i] *= constant;
    1198 exprdata->constant *= constant;
    1199}
    1200
    1201/** constructs the expanded product of two sum expressions */
    1203 SCIP* scip, /**< SCIP data structure */
    1204 SCIP_EXPR** product, /**< buffer where to store multiplied sums (expanded as sum) */
    1205 SCIP_EXPR* factor1, /**< first sum */
    1206 SCIP_EXPR* factor2, /**< second sum */
    1207 SCIP_Bool simplify, /**< whether to simplify created terms and sum */
    1208 SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), /**< function to call to create ownerdata */
    1209 void* ownercreatedata /**< data to pass to ownercreate */
    1210 )
    1211{
    1212 SCIP_Real constant1;
    1213 SCIP_Real constant2;
    1214 int nchildren1;
    1215 int nchildren2;
    1216 int i1;
    1217 int i2;
    1218
    1219 assert(scip != NULL);
    1220 assert(product != NULL);
    1221 assert(factor1 != NULL);
    1222 assert(SCIPisExprSum(scip, factor1));
    1223 assert(factor2 != NULL);
    1224 assert(SCIPisExprSum(scip, factor2));
    1225
    1226 constant1 = SCIPgetConstantExprSum(factor1);
    1227 constant2 = SCIPgetConstantExprSum(factor2);
    1228 nchildren1 = SCIPexprGetNChildren(factor1);
    1229 nchildren2 = SCIPexprGetNChildren(factor2);
    1230
    1231 /* TODO might be nice to integrate more with simplify and construct a simplified sum right away */
    1232
    1233 SCIP_CALL( SCIPcreateExprSum(scip, product, 0, NULL, NULL, constant1 * constant2, ownercreate, ownercreatedata) );
    1234
    1235 /* first add constant1 * factor2
    1236 * constant * constant2 already added above
    1237 */
    1238 if( constant1 != 0.0 )
    1239 {
    1240 for( i2 = 0; i2 < nchildren2; ++i2 )
    1241 {
    1242 SCIP_CALL( SCIPappendExprSumExpr(scip, *product, SCIPexprGetChildren(factor2)[i2], constant1 * SCIPgetCoefsExprSum(factor2)[i2]) );
    1243 }
    1244 }
    1245
    1246 for( i1 = 0; i1 < nchildren1; ++i1 )
    1247 {
    1248 SCIP_EXPR* child1;
    1249 SCIP_EXPR* child2;
    1250 SCIP_Real coef1;
    1251 SCIP_Real coef2;
    1252
    1253 coef1 = SCIPgetCoefsExprSum(factor1)[i1];
    1254 child1 = SCIPexprGetChildren(factor1)[i1];
    1255
    1256 if( constant2 != 0.0 )
    1257 {
    1258 /* add coef1 * child1 * constant2 */
    1259 SCIP_CALL( SCIPappendExprSumExpr(scip, *product, child1, coef1 * constant2) );
    1260 }
    1261
    1262 for( i2 = 0; i2 < nchildren2; ++i2 )
    1263 {
    1264 /* add coef1 * child1 * coef2 * child2 */
    1265 SCIP_EXPR* termprod;
    1266 SCIP_EXPR* termprodsimplified;
    1267 SCIP_EXPR* termfactors[2];
    1268
    1269 coef2 = SCIPgetCoefsExprSum(factor2)[i2];
    1270 child2 = SCIPexprGetChildren(factor2)[i2];
    1271
    1272 /* create child1 * child2 expr */
    1273 termfactors[0] = child1;
    1274 termfactors[1] = child2;
    1275 SCIP_CALL( SCIPcreateExprProduct(scip, &termprod, 2, termfactors, 1.0, NULL, NULL) );
    1276
    1277 if( simplify )
    1278 {
    1279 SCIP_Bool changed;
    1280 SCIP_Bool infeasible;
    1281
    1282 /* simplify child1*child2 */
    1283 SCIP_CALL( SCIPsimplifyExpr(scip, termprod, &termprodsimplified, &changed, &infeasible, ownercreate, ownercreatedata) );
    1284 assert(!infeasible); /* simplify of products should never be infeasible */
    1285 SCIP_CALL( SCIPreleaseExpr(scip, &termprod) );
    1286 }
    1287 else
    1288 termprodsimplified = termprod;
    1289
    1290 /* append to product */
    1291 SCIP_CALL( SCIPappendExprSumExpr(scip, *product, termprodsimplified, coef1 * coef2) );
    1292 SCIP_CALL( SCIPreleaseExpr(scip, &termprodsimplified) );
    1293 }
    1294 }
    1295
    1296 if( simplify )
    1297 {
    1298 SCIP_EXPR* prodsimplified;
    1299 SCIP_Bool changed;
    1300 SCIP_Bool infeasible;
    1301
    1302 SCIP_CALL( SCIPsimplifyExpr(scip, *product, &prodsimplified, &changed, &infeasible, ownercreate, ownercreatedata) );
    1303 assert(!infeasible);
    1304 SCIP_CALL( SCIPreleaseExpr(scip, product) );
    1305 *product = prodsimplified;
    1306 }
    1307
    1308 return SCIP_OKAY;
    1309}
    1310
    1311/** constructs the expanded power of a sum expression
    1312 *
    1313 * @attention The number of terms in the expansion grows exponential with the exponent. Be aware of what you wish for.
