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Chapter 3 Linear Programming: Sensitivity Analysis and Interpretation of Solution Introduction to Sensitivity Analysis Graphical Sensitivity Analysis Sensitivity Analysis: Computer Solution Limitations of Classical Sensitivity Analysis © 2011 Cengage Learning. All Rights Reserved. May not be scanned, copied 2 2 or duplicated, or posted to a publicly accessible website, in whole or in part. Slide Slide Introduction to Sensitivity Analysis In the previous chapter we discussed: • objective function value • values of the decision variables • reduced costs • slack/surplus In this chapter we will discuss: • changes in the coefficients of the objective function • changes in the right-hand side value of a constraint © 2011 Cengage Learning. All Rights Reserved. May not be scanned, copied 3 3 or duplicated, or posted to a publicly accessible website, in whole or in part. Slide Slide Introduction to Sensitivity Analysis Sensitivity analysis (or post-optimality analysis) is used to determine how the optimal solution is affected by changes, within specified ranges, in: • the objective function coefficients • the right-hand side (RHS) values Sensitivity analysis is important to a manager who must operate in a dynamic environment with imprecise estimates of the coefficients. Sensitivity analysis allows a manager to ask certain what-if questions about the problem. © 2011 Cengage Learning. All Rights Reserved. May not be scanned, copied 4 4 or duplicated, or posted to a publicly accessible website, in whole or in part. Slide Slide Graphical Sensitivity Analysis For LP problems with two decision variables, graphical solution methods can be used to perform sensitivity analysis on • the objective function coefficients, and • the right-hand-side values for the constraints. © 2011 Cengage Learning. All Rights Reserved. May not be scanned, copied 5 5 or duplicated, or posted to a publicly accessible website, in whole or in part. Slide Slide Example 1 LP Formulation Max 5x1 + 7x2 s.t. x1 < 6 2x + 3x 1 2 < 19 x1 + x2 < 8 x1, x2 > 0 © 2011 Cengage Learning. All Rights Reserved. May not be scanned, copied 6 6 or duplicated, or posted to a publicly accessible website, in whole or in part. Slide Slide
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