The following example shows how to solve Example 5.14 using PROC OPTMODEL. Three data sets contain the input data used in that example.
title 'Multicommodity Transshipment Problem with Fixed Charges'; data commodity_data; do c = 1 to 4; output; end; run;
data arc_data; input from $ to $ c1 c2 c3 c4 fx; datalines; farm-a Chicago 20 15 17 22 100 farm-b Chicago 15 15 15 30 75 farm-c Chicago 30 30 10 10 100 farm-a StLouis 30 25 27 22 150 farm-c StLouis 10 9 11 10 75 Chicago NY 75 75 75 75 200 StLouis NY 80 80 80 80 200 ; run;
data supply_data; input node $ sd1 sd2 sd3 sd4; datalines; farm-a 100 100 40 . farm-b 100 200 50 50 farm-c 40 100 75 100 NY -150 -200 -50 -75 ; run;
The following PROC OPTMODEL statements read the data sets, print the input parameters, build the mixed-integer linear programming
model, solve the model, and output the optimal solution to a SAS data set called SOLUTION
:
proc optmodel; set COMMODITIES; read data commodity_data into COMMODITIES=[c]; set <str,str> ARCS; num unit_cost {ARCS, COMMODITIES}; num fixed_charge {ARCS}; read data arc_data into ARCS=[from to] {c in COMMODITIES} <unit_cost[from,to,c]=col('c'||c)> fixed_charge=fx; print unit_cost fixed_charge; set <str> NODES = union {<i,j> in ARCS} {i,j}; num supply {NODES, COMMODITIES} init 0; read data supply_data nomiss into [node] {c in COMMODITIES} <supply[node,c]=col('sd'||c)>; print supply; var AmountShipped {ARCS, c in COMMODITIES} >= 0 <= sum {i in NODES} max(supply[i,c],0); /* UseArc[i,j] = 1 if arc (i,j) is used, 0 otherwise */ var UseArc {ARCS} binary; /* TotalCost = variable costs + fixed charges */ min TotalCost = sum {<i,j> in ARCS, c in COMMODITIES} unit_cost[i,j,c] * AmountShipped[i,j,c] + sum {<i,j> in ARCS} fixed_charge[i,j] * UseArc[i,j]; con flow_balance {i in NODES, c in COMMODITIES}: sum {<(i),j> in ARCS} AmountShipped[i,j,c] - sum {<j,(i)> in ARCS} AmountShipped[j,i,c] <= supply[i,c]; /* if AmountShipped[i,j,c] > 0 then UseArc[i,j] = 1 */ con fixed_charge_def {<i,j> in ARCS, c in COMMODITIES}: AmountShipped[i,j,c] <= AmountShipped[i,j,c].ub * UseArc[i,j]; solve; print AmountShipped; create data solution from [from to commodity]={<i,j> in ARCS, c in COMMODITIES: AmountShipped[i,j,c].sol ne 0} amount=AmountShipped; quit;
Although Example 5.14 used M = 1.0e6
in the FIXED_CHARGE_DEF constraint that links the continuous variable to the binary variable, it is numerically preferable
to use a smaller, data-dependent value. Here, the upper bound on AmountShipped[i,j,c]
is used instead. This upper bound is calculated in the first VAR statement as the sum of all positive supplies for commodity
c. The logical condition AmountShipped[i,j,k].sol ne 0
in the CREATE DATA statement makes sure that only the nonzero parts of the solution appear in the SOLUTION
data set.
The optimal solution is the same as in Output 5.14.1. The log is displayed in Output 5.17.1.
Output 5.17.1: OPTMODEL Log
NOTE: There were 4 observations read from the data set WORK.COMMODITY_DATA. |
NOTE: There were 7 observations read from the data set WORK.ARC_DATA. |
NOTE: There were 4 observations read from the data set WORK.SUPPLY_DATA. |
NOTE: Problem generation will use 4 threads. |
NOTE: The problem has 35 variables (0 free, 0 fixed). |
NOTE: The problem has 7 binary and 0 integer variables. |
NOTE: The problem has 52 linear constraints (52 LE, 0 EQ, 0 GE, 0 range). |
NOTE: The problem has 112 linear constraint coefficients. |
NOTE: The problem has 0 nonlinear constraints (0 LE, 0 EQ, 0 GE, 0 range). |
NOTE: The OPTMODEL presolver is disabled for linear problems. |
NOTE: The MILP presolver value AUTOMATIC is applied. |
NOTE: The MILP presolver removed 6 variables and 14 constraints. |
NOTE: The MILP presolver removed 26 constraint coefficients. |
NOTE: The MILP presolver modified 22 constraint coefficients. |
NOTE: The presolved problem has 29 variables, 38 constraints, and 86 constraint |
coefficients. |
NOTE: The MILP solver is called. |
Node Active Sols BestInteger BestBound Gap Time |
0 1 2 43180.0000000 26450.0000000 63.25% 0 |
0 1 2 43180.0000000 42610.0000000 1.34% 0 |
0 1 3 42825.0000000 42824.9900000 0.00% 0 |
NOTE: The MILP solver added 8 cuts with 28 cut coefficients at the root. |
NOTE: Optimal within relative gap. |
NOTE: Objective = 42825. |
NOTE: The data set WORK.SOLUTION has 14 observations and 4 variables. |