    1314 */
    1316 SCIP* scip, /**< SCIP data structure */
    1317 SCIP_EXPR** result, /**< buffer where to store expanded power of sum */
    1318 SCIP_EXPR* base, /**< sum */
    1319 int exponent, /**< exponent > 1 */
    1320 SCIP_Bool simplify, /**< whether to simplify created terms and sum */
    1321 SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), /**< function to call to create ownerdata */
    1322 void* ownercreatedata /**< data to pass to ownercreate */
    1323 )
    1324{
    1325 /* for sum_i alpha_i expr_i and exponent p, this constructs
    1326 * sum_{beta} (p over beta) prod_i (alpha_i expr_i)^beta_i over all multiindex beta such that sum_i beta_i = p
    1327 * See also https://en.wikipedia.org/wiki/Multinomial_theorem
    1328 * Calculation of multinomials adapted from https://github.com/m-j-w/MultinomialSeries.jl
    1329 *
    1330 * TODO might be nice to integrate more with simplify and construct a simplified sum right away
    1331 */
    1332
    1333 SCIP_EXPR** children;
    1334 SCIP_EXPR*** childrenpower;
    1335 SCIP_Real* coefs;
    1336 SCIP_Real constant;
    1337 SCIP_Bool haveconst;
    1338 int nchildren;
    1339 int nterms;
    1340 int* factorials;
    1341 int* beta;
    1342 int betapos;
    1343 int restsum;
    1344 int multinomialcoef;
    1345 int i;
    1346
    1347 SCIP_EXPR* newterm;
    1348 SCIP_Real newtermcoef;
    1349
    1350 assert(scip != NULL);
    1351 assert(result != NULL);
    1352 assert(base != NULL);
    1353 assert(exponent > 1);
    1354 assert(SCIPisExprSum(scip, base));
    1355 assert(exponent > 1.0);
    1356
    1357 children = SCIPexprGetChildren(base);
    1358 nchildren = SCIPexprGetNChildren(base);
    1359 coefs = SCIPgetCoefsExprSum(base);
    1360 constant = SCIPgetConstantExprSum(base);
    1361 haveconst = constant != 0.0;
    1362 nterms = nchildren + (haveconst ? 1 : 0);
    1363
    1364#ifdef SCIP_DEBUG
    1365 SCIPinfoMessage(scip, NULL, "expanding (");
    1366 SCIPprintExpr(scip, base, NULL);
    1367 SCIPinfoMessage(scip, NULL, ")^%d\n", exponent);
    1368#endif
    1369
    1370 SCIP_CALL( SCIPcreateExprSum(scip, result, 0, NULL, NULL, 0.0, ownercreate, ownercreatedata) );
    1371
    1373 SCIP_CALL( SCIPallocBufferArray(scip, &factorials, exponent+1) );
    1374
    1375 /* precompute factorials k!, k = 0...exponent */
    1376 factorials[0] = 1;
    1377 for( i = 1; i <= exponent; ++i )
    1378 factorials[i] = factorials[i-1] * i;
    1379
    1380 /* precompute children^k, k=1..exponent */
    1381 SCIP_CALL( SCIPallocBufferArray(scip, &childrenpower, nchildren) );
    1382 for( i = 0; i < nchildren; ++i )
    1383 {
    1384 int k;
    1385 SCIP_CALL( SCIPallocBufferArray(scip, &childrenpower[i], exponent+1) );
    1386 childrenpower[i][1] = children[i];
    1387 for( k = 2; k <= exponent; ++k )
    1388 {
    1389 SCIP_CALL( SCIPcreateExprPow(scip, &childrenpower[i][k], children[i], (SCIP_Real)k, NULL, NULL) );
    1390 if( simplify )
    1391 {
    1392 SCIP_Bool changed;
    1393 SCIP_Bool infeasible;
    1394 SCIP_EXPR* simplified;
    1395
