The Mixed Integer Linear Programming Solver
Consider the classic facility location problem. Given a set L of customer locations and a set F of candidate facility sites, you must decide on which sites to build facilities and assign coverage of customer demand to
these sites so as to minimize cost. All customer demand 
must be satisfied, and each facility has a demand capacity limit C. The total cost is the sum of the distances 
between facility j and its assigned customer i, plus a fixed charge 
for building a facility at site j. Let 
represent choosing site j to build a facility, and 0 otherwise. Also, let 
represent the assignment of customer i to facility j, and 0 otherwise. This model can be formulated as the following integer linear program:
![\[ \begin{array}{llllll} \min & \displaystyle \sum _{i \in L} \displaystyle \sum _{j \in F} c_{ij} x_{ij} + \displaystyle \sum _{j \in F} f_ j y_ j \\ \mr{s.t.} & \displaystyle \sum _{j \in F} x_{ij} & = & 1 & \forall i \in L & \mr{(assign\_ def)} \\ & x_{ij} & \leq & y_ j & \forall i \in L, j \in F & \mr{(link)}\\ & \displaystyle \sum _{i \in L} d_ i x_{ij} & \leq & Cy_ j & \forall j \in F & \mr{(capacity)} \\ & x_{ij} \in \{ 0,1\} & & & \forall i \in L, j \in F \\ & y_{j} \in \{ 0,1\} & & & \forall j \in F \end{array} \]](images/ormpug_milpsolver0080.png)
Constraint (assign_def) ensures that each customer is assigned to exactly one site. Constraint (link) forces a facility to be built if any customer has been assigned to that facility. Finally, constraint (capacity) enforces the capacity limit at each site.
Consider also a variation of this same problem where there is no cost for building a facility. This problem is typically easier to solve than the original problem. For this variant, let the objective be
![\[ \begin{array}{lllll} \min & \displaystyle \sum _{i \in L} \displaystyle \sum _{j \in F} c_{ij} x_{ij} \end{array} \]](images/ormpug_milpsolver0081.png){kind=small}
First, construct a random instance of this problem by using the following DATA steps:
title 'Facility Location Problem';
%let NumCustomers = 50;
%let NumSites = 10;
%let SiteCapacity = 35;
%let MaxDemand = 10;
%let xmax = 200;
%let ymax = 100;
%let seed = 938;
/* generate random customer locations */
data cdata(drop=i);
length name $8;
do i = 1 to &NumCustomers;
name = compress('C'||put(i,best.));
x = ranuni(&seed) * &xmax;
y = ranuni(&seed) * &ymax;
demand = ranuni(&seed) * &MaxDemand;
output;
end;
run;
/* generate random site locations and fixed charge */
data sdata(drop=i);
length name $8;
do i = 1 to &NumSites;
name = compress('SITE'||put(i,best.));
x = ranuni(&seed) * &xmax;
y = ranuni(&seed) * &ymax;
fixed_charge = 30 * (abs(&xmax/2-x) + abs(&ymax/2-y));
output;
end;
run;
The following PROC OPTMODEL statements first generate and solve the model with the no-fixed-charge variant of the cost function. Next, they solve the fixed-charge model. Note that the solution to the model with no fixed charge is feasible for the fixed-charge model and should provide a good starting point for the MILP solver. Use the PRIMALIN option to provide an incumbent solution (warm start).
