Post on 28-Jan-2015
description
Limitation of Graphical Method
Graphical solution is limited to linear programming models containing only two decision variables.
Procedure Step I: Convert each inequality as equation Step II: Plot each equation on the graph Step III: Shade the ‘Feasible Region’. Highlight the
common Feasible region. Feasible Region: Set of all possible solutions.
Step IV: Compute the coordinates of the corner points (of the feasible region). These corner points will represent the ‘Feasible Solution’. Feasible Solution: If it satisfies all the constraints
and non negativity restrictions.
Procedure (Cont…) Step V: Substitute the coordinates of the corner points into the
objective function to see which gives the Optimal Value. That will be the ‘Optimal Solution’. Optimal Solution: If it optimizes (maximizes or minimizes)
the objective function. Unbounded Solution: If the value of the objective function
can be increased or decreased indefinitely, Such solutions are called Unbounded solution.
Inconsistent Solution: It means the solution of problem does not exist. This is possible when there is no common feasible region.
88
77
66
55
44
33
22
11
1 2 3 4 5 6 7 8 9 101 2 3 4 5 6 7 8 9 10
xx22
xx11
Example Max Max zz = 5 = 5xx11 + 7 + 7xx22
s.t. s.t. xx11 << 6 6
22xx11 + 3 + 3xx22 << 19 19
xx11 + + xx22 << 8 8
xx11 , , xx22 >> 0 0
Every point is in this nonnegative quadrant
88
77
66
55
44
33
22
11
1 2 3 4 5 6 7 8 9 101 2 3 4 5 6 7 8 9 10
xx22
xx11
xx11 << 6 6
(6, 0)(6, 0)
Example (Cont…)Max Max zz = 5 = 5xx11 + 7 + 7xx22
s.t. s.t. xx11 << 6 6
22xx11 + 3 + 3xx22 << 19 19
xx11 + + xx22 << 8 8
xx11 , , xx22 >> 0 0
88
77
66
55
44
33
22
11
1 2 3 4 5 6 7 8 9 10 1 2 3 4 5 6 7 8 9 10
22xx11 + 3 + 3xx22 << 19 19
xx22
xx11
(0, 6.33)(0, 6.33)
(9.5 , 0)(9.5 , 0)
Max Max zz = 5 = 5xx11 + 7 + 7xx22
s.t. s.t. xx11 << 6 6
22xx11 + 3 + 3xx22 << 19 19
xx11 + + xx22 << 8 8
xx11 , , xx22 >> 0 0
Example (Cont…)
88
77
66
55
44
33
22
11
1 2 3 4 5 6 7 8 9 10 1 2 3 4 5 6 7 8 9 10
xx22
xx11
xx11 + + xx22 << 8 8
(0, 8)(0, 8)
(8, 0)(8, 0)
Max Max zz = 5 = 5xx11 + 7 + 7xx22
s.t. s.t. xx11 << 6 6
22xx11 + 3 + 3xx22 << 19 19
xx11 + + xx22 << 8 8
xx11 , , xx22 >> 0 0
Example (Cont…)
88
77
66
55
44
33
22
11
1 2 3 4 5 6 7 8 9 10 1 2 3 4 5 6 7 8 9 10
22xx11 + 3 + 3xx22 << 19 19
xx22
xx11
xx11 + + xx22 << 8 8
xx11 << 6 6
Max Max zz = 5 = 5xx11 + 7 + 7xx22
s.t. s.t. xx11 << 6 6
22xx11 + 3 + 3xx22 << 19 19
xx11 + + xx22 << 8 8
xx11 , , xx22 >> 0 0
Example (Cont…)
88
77
66
55
44
33
22
11
1 2 3 4 5 6 7 8 9 10 1 2 3 4 5 6 7 8 9 10
xx22
xx11
Example (Cont…)
A (0,0) (6,0)B
(6,2)C
(5,3)D
(0,6.33)E
Objective Function : Max Z= 5x1+7x2
Corner Points Value of ZA – (0,0) 0B – (6,0) 30C – (6,2) 44D – (5,3) 46E – (0,6.33) 44.33