    1396 SCIP_CALL( SCIPsimplifyExpr(scip, childrenpower[i][k], &simplified, &changed, &infeasible, ownercreate, ownercreatedata) );
    1397 assert(!infeasible);
    1398 SCIP_CALL( SCIPreleaseExpr(scip, &childrenpower[i][k]) );
    1399 childrenpower[i][k] = simplified;
    1400 }
    1401 }
    1402 }
    1403
    1404 /* first multinomial is (exponent,0,0,...) */
    1405 beta[0] = exponent;
    1406 betapos = 0;
    1407 do
    1408 {
    1409 /* compute multinomial coef exponent! / (beta[0]! * ... * beta[nterms-1]!) */
    1410 multinomialcoef = factorials[exponent];
    1411 for( i = 0; i < nterms; ++i )
    1412 {
    1413 assert(beta[i] >= 0);
    1414 assert(beta[i] <= exponent);
    1415 multinomialcoef /= factorials[beta[i]];
    1416 }
    1417
    1418 SCIPdebugMsg(scip, "multinomial (");
    1419 for( i = 0; i < nterms; ++i )
    1420 SCIPdebugPrintf("%d ", beta[i]);
    1421 SCIPdebugPrintf(") with coef %d\n", multinomialcoef);
    1422
    1423 /* construct new term for expanded sum */
    1424 SCIP_CALL( SCIPcreateExprProduct(scip, &newterm, 0, NULL, 1.0, ownercreate, ownercreatedata) );
    1425 newtermcoef = multinomialcoef;
    1426 for( i = 0; i < nterms; ++i )
    1427 {
    1428 if( beta[i] == 0 )
    1429 continue;
    1430
    1431 if( i == nterms-1 && haveconst )
    1432 {
    1433 /* if constant term, then update newtermcoef */
    1434 newtermcoef *= pow(constant, (double)beta[i]);
    1435 continue;
    1436 }
    1437
    1438 /* alpha_i^beta_i */
    1439 newtermcoef *= pow(coefs[i], (double)beta[i]);
    1440
    1441 /* expr_i^beta_i*/
    1442 SCIP_CALL( SCIPappendExprChild(scip, newterm, childrenpower[i][beta[i]]) );
    1443 }
    1444
    1445 /* append newterm to sum */
    1446 switch( SCIPexprGetNChildren(newterm) )
    1447 {
    1448 case 0:
    1449 {
    1450 /* no factor in product, so it is a constant -> update constant in sum */
    1451 SCIPsetConstantExprSum(*result, SCIPgetConstantExprSum(*result) + newtermcoef);
    1452 break;
    1453 }
    1454
    1455 case 1:
    1456 {
    1457 /* only one factor in product -> add this factor itself to sum */
    1458 SCIP_CALL( SCIPappendExprSumExpr(scip, *result, SCIPexprGetChildren(newterm)[0], newtermcoef) );
    1459 break;
    1460 }
    1461
    1462 default:
    1463 {
    1464 if( simplify )
    1465 {
    1466 /* simplify product */
    1467 SCIP_Bool changed;
    1468 SCIP_Bool infeasible;
    1469 SCIP_EXPR* simplified;
    1470
    1471 SCIP_CALL( SCIPsimplifyExpr(scip, newterm, &simplified, &changed, &infeasible, ownercreate, ownercreatedata) );
    1472 assert(!infeasible);
    1473 SCIP_CALL( SCIPreleaseExpr(scip, &newterm) );
    1474 newterm = simplified;
    1475 }
    1476
    1477 /* append new term to sum */
    1478 SCIP_CALL( SCIPappendExprSumExpr(scip, *result, newterm, newtermcoef) );
    1479 break;
    1480 }
    1481 }
    1482 SCIP_CALL( SCIPreleaseExpr(scip, &newterm) );
    1483
    1484 /* determine next beta */
    1485 while( beta[betapos] == 0 )
    1486 --betapos;
    1487
    1488 if( betapos == nterms-1 )
    1489 {
    1490 do