proc optmodel;
set <str> CUSTOMERS;
set <str> SITES init {};
/* x and y coordinates of CUSTOMERS and SITES */
num x {CUSTOMERS union SITES};
num y {CUSTOMERS union SITES};
num demand {CUSTOMERS};
num fixed_charge {SITES};
/* distance from customer i to site j */
num dist {i in CUSTOMERS, j in SITES}
= sqrt((x[i] - x[j])^2 + (y[i] - y[j])^2);
read data cdata into CUSTOMERS=[name] x y demand;
read data sdata into SITES=[name] x y fixed_charge;
var Assign {CUSTOMERS, SITES} binary;
var Build {SITES} binary;
min CostNoFixedCharge
= sum {i in CUSTOMERS, j in SITES} dist[i,j] * Assign[i,j];
min CostFixedCharge
= CostNoFixedCharge + sum {j in SITES} fixed_charge[j] * Build[j];
/* each customer assigned to exactly one site */
con assign_def {i in CUSTOMERS}:
sum {j in SITES} Assign[i,j] = 1;
/* if customer i assigned to site j, then facility must be built at j */
con link {i in CUSTOMERS, j in SITES}:
Assign[i,j] <= Build[j];
/* each site can handle at most &SiteCapacity demand */
con capacity {j in SITES}:
sum {i in CUSTOMERS} demand[i] * Assign[i,j] <=
&SiteCapacity * Build[j];
/* solve the MILP with no fixed charges */
solve obj CostNoFixedCharge with milp / logfreq = 500;
/* clean up the solution */
for {i in CUSTOMERS, j in SITES} Assign[i,j] = round(Assign[i,j]);
for {j in SITES} Build[j] = round(Build[j]);
call symput('varcostNo',put(CostNoFixedCharge,6.1));
/* create a data set for use by GPLOT */
create data CostNoFixedCharge_Data from
[customer site]={i in CUSTOMERS, j in SITES: Assign[i,j] = 1}
xi=x[i] yi=y[i] xj=x[j] yj=y[j];
/* solve the MILP, with fixed charges with warm start */
solve obj CostFixedCharge with milp / primalin logfreq = 500;
/* clean up the solution */
for {i in CUSTOMERS, j in SITES} Assign[i,j] = round(Assign[i,j]);
for {j in SITES} Build[j] = round(Build[j]);
num varcost = sum {i in CUSTOMERS, j in SITES} dist[i,j] * Assign[i,j].sol;
num fixcost = sum {j in SITES} fixed_charge[j] * Build[j].sol;
call symput('varcost', put(varcost,6.1));
call symput('fixcost', put(fixcost,5.1));
call symput('totalcost', put(CostFixedCharge,6.1));
/* create a data set for use by GPLOT */
create data CostFixedCharge_Data from
[customer site]={i in CUSTOMERS, j in SITES: Assign[i,j] = 1}
xi=x[i] yi=y[i] xj=x[j] yj=y[j];
quit;
The information printed in the log for the no-fixed-charge model is displayed in Output 8.3.1.
Output 8.3.1: OPTMODEL Log for Facility Location with No Fixed Charges
| NOTE: Problem generation will use 4 threads. |
| NOTE: The problem has 510 variables (0 free, 0 fixed). |
| NOTE: The problem has 510 binary and 0 integer variables. |
| NOTE: The problem has 560 linear constraints (510 LE, 50 EQ, 0 GE, 0 range). |
| NOTE: The problem has 2010 linear constraint coefficients. |
| NOTE: The problem has 0 nonlinear constraints (0 LE, 0 EQ, 0 GE, 0 range). |
| NOTE: The MILP presolver value AUTOMATIC is applied. |
| NOTE: The MILP presolver removed 10 variables and 500 constraints. |
| NOTE: The MILP presolver removed 1010 constraint coefficients. |
| NOTE: The MILP presolver modified 0 constraint coefficients. |
| NOTE: The presolved problem has 500 variables, 60 constraints, and 1000 |
| constraint coefficients. |
| NOTE: The MILP solver is called. |
| Node Active Sols BestInteger BestBound Gap Time |
| 0 1 2 972.1737321 0 972.2 0 |
| 0 1 2 972.1737321 961.2403449 1.14% 0 |
| 0 1 2 972.1737321 961.2403449 1.14% 0 |
| 0 1 2 972.1737321 961.2403449 1.14% 0 |
| NOTE: The MILP presolver is applied again. |
| 0 1 3 966.4832160 961.2403449 0.55% 0 |
| 0 1 3 966.4832160 962.9120844 0.37% 0 |
| 0 1 3 966.4832160 962.9120844 0.37% 0 |
| 0 1 3 966.4832160 962.9120844 0.37% 0 |
| NOTE: The MILP presolver is applied again. |
| 0 1 4 966.4832160 962.9120844 0.37% 0 |
| 0 1 5 966.4832160 966.4832160 0.00% 0 |
| 0 0 5 966.4832160 966.4832160 0.00% 0 |
| NOTE: Optimal. |
| NOTE: Objective = 966.48321599. |
The results from the warm start approach are shown in Output 8.3.2.
