0001 function t_opf_dc_cplex(quiet)
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0033 if nargin < 1
0034 quiet = 0;
0035 end
0036
0037 num_tests = 23 * 6;
0038
0039 t_begin(num_tests, quiet);
0040
0041 [PQ, PV, REF, NONE, BUS_I, BUS_TYPE, PD, QD, GS, BS, BUS_AREA, VM, ...
0042 VA, BASE_KV, ZONE, VMAX, VMIN, LAM_P, LAM_Q, MU_VMAX, MU_VMIN] = idx_bus;
0043 [GEN_BUS, PG, QG, QMAX, QMIN, VG, MBASE, GEN_STATUS, PMAX, PMIN, ...
0044 MU_PMAX, MU_PMIN, MU_QMAX, MU_QMIN, PC1, PC2, QC1MIN, QC1MAX, ...
0045 QC2MIN, QC2MAX, RAMP_AGC, RAMP_10, RAMP_30, RAMP_Q, APF] = idx_gen;
0046 [F_BUS, T_BUS, BR_R, BR_X, BR_B, RATE_A, RATE_B, RATE_C, ...
0047 TAP, SHIFT, BR_STATUS, PF, QF, PT, QT, MU_SF, MU_ST, ...
0048 ANGMIN, ANGMAX, MU_ANGMIN, MU_ANGMAX] = idx_brch;
0049
0050 casefile = 't_case9_opf';
0051 if quiet
0052 verbose = 0;
0053 else
0054 verbose = 0;
0055 end
0056
0057 mpopt = mpoption('OUT_ALL', 0, 'VERBOSE', verbose);
0058 mpopt = mpoption(mpopt, 'OPF_ALG_DC', 500);
0059
0060
0061 if have_fcn('cplex')
0062 for alg = 1:6
0063 mpopt = mpoption(mpopt, 'CPLEX_LPMETHOD', alg, 'CPLEX_QPMETHOD', alg);
0064 methods = {
0065 'primal simplex',
0066 'dual simplex',
0067 'network simplex',
0068 'barrier',
0069 'sifting',
0070 'concurrent'
0071 };
0072 t0 = sprintf('DC OPF (CPLEX %s): ', methods{alg});
0073
0074
0075 ib_data = [1:BUS_AREA BASE_KV:VMIN];
0076 ib_voltage = [VM VA];
0077 ib_lam = [LAM_P LAM_Q];
0078 ib_mu = [MU_VMAX MU_VMIN];
0079 ig_data = [GEN_BUS QMAX QMIN MBASE:APF];
0080 ig_disp = [PG QG VG];
0081 ig_mu = (MU_PMAX:MU_QMIN);
0082 ibr_data = (1:ANGMAX);
0083 ibr_flow = (PF:QT);
0084 ibr_mu = [MU_SF MU_ST];
0085 ibr_angmu = [MU_ANGMIN MU_ANGMAX];
0086
0087
0088 load soln9_dcopf;
0089
0090
0091 t = t0;
0092 [baseMVA, bus, gen, gencost, branch, f, success, et] = rundcopf(casefile, mpopt);
0093 t_ok(success, [t 'success']);
0094 t_is(f, f_soln, 3, [t 'f']);
0095 t_is( bus(:,ib_data ), bus_soln(:,ib_data ), 10, [t 'bus data']);
0096 t_is( bus(:,ib_voltage), bus_soln(:,ib_voltage), 3, [t 'bus voltage']);
0097 t_is( bus(:,ib_lam ), bus_soln(:,ib_lam ), 3, [t 'bus lambda']);
0098 t_is( bus(:,ib_mu ), bus_soln(:,ib_mu ), 2, [t 'bus mu']);
0099 t_is( gen(:,ig_data ), gen_soln(:,ig_data ), 10, [t 'gen data']);
0100 t_is( gen(:,ig_disp ), gen_soln(:,ig_disp ), 3, [t 'gen dispatch']);
0101 t_is( gen(:,ig_mu ), gen_soln(:,ig_mu ), 3, [t 'gen mu']);
0102 t_is(branch(:,ibr_data ), branch_soln(:,ibr_data ), 10, [t 'branch data']);
0103 t_is(branch(:,ibr_flow ), branch_soln(:,ibr_flow ), 3, [t 'branch flow']);
0104 t_is(branch(:,ibr_mu ), branch_soln(:,ibr_mu ), 2, [t 'branch mu']);
0105
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0110
0111 mpc = loadcase(casefile);
0112 mpc.A = sparse([1;1;1;2;2;2],[10;11;13;11;12;14],[-1;1;-1;1;-1;-1],2,14);
0113 mpc.u = [0; 0];
0114 mpc.l = [-Inf; -Inf];
0115 mpc.zl = [0; 0];
0116
0117 mpc.N = sparse([1;2], [13;14], [1;1], 2, 14);
0118 mpc.fparm = ones(2,1) * [1 0 0 1];
0119 mpc.H = sparse(2,2);
0120 mpc.Cw = [1000;1];
0121
0122 t = [t0 'w/extra constraints & costs 1 : '];
0123 [r, success] = rundcopf(mpc, mpopt);
0124 t_ok(success, [t 'success']);
0125 t_is(r.gen(1, PG), 116.15974, 5, [t 'Pg1 = 116.15974']);
0126 t_is(r.gen(2, PG), 116.15974, 5, [t 'Pg2 = 116.15974']);
0127 t_is(r.var.val.z, [0; 0.3348], 4, [t 'user vars']);
0128 t_is(r.cost.usr, 0.3348, 4, [t 'user costs']);
0129
0130
0131 mpc = loadcase(casefile);
0132 mpc.A = sparse([1;1;1;2;2;2],[19;20;25;20;21;26],[-1;1;-1;1;-1;-1],2,26);
0133 mpc.u = [0; 0];
0134 mpc.l = [-Inf; -Inf];
0135 mpc.zl = [0; 0];
0136
0137 mpc.N = sparse([1;2], [25;26], [1;1], 2, 26);
0138 mpc.fparm = ones(2,1) * [1 0 0 1];
0139 mpc.H = sparse(2,2);
0140 mpc.Cw = [1000;1];
0141
0142 t = [t0 'w/extra constraints & costs 2 : '];
0143 [r, success] = rundcopf(mpc, mpopt);
0144 t_ok(success, [t 'success']);
0145 t_is(r.gen(1, PG), 116.15974, 5, [t 'Pg1 = 116.15974']);
0146 t_is(r.gen(2, PG), 116.15974, 5, [t 'Pg2 = 116.15974']);
0147 t_is(r.var.val.z, [0; 0.3348], 4, [t 'user vars']);
0148 t_is(r.cost.usr, 0.3348, 4, [t 'user costs']);
0149
0150 t = [t0 'infeasible : '];
0151
0152 mpc = loadcase(casefile);
0153 mpc.A = sparse([1;1], [10;11], [1;1], 1, 14);
0154 mpc.u = Inf;
0155 mpc.l = 600;
0156 [r, success] = rundcopf(mpc, mpopt);
0157 t_ok(~success, [t 'no success']);
0158 end
0159 else
0160 t_skip(num_tests, 'CPLEX not available');
0161 end
0162
0163 t_end;