    1491 {
    1492 if( betapos == 0 )
    1493 goto TERMINATE;
    1494 --betapos;
    1495 }
    1496 while( beta[betapos] == 0 );
    1497
    1498 restsum = 0;
    1499 for( i = betapos+1; i < nterms; ++i )
    1500 {
    1501 restsum += beta[i];
    1502 beta[i] = 0;
    1503 }
    1504 beta[betapos+1] = restsum;
    1505 }
    1506
    1507 if( beta[betapos] > 0 )
    1508 {
    1509 --beta[betapos];
    1510 ++beta[++betapos];
    1511 }
    1512 }
    1513 while( TRUE ); /*lint !e506*/
    1514
    1515 TERMINATE:
    1516
    1517 if( simplify )
    1518 {
    1519 SCIP_Bool changed;
    1520 SCIP_Bool infeasible;
    1521 SCIP_EXPR* simplified;
    1522
    1523 SCIP_CALL( SCIPsimplifyExpr(scip, *result, &simplified, &changed, &infeasible, ownercreate, ownercreatedata) );
    1524 assert(!infeasible);
    1525 SCIP_CALL( SCIPreleaseExpr(scip, result) );
    1526 *result = simplified;
    1527 }
    1528
    1529 for( i = nchildren-1; i >= 0; --i )
    1530 {
    1531 int k;
    1532 for( k = exponent; k >= 2; --k )
    1533 {
    1534 SCIP_CALL( SCIPreleaseExpr(scip, &childrenpower[i][k]) );
    1535 }
    1536 SCIPfreeBufferArray(scip, &childrenpower[i]);
    1537 }
    1538 SCIPfreeBufferArray(scip, &childrenpower);
    1539 SCIPfreeBufferArray(scip, &factorials);
    1540 SCIPfreeBufferArray(scip, &beta);
    1541
    1542#ifdef SCIP_DEBUG
    1543 SCIPinfoMessage(scip, NULL, "-> ");
    1544 SCIPprintExpr(scip, *result, NULL);
    1545 SCIPinfoMessage(scip, NULL, "\n");
    1546#endif
    1547
    1548 return SCIP_OKAY;
    1549}
    1550
    1551/* from pub_expr.h */
    1552
    1553/** gets the coefficients of a summation expression */
    1555 SCIP_EXPR* expr /**< sum expression */
    1556 )
    1557{
    1558 SCIP_EXPRDATA* exprdata;
    1559
    1560 assert(expr != NULL);
    1561
    1562 exprdata = SCIPexprGetData(expr);
    1563 assert(exprdata != NULL);
    1564
    1565 return exprdata->coefficients;
    1566}
    1567
    1568/** gets the constant of a summation expression */
    1570 SCIP_EXPR* expr /**< sum expression */
    1571 )
    1572{
    1573 SCIP_EXPRDATA* exprdata;
    1574
    1575 assert(expr != NULL);
    1576
    1577 exprdata = SCIPexprGetData(expr);
    1578 assert(exprdata != NULL);
    1579
    1580 return exprdata->constant;
    1581}
    #define NULL
    Definition: def.h:257
    #define EPSISINT(x, eps)
    Definition: def.h:204
    #define SCIP_INVALID
    Definition: def.h:187
    #define SCIP_INTERVAL_INFINITY
    Definition: def.h:189
    #define SCIP_Bool
    Definition: def.h:100
    #define MIN(x, y)
    Definition: def.h:233
    #define SCIP_STRINGEQ(name, reference, retcode)
    Definition: def.h:454
    #define SCIP_Real
    Definition: def.h:165
    #define TRUE
    Definition: def.h:102
    #define FALSE
    Definition: def.h:103
    #define REALABS(x)
    Definition: def.h:191
    #define SCIP_CALL(x)
    Definition: def.h:364
    exponential expression handler
    power and signed power expression handlers
    product expression handler
    #define debugSimplify
    Definition: expr_sum.c:54