Output 8.3.2: OPTMODEL Log for Facility Location with Fixed Charges, Using Warm Start
| NOTE: Problem generation will use 4 threads. |
| NOTE: The problem has 510 variables (0 free, 0 fixed). |
| NOTE: The problem uses 1 implicit variables. |
| NOTE: The problem has 510 binary and 0 integer variables. |
| NOTE: The problem has 560 linear constraints (510 LE, 50 EQ, 0 GE, 0 range). |
| NOTE: The problem has 2010 linear constraint coefficients. |
| NOTE: The problem has 0 nonlinear constraints (0 LE, 0 EQ, 0 GE, 0 range). |
| NOTE: The MILP presolver value AUTOMATIC is applied. |
| NOTE: The MILP presolver removed 0 variables and 0 constraints. |
| NOTE: The MILP presolver removed 0 constraint coefficients. |
| NOTE: The MILP presolver modified 0 constraint coefficients. |
| NOTE: The presolved problem has 510 variables, 560 constraints, and 2010 |
| constraint coefficients. |
| NOTE: The MILP solver is called. |
| Node Active Sols BestInteger BestBound Gap Time |
| 0 1 3 16070.0150023 0 16070 0 |
| 0 1 3 16070.0150023 9946.2514269 61.57% 0 |
| 0 1 3 16070.0150023 9962.4849932 61.31% 0 |
| 0 1 3 16070.0150023 9971.5893075 61.16% 0 |
| 0 1 3 16070.0150023 9974.5588580 61.11% 0 |
| 0 1 3 16070.0150023 9978.1322942 61.05% 0 |
| 0 1 3 16070.0150023 9978.3312183 61.05% 0 |
| 0 1 3 16070.0150023 9980.4930282 61.01% 0 |
| 0 1 3 16070.0150023 9981.2701907 61.00% 0 |
| 0 1 4 16034.0651055 9981.2701907 60.64% 0 |
| 0 1 4 16034.0651055 9981.2701907 60.64% 0 |
| NOTE: The MILP solver added 20 cuts with 631 cut coefficients at the root. |
| 264 125 7 11365.1547459 10527.4665245 7.96% 0 |
| 287 10 9 10960.8997578 10943.8749703 0.16% 0 |
| 295 14 10 10959.4361909 10944.1167370 0.14% 0 |
| 299 6 11 10950.3308631 10945.0380192 0.05% 0 |
| 315 7 12 10950.0345545 10946.4662518 0.03% 0 |
| 323 14 13 10950.0345545 10946.4662518 0.03% 0 |
| 325 6 14 10948.4603465 10946.4951518 0.02% 0 |
| 332 6 14 10948.4603465 10947.3824040 0.01% 0 |
| NOTE: Optimal within relative gap. |
| NOTE: Objective = 10948.460346. |
The following two SAS programs produce a plot of the solutions for both variants of the model, using data sets produced by PROC OPTMODEL:
title1 h=1.5 "Facility Location Problem";
title2 "TotalCost = &varcostNo (Variable = &varcostNo, Fixed = 0)";
data csdata;
set cdata(rename=(y=cy)) sdata(rename=(y=sy));
run;
/* create Annotate data set to draw line between customer and assigned site */
%annomac;
data anno(drop=xi yi xj yj);
%SYSTEM(2, 2, 2);
set CostNoFixedCharge_Data(keep=xi yi xj yj);
%LINE(xi, yi, xj, yj, *, 1, 1);
run;
proc gplot data=csdata anno=anno;
axis1 label=none order=(0 to &xmax by 10);
axis2 label=none order=(0 to &ymax by 10);
symbol1 value=dot interpol=none
pointlabel=("#name" nodropcollisions height=1) cv=black;
symbol2 value=diamond interpol=none
pointlabel=("#name" nodropcollisions color=blue height=1) cv=blue;
plot cy*x sy*x / overlay haxis=axis1 vaxis=axis2;
run;
quit;
The output of the first program is shown in Output 8.3.3.
