Dual Basic Solutions. Observation 5.7. Consider LP in standard form with A 2 R m n,rank(a) =m, and dual LP:
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1 Dual Basic Solutions Consider LP in standard form with A 2 R m n,rank(a) =m, and dual LP: Observation 5.7. AbasisB yields min c T x max p T b s.t. A x = b s.t. p T A apple c T x 0 aprimalbasicsolutiongivenbyx B := B 1 b and adualbasicsolutionp T := c B T B 1. Moreover, a the values of the primal and the dual basic solutions are equal: b p is feasible if and only if c 0; c c B T x B = c B T B 1 b = p T b ; reduced cost c i = 0correspondstoactivedualconstraint; d p is degenerate if and only if c i = 0forsomenon-basicvariablex i. 155
2 Dual Simplex Method Let B be a basis whose corresponding dual basic solution p is feasible. 156
3 Dual Simplex Method Let B be a basis whose corresponding dual basic solution p is feasible. f also the primal basic solution x is feasible, then x, p are optimal. 156
4 Dual Simplex Method Let B be a basis whose corresponding dual basic solution p is feasible. f also the primal basic solution x is feasible, then x, p are optimal. Assume that x B(`) < 0andconsiderthe`th row of the simplex tableau (x B(`), v 1,...,v n ) (pivot row) 156
5 Dual Simplex Method Let B be a basis whose corresponding dual basic solution p is feasible. f also the primal basic solution x is feasible, then x, p are optimal. Assume that x B(`) < 0andconsiderthe`th row of the simplex tableau (x B(`), v 1,...,v n ) (pivot row) Let j 2{1,...,n} with v j < 0and c j v j = min c i i:v i <0 v i 156
6 Dual Simplex Method Let B be a basis whose corresponding dual basic solution p is feasible. f also the primal basic solution x is feasible, then x, p are optimal. Assume that x B(`) < 0andconsiderthe`th row of the simplex tableau (x B(`), v 1,...,v n ) (pivot row) Let j 2{1,...,n} with v j < 0and c j v j = min c i i:v i <0 v i Performing an iteration of the simplex method with pivot element v j yields new basis B 0 and corresponding dual basic solution p 0 with c B 0 T B 0 1 A apple c T and p 0T b p T b (with > if c j > 0). 156
7 Dual Simplex Method Let B be a basis whose corresponding dual basic solution p is feasible. f also the primal basic solution x is feasible, then x, p are optimal. Assume that x B(`) < 0andconsiderthe`th row of the simplex tableau (x B(`), v 1,...,v n ) (pivot row) Let j 2{1,...,n} with v j < 0and c j v j = min c i i:v i <0 v i Performing an iteration of the simplex method with pivot element v j yields new basis B 0 and corresponding dual basic solution p 0 with c B 0 T B 0 1 A apple c T and p 0T b p T b (with > if c j > 0). f v i 0foralli 2{1,...,n}, thentheduallpisunboundedandtheprimallpis infeasible. 156
8 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 =
9 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 = Determine pivot row (x 5 < 0) 157
10 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 = Determine pivot row (x 5 < 0) Find pivot column. Column 2 and 3 have negative entries in pivot row. 157
11 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 = Determine pivot row (x 5 < 0) Find pivot column. Column 2 and 3 have negative entries in pivot row. Column 2 attains minimum. 157
12 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 = Determine pivot row (x 5 < 0) Find pivot column. Column 2 and 3 have negative entries in pivot row. Column 2 attains minimum. Perform basis change: x5 leaves and x 2 enters basis. Eliminate other entries in the pivot column. Divide pivot row by pivot element. 157
13 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 = Determine pivot row (x 5 < 0) Find pivot column. Column 2 and 3 have negative entries in pivot row. Column 2 attains minimum. Perform basis change: x5 leaves and x 2 enters basis. Eliminate other entries in the pivot column. Divide pivot row by pivot element. 157
14 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 5 = Determine pivot row (x 5 < 0) Find pivot column. Column 2 and 3 have negative entries in pivot row. Column 2 attains minimum. Perform basis change: x5 leaves and x 2 enters basis. Eliminate other entries in the pivot column. Divide pivot row by pivot element. 157
15 Dual Simplex Example x 1 x 2 x 3 x 4 x x 4 = x 2 = 1/ /2 0 1/2 Determine pivot row (x 5 < 0) Find pivot column. Column 2 and 3 have negative entries in pivot row. Column 2 attains minimum. Perform basis change: x5 leaves and x 2 enters basis. Eliminate other entries in the pivot column. Divide pivot row by pivot element. 157
16 Remarks on the Dual Simplex Method Dual simplex method terminates if lexicographic pivoting rule is used: Choose any row ` with xb(`) < 0tobethepivotrow. Among all columns j with vj < 0choosetheonewhichislexicographically minimal when divided by v j. Dual simplex method is useful if, e. g., dual basic solution is readily available. Example: Resolve LP after right-hand-side b has changed. 158
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