    #define EXPRHDLR_HASHKEY
    Definition: expr_sum.c:47
    static SCIP_DECL_EXPRPRINT(printSum)
    Definition: expr_sum.c:699
    static SCIP_DECL_EXPRCOPYHDLR(copyhdlrSum)
    Definition: expr_sum.c:653
    static SCIP_DECL_EXPRBWDIFF(bwdiffSum)
    Definition: expr_sum.c:825
    static SCIP_DECL_EXPREVAL(evalSum)
    Definition: expr_sum.c:776
    static SCIP_DECL_SORTINDCOMP(sortExprComp)
    Definition: expr_sum.c:345
    static SCIP_DECL_EXPRFREEDATA(freedataSum)
    Definition: expr_sum.c:680
    #define EXPRHDLR_NAME
    Definition: expr_sum.c:44
    static SCIP_DECL_EXPRCOMPARE(compareSum)
    Definition: expr_sum.c:586
    static SCIP_DECL_EXPRINTEGRALITY(integralitySum)
    Definition: expr_sum.c:1058
    static SCIP_DECL_EXPRINTEVAL(intevalSum)
    Definition: expr_sum.c:851
    static SCIP_RETCODE createData(SCIP *scip, SCIP_EXPRDATA **exprdata, int ncoefficients, SCIP_Real *coefficients, SCIP_Real constant)
    Definition: expr_sum.c:75
    static SCIP_DECL_EXPRREVERSEPROP(reversepropSum)
    Definition: expr_sum.c:958
    static SCIP_DECL_EXPRESTIMATE(estimateSum)
    Definition: expr_sum.c:926
    static SCIP_DECL_EXPRBWFWDIFF(bwfwdiffSum)
    Definition: expr_sum.c:840
    static SCIP_DECL_EXPRHASH(hashSum)
    Definition: expr_sum.c:990
    static SCIP_DECL_EXPRCURVATURE(curvatureSum)
    Definition: expr_sum.c:1016
    static SCIP_DECL_EXPRGETSYMDATA(getSymDataSum)
    Definition: expr_sum.c:541
    static SCIP_RETCODE simplifyTerm(SCIP *scip, SCIP_EXPR *duplicate, int idx, SCIP_Bool *changed, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_sum.c:113
    static SCIP_DECL_EXPRINITESTIMATES(initEstimatesSum)
    Definition: expr_sum.c:897
    static SCIP_DECL_EXPRSIMPLIFY(simplifySum)
    Definition: expr_sum.c:363
    #define EXPRHDLR_DESC
    Definition: expr_sum.c:45
    #define EXPRHDLR_PRECEDENCE
    Definition: expr_sum.c:46
    static SCIP_DECL_EXPRMONOTONICITY(monotonicitySum)
    Definition: expr_sum.c:1039
    static SCIP_DECL_EXPRFWDIFF(fwdiffSum)
    Definition: expr_sum.c:801
    static SCIP_DECL_EXPRCOPYDATA(copydataSum)
    Definition: expr_sum.c:662
    sum expression handler
    constant value expression handler
    SCIP_RETCODE SCIPcreateExprProduct(SCIP *scip, SCIP_EXPR **expr, int nchildren, SCIP_EXPR **children, SCIP_Real coefficient, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    void SCIPsetConstantExprSum(SCIP_EXPR *expr, SCIP_Real constant)
    Definition: expr_sum.c:1138
    void SCIPmultiplyByConstantExprSum(SCIP_EXPR *expr, SCIP_Real constant)
    Definition: expr_sum.c:1183
    SCIP_RETCODE SCIPpowerExprSum(SCIP *scip, SCIP_EXPR **result, SCIP_EXPR *base, int exponent, SCIP_Bool simplify, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_sum.c:1315
    SCIP_RETCODE SCIPappendExprSumExpr(SCIP *scip, SCIP_EXPR *expr, SCIP_EXPR *child, SCIP_Real childcoef)
    Definition: expr_sum.c:1154
    SCIP_Bool SCIPisExprExp(SCIP *scip, SCIP_EXPR *expr)
    Definition: expr_exp.c:529
    SCIP_RETCODE SCIPcreateExprExp(SCIP *scip, SCIP_EXPR **expr, SCIP_EXPR *child, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_exp.c:511