The output of the second program is shown in Output 8.3.4.
title1 "Facility Location Problem";
title2 "TotalCost = &totalcost (Variable = &varcost, Fixed = &fixcost)";
/* create Annotate data set to draw line between customer and assigned site */
data anno(drop=xi yi xj yj);
%SYSTEM(2, 2, 2);
set CostFixedCharge_Data(keep=xi yi xj yj);
%LINE(xi, yi, xj, yj, *, 1, 1);
run;
proc gplot data=csdata anno=anno;
axis1 label=none order=(0 to &xmax by 10);
axis2 label=none order=(0 to &ymax by 10);
symbol1 value=dot interpol=none
pointlabel=("#name" nodropcollisions height=1) cv=black;
symbol2 value=diamond interpol=none
pointlabel=("#name" nodropcollisions color=blue height=1) cv=blue;
plot cy*x sy*x / overlay haxis=axis1 vaxis=axis2;
run;
quit;
The economic trade-off for the fixed-charge model forces you to build fewer sites and push more demand to each site.
It is possible to expedite the solution of the fixed-charge facility location problem by choosing appropriate branching priorities
for the decision variables. Recall that for each site j, the value of the variable 
determines whether or not a facility is built on that site. Suppose you decide to branch on the variables before the variables 
. You can set a higher branching priority for by using the .priority suffix for the Build variables in PROC OPTMODEL, as follows:
for{j in SITES} Build[j].priority=10;
Setting higher branching priorities for certain variables is not guaranteed to speed up the MILP solver, but it can be helpful
in some instances. The following program creates and solves an instance of the facility location problem, giving higher priority
to the variables . The LOGFREQ=
option is used to abbreviate the node log.
%let NumCustomers = 45;
%let NumSites = 8;
%let SiteCapacity = 35;
%let MaxDemand = 10;
%let xmax = 200;
%let ymax = 100;
%let seed = 2345;
/* generate random customer locations */
data cdata(drop=i);
length name $8;
do i = 1 to &NumCustomers;
name = compress('C'||put(i,best.));
x = ranuni(&seed) * &xmax;
y = ranuni(&seed) * &ymax;
demand = ranuni(&seed) * &MaxDemand;
output;
end;
run;
/* generate random site locations and fixed charge */
data sdata(drop=i);
length name $8;
do i = 1 to &NumSites;
name = compress('SITE'||put(i,best.));
x = ranuni(&seed) * &xmax;
y = ranuni(&seed) * &ymax;
fixed_charge = (abs(&xmax/2-x) + abs(&ymax/2-y)) / 2;
output;
end;
run;
proc optmodel;
set <str> CUSTOMERS;
set <str> SITES init {};
/* x and y coordinates of CUSTOMERS and SITES */
num x {CUSTOMERS union SITES};
num y {CUSTOMERS union SITES};
num demand {CUSTOMERS};
num fixed_charge {SITES};
/* distance from customer i to site j */
num dist {i in CUSTOMERS, j in SITES}
= sqrt((x[i] - x[j])^2 + (y[i] - y[j])^2);
read data cdata into CUSTOMERS=[name] x y demand;
read data sdata into SITES=[name] x y fixed_charge;
var Assign {CUSTOMERS, SITES} binary;
var Build {SITES} binary;
min CostFixedCharge
= sum {i in CUSTOMERS, j in SITES} dist[i,j] * Assign[i,j]
+ sum {j in SITES} fixed_charge[j] * Build[j];
/* each customer assigned to exactly one site */
con assign_def {i in CUSTOMERS}:
sum {j in SITES} Assign[i,j] = 1;
/* if customer i assigned to site j, then facility must be built at j */
con link {i in CUSTOMERS, j in SITES}:
Assign[i,j] <= Build[j];
/* each site can handle at most &SiteCapacity demand */
con capacity {j in SITES}:
sum {i in CUSTOMERS} demand[i] * Assign[i,j] <= &SiteCapacity * Build[j];
/* assign priority to Build variables (y) */
for{j in SITES} Build[j].priority=10;
/* solve the MILP with fixed charges, using branching priorities */
solve obj CostFixedCharge with milp / logfreq=1000;
quit;
The resulting output is shown in Output 8.3.5.