    SCIP_RETCODE SCIPcreateExprSum(SCIP *scip, SCIP_EXPR **expr, int nchildren, SCIP_EXPR **children, SCIP_Real *coefficients, SCIP_Real constant, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_sum.c:1117
    SCIP_RETCODE SCIPmultiplyBySumExprSum(SCIP *scip, SCIP_EXPR **product, SCIP_EXPR *factor1, SCIP_EXPR *factor2, SCIP_Bool simplify, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_sum.c:1202
    SCIP_RETCODE SCIPcreateExprValue(SCIP *scip, SCIP_EXPR **expr, SCIP_Real value, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_value.c:274
    SCIP_RETCODE SCIPcreateExprPow(SCIP *scip, SCIP_EXPR **expr, SCIP_EXPR *child, SCIP_Real exponent, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: expr_pow.c:3186
    SCIP_RETCODE SCIPincludeExprhdlrSum(SCIP *scip)
    Definition: expr_sum.c:1089
    void SCIPinfoMessage(SCIP *scip, FILE *file, const char *formatstr,...)
    Definition: scip_message.c:208
    #define SCIPdebugMsgPrint
    Definition: scip_message.h:79
    #define SCIPdebugMsg
    Definition: scip_message.h:78
    unsigned int SCIPcalcFibHash(SCIP_Real v)
    Definition: misc.c:10462
    const char * SCIPexprhdlrGetName(SCIP_EXPRHDLR *exprhdlr)
    Definition: expr.c:545
    void SCIPexprhdlrSetIntegrality(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRINTEGRALITY((*integrality)))
    Definition: expr.c:440
    void SCIPexprhdlrSetCopyFreeData(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRCOPYDATA((*copydata)), SCIP_DECL_EXPRFREEDATA((*freedata)))
    Definition: expr.c:383
    void SCIPexprhdlrSetPrint(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRPRINT((*print)))
    Definition: expr.c:396
    void SCIPexprhdlrSetGetSymdata(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRGETSYMDATA((*getsymdata)))
    Definition: expr.c:521
    void SCIPexprhdlrSetHash(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRHASH((*hash)))
    Definition: expr.c:451
    void SCIPexprhdlrSetCopyFreeHdlr(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRCOPYHDLR((*copyhdlr)), SCIP_DECL_EXPRFREEHDLR((*freehdlr)))
    Definition: expr.c:370
    void SCIPexprhdlrSetDiff(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRBWDIFF((*bwdiff)), SCIP_DECL_EXPRFWDIFF((*fwdiff)), SCIP_DECL_EXPRBWFWDIFF((*bwfwdiff)))
    Definition: expr.c:473
    void SCIPexprhdlrSetReverseProp(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRREVERSEPROP((*reverseprop)))
    Definition: expr.c:510
    void SCIPexprhdlrSetEstimate(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRINITESTIMATES((*initestimates)), SCIP_DECL_EXPRESTIMATE((*estimate)))
    Definition: expr.c:532
    void SCIPexprhdlrSetMonotonicity(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRMONOTONICITY((*monotonicity)))
    Definition: expr.c:429
    SCIP_EXPRHDLR * SCIPgetExprhdlrSum(SCIP *scip)
    Definition: scip_expr.c:928
    void SCIPexprhdlrSetIntEval(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRINTEVAL((*inteval)))
    Definition: expr.c:488
    void SCIPexprhdlrSetCurvature(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRCURVATURE((*curvature)))
    Definition: expr.c:418
    SCIP_RETCODE SCIPincludeExprhdlr(SCIP *scip, SCIP_EXPRHDLR **exprhdlr, const char *name, const char *desc, unsigned int precedence, SCIP_DECL_EXPREVAL((*eval)), SCIP_EXPRHDLRDATA *data)
    Definition: scip_expr.c:847
    void SCIPexprhdlrSetCompare(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRCOMPARE((*compare)))
    Definition: expr.c:462
    void SCIPexprhdlrSetSimplify(SCIP_EXPRHDLR *exprhdlr, SCIP_DECL_EXPRSIMPLIFY((*simplify)))
    Definition: expr.c:499
    SCIP_IMPLINTTYPE SCIPexprGetIntegrality(SCIP_EXPR *expr)
    Definition: expr.c:4091
    SCIP_RETCODE SCIPcreateExpr(SCIP *scip, SCIP_EXPR **expr, SCIP_EXPRHDLR *exprhdlr, SCIP_EXPRDATA *exprdata, int nchildren, SCIP_EXPR **children, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: scip_expr.c:1000
    SCIP_RETCODE SCIPappendExprChild(SCIP *scip, SCIP_EXPR *expr, SCIP_EXPR *child)
    Definition: scip_expr.c:1256
    void SCIPexprSetData(SCIP_EXPR *expr, SCIP_EXPRDATA *exprdata)
    Definition: expr.c:3920
    int SCIPexprGetNChildren(SCIP_EXPR *expr)
    Definition: expr.c:3872
    SCIP_Bool SCIPisExprProduct(SCIP *scip, SCIP_EXPR *expr)
    Definition: scip_expr.c:1490
    SCIP_Bool SCIPisExprSum(SCIP *scip, SCIP_EXPR *expr)
    Definition: scip_expr.c:1479
    SCIP_RETCODE SCIPreplaceExprChild(SCIP *scip, SCIP_EXPR *expr, int childidx, SCIP_EXPR *newchild)
    Definition: scip_expr.c:1274
    SCIP_Real * SCIPgetCoefsExprSum(SCIP_EXPR *expr)
    Definition: expr_sum.c:1554
    SCIP_Bool SCIPisExprValue(SCIP *scip, SCIP_EXPR *expr)
    Definition: scip_expr.c:1468
    int SCIPcompareExpr(SCIP *scip, SCIP_EXPR *expr1, SCIP_EXPR *expr2)
    Definition: scip_expr.c:1759
    SCIP_RETCODE SCIPreleaseExpr(SCIP *scip, SCIP_EXPR **expr)
    Definition: scip_expr.c:1443
    SCIP_Real SCIPexprGetDot(SCIP_EXPR *expr)
    Definition: expr.c:3986
    SCIP_EXPRDATA * SCIPexprGetData(SCIP_EXPR *expr)
    Definition: expr.c:3905
    SCIP_EXPRCURV SCIPexprcurvMultiply(SCIP_Real factor, SCIP_EXPRCURV curvature)
    Definition: exprcurv.c:88
    SCIP_RETCODE SCIPprintExpr(SCIP *scip, SCIP_EXPR *expr, FILE *file)
    Definition: scip_expr.c:1512
    SCIP_Real SCIPgetValueExprValue(SCIP_EXPR *expr)
    Definition: expr_value.c:298
    SCIP_Real SCIPexprGetEvalValue(SCIP_EXPR *expr)
    Definition: expr.c:3946
    SCIP_EXPR ** SCIPexprGetChildren(SCIP_EXPR *expr)
    Definition: expr.c:3882
    SCIP_Real SCIPgetConstantExprSum(SCIP_EXPR *expr)
    Definition: expr_sum.c:1569
    SCIP_INTERVAL SCIPexprGetActivity(SCIP_EXPR *expr)
    Definition: expr.c:4028
    SCIP_RETCODE SCIPduplicateExpr(SCIP *scip, SCIP_EXPR *expr, SCIP_EXPR **copyexpr, SCIP_DECL_EXPR_MAPEXPR((*mapexpr)), void *mapexprdata, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: scip_expr.c:1307
    void SCIPcaptureExpr(SCIP_EXPR *expr)
    Definition: scip_expr.c:1435
    SCIP_RETCODE SCIPsimplifyExpr(SCIP *scip, SCIP_EXPR *rootexpr, SCIP_EXPR **simplified, SCIP_Bool *changed, SCIP_Bool *infeasible, SCIP_DECL_EXPR_OWNERCREATE((*ownercreate)), void *ownercreatedata)