Output 8.3.5: PROC OPTMODEL Log for Facility Location with Branching Priorities
| NOTE: There were 45 observations read from the data set WORK.CDATA. |
| NOTE: There were 8 observations read from the data set WORK.SDATA. |
| NOTE: Problem generation will use 4 threads. |
| NOTE: The problem has 368 variables (0 free, 0 fixed). |
| NOTE: The problem has 368 binary and 0 integer variables. |
| NOTE: The problem has 413 linear constraints (368 LE, 45 EQ, 0 GE, 0 range). |
| NOTE: The problem has 1448 linear constraint coefficients. |
| NOTE: The problem has 0 nonlinear constraints (0 LE, 0 EQ, 0 GE, 0 range). |
| NOTE: The MILP presolver value AUTOMATIC is applied. |
| NOTE: The MILP presolver removed 0 variables and 0 constraints. |
| NOTE: The MILP presolver removed 0 constraint coefficients. |
| NOTE: The MILP presolver modified 0 constraint coefficients. |
| NOTE: The presolved problem has 368 variables, 413 constraints, and 1448 |
| constraint coefficients. |
| NOTE: The MILP solver is called. |
| Node Active Sols BestInteger BestBound Gap Time |
| 0 1 3 2823.1827978 0 2823.2 0 |
| 0 1 3 2823.1827978 1727.0208789 63.47% 0 |
| 0 1 3 2823.1827978 1756.0637224 60.77% 0 |
| 0 1 5 1906.4633474 1764.3961986 8.05% 0 |
| 0 1 5 1906.4633474 1772.0991932 7.58% 0 |
| 0 1 5 1906.4633474 1784.2955379 6.85% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| NOTE: The MILP presolver is applied again. |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.0570704 6.62% 0 |
| 0 1 5 1906.4633474 1788.1857838 6.61% 0 |
| 0 1 5 1906.4633474 1793.1018884 6.32% 0 |
| 0 1 5 1906.4633474 1794.0969506 6.26% 0 |
| 0 1 5 1906.4633474 1794.9102303 6.21% 0 |
| 0 1 5 1906.4633474 1795.0361850 6.21% 0 |
| 0 1 5 1906.4633474 1795.0773286 6.21% 0 |
| 0 1 5 1906.4633474 1795.0825886 6.20% 0 |
| 0 1 5 1906.4633474 1795.0869957 6.20% 0 |
| 0 1 5 1906.4633474 1795.0869957 6.20% 0 |
| 0 1 5 1906.4633474 1795.0871903 6.20% 0 |
| NOTE: The MILP solver added 30 cuts with 668 cut coefficients at the root. |
| 248 228 6 1838.5150486 1800.4972361 2.11% 0 |
| 1000 218 6 1838.5150486 1804.4864009 1.89% 1 |
| 1100 271 7 1833.3994654 1804.4864009 1.60% 1 |
| 1135 294 8 1833.2698616 1804.4864009 1.60% 1 |
| 1712 590 9 1829.0025678 1811.9146769 0.94% 1 |
| 1818 493 10 1825.1666003 1812.5246843 0.70% 1 |
| 1967 395 12 1823.3288813 1814.9655663 0.46% 1 |
| 1995 198 13 1819.9124343 1815.2227512 0.26% 1 |
| 2000 200 13 1819.9124343 1815.2252293 0.26% 1 |
| 2245 6 13 1819.9124343 1819.7532289 0.01% 1 |
| NOTE: Optimal within relative gap. |
| NOTE: Objective = 1819.9124343. |