    Definition: scip_expr.c:1798
    SCIP_EXPRHDLR * SCIPexprGetHdlr(SCIP_EXPR *expr)
    Definition: expr.c:3895
    void SCIPintervalSet(SCIP_INTERVAL *resultant, SCIP_Real value)
    SCIP_Bool SCIPintervalIsEmpty(SCIP_Real infinity, SCIP_INTERVAL operand)
    void SCIPintervalMulScalar(SCIP_Real infinity, SCIP_INTERVAL *resultant, SCIP_INTERVAL operand1, SCIP_Real operand2)
    int SCIPintervalPropagateWeightedSum(SCIP_Real infinity, int noperands, SCIP_INTERVAL *operands, SCIP_Real *weights, SCIP_Real constant, SCIP_INTERVAL rhs, SCIP_INTERVAL *resultants, SCIP_Bool *infeasible)
    void SCIPintervalAdd(SCIP_Real infinity, SCIP_INTERVAL *resultant, SCIP_INTERVAL operand1, SCIP_INTERVAL operand2)
    void SCIPintervalSetEmpty(SCIP_INTERVAL *resultant)
    #define SCIPfreeBlockMemoryArray(scip, ptr, num)
    Definition: scip_mem.h:110
    #define SCIPensureBlockMemoryArray(scip, ptr, arraysizeptr, minsize)
    Definition: scip_mem.h:107
    #define SCIPallocClearBufferArray(scip, ptr, num)
    Definition: scip_mem.h:126
    #define SCIPallocBufferArray(scip, ptr, num)
    Definition: scip_mem.h:124
    #define SCIPfreeBufferArray(scip, ptr)
    Definition: scip_mem.h:136
    #define SCIPallocBlockMemoryArray(scip, ptr, num)
    Definition: scip_mem.h:93
    #define SCIPfreeBlockMemory(scip, ptr)
    Definition: scip_mem.h:108
    #define SCIPfreeBufferArrayNull(scip, ptr)
    Definition: scip_mem.h:137
    #define SCIPallocBlockMemory(scip, ptr)
    Definition: scip_mem.h:89
    #define SCIPduplicateBlockMemoryArray(scip, ptr, source, num)
    Definition: scip_mem.h:105
    SCIP_Bool SCIPisEQ(SCIP *scip, SCIP_Real val1, SCIP_Real val2)
    void SCIPsortInd(int *indarray, SCIP_DECL_SORTINDCOMP((*indcomp)), void *dataptr, int len)
    static volatile int nterms
    Definition: interrupt.c:47
    #define BMScopyMemoryArray(ptr, source, num)
    Definition: memory.h:134
    #define BMSclearMemoryArray(ptr, num)
    Definition: memory.h:130
    #define SCIPdebugPrintf
    Definition: pub_message.h:99
    SCIP_Real sup
    Definition: intervalarith.h:57
    SCIP_Real inf
    Definition: intervalarith.h:56
    SCIP_EXPR ** exprs
    Definition: expr_sum.c:341
    SCIP * scip
    Definition: expr_sum.c:340
    structs for symmetry computations
    #define SCIP_DECL_EXPR_OWNERCREATE(x)
    Definition: type_expr.h:143
    struct SCIP_ExprData SCIP_EXPRDATA
    Definition: type_expr.h:54
    #define SCIP_EXPRITER_VISITINGCHILD
    Definition: type_expr.h:695
    @ SCIP_MONOTONE_INC
    Definition: type_expr.h:72
    @ SCIP_MONOTONE_DEC
    Definition: type_expr.h:73
    #define SCIP_EXPRITER_VISITEDCHILD
    Definition: type_expr.h:696
    #define SCIP_EXPRITER_LEAVEEXPR
    Definition: type_expr.h:697
    #define SCIP_EXPRITER_ENTEREXPR
    Definition: type_expr.h:694
    @ SCIP_OKAY
    Definition: type_retcode.h:42
    @ SCIP_INVALIDCALL
    Definition: type_retcode.h:51
    enum SCIP_Retcode SCIP_RETCODE
    Definition: type_retcode.h:63
    @ SCIP_IMPLINTTYPE_NONE
    Definition: type_var.h:90
    @ SCIP_IMPLINTTYPE_STRONG
    Definition: type_var.h:106