Optimal Point : (5,3)Optimal Value : 46
Example (Cont…)
Example
Max Z=3 P1 + 5 P2s.t. P1 < 4 P2 < 6 3 P1 + 2 P2 < 18 P1, P2 > 0
Example
P1
P2
0
Every point is in this nonnegative quadrant
Max Z=3 P1 + 5 P2s.t. P1 < 4 P2 < 6 3 P1 + 2 P2 < 18 P1, P2 > 0
Example (Cont…)
P1
P2
(0,0)
Max Z= 3 P1 + 5 P2s.t. P1 < 4 P2 < 6 3 P1 + 2 P2 < 18 P1, P2 > 0
(4,0)
Example (Cont…)
P1
P2
(0,0)
Max Z= 3 P1 + 5 P2s.t. P1 < 4 P2 < 6 3 P1 + 2 P2 < 18 P1, P2 > 0
(4,0)
(0,6)
Example (Cont…)
P1
P2
(0,0)
Max Z= 3 P1 + 5 P2s.t. P1 < 4 P2 < 6 3 P1 + 2 P2 < 18 P1, P2 > 0
(4,0)
(0,6) (2,6)
(4,3)
(6,0)
Example (Cont…)
P1
P2
(0,0)
(4,0)
(0,6) (2,6)
(4,3)
(6,0)A B
C
DE
Example (Cont…)Objective Function : Max Z= 3 P1 + 5 P2
Corner Points Value of ZA – (0,0) 0B – (4,0) 12C – (4,3) 27D – (2,6) 36E – (0,6) 30
Optimal Point : (2,6)Optimal Value : 36
Example
Min Min z z = 5 = 5xx11 + 2 + 2xx22
s.t. 2s.t. 2xx11 + 5 + 5xx22 >> 10 10
44xx11 - - xx22 >> 12 12
xx11 + + xx22 >> 4 4
xx11, , xx22 >> 0 0
55
44
33
22
11
55
44
33
22
11
1 2 3 4 5 61 2 3 4 5 6 1 2 3 4 5 61 2 3 4 5 6
xx22xx22
44xx11 - - xx22 >> 12 1244xx11 - - xx22 >> 12 12
22xx11 + 5 + 5xx22 >> 10 1022xx11 + 5 + 5xx22 >> 10 10
xx11xx11
ExampleExample Min Min z z = 5 = 5xx11 + 2 + 2xx22
s.t. 2s.t. 2xx11 + 5 + 5xx22 >> 10 10
44xx11 - - xx22 >> 12 12
xx11 + + xx22 >> 4 4
xx11, , xx22 >> 0 0
xx1 + 1 + xx2 2 >> 4 4
55
44
33
22
11
55
44
33
22
11
1 2 3 4 5 61 2 3 4 5 6 1 2 3 4 5 61 2 3 4 5 6
xx22xx22
xx11xx11
Feasible RegionFeasible Region
This is the case of This is the case of ‘Unbounded Feasible Region’.‘Unbounded Feasible Region’.
Example (Cont…)Example (Cont…) Min Min z z = 5 = 5xx11 + 2 + 2xx22
s.t. 2s.t. 2xx11 + 5 + 5xx22 >> 10 10
44xx11 - - xx22 >> 12 12
xx11 + + xx22 >> 4 4
xx11, , xx22 >> 0 0
A (35/11 , 8/11)A (35/11 , 8/11)
B (5,0)B (5,0)
Example (Cont…)
Objective Function : Max Z= 5x1+2x2
Corner Points Value of ZA – (35/11, 8/11) 191/11 (17.364)B – (5,0) 25
Optimal Point : (35/11,8/11)Optimal Value : 191/11=17.364
Example
Max Max z z = 3 = 3xx11 + 4 + 4xx22
s.t. s.t. xx11 + + xx22 >> 5 5
33xx11 + + xx22 >> 8 8
xx11, , xx22 >> 0 0
ExampleExample
xx11
33xx11 + + xx22 >> 8 8
xx11 + + xx22 >> 5 5
55
55
88
2.672.67
Max Max z z = 3 = 3xx11 + 4 + 4xx22
s.t. s.t. xx11 + + xx22 >> 5 5
33xx11 + + xx22 >> 8 8
xx11, , xx22 >> 0 0
Feasible RegionFeasible Region
This feasible region is This feasible region is unbounded, hence unbounded, hence zz can can be increased infinitely.be increased infinitely.
So this problem is having a So this problem is having a Unbounded SolutionUnbounded Solution..
ExampleExample
Max Max zz = 2 = 2xx11 + 6 + 6xx22
s.t. 4s.t. 4xx11 + 3 + 3xx22 << 12 12
22xx11 + + xx22 >> 8 8
xx11, , xx22 >> 0 0
ExampleExampleMax Max zz = 2 = 2xx11 + 6 + 6xx22
s.t. 4s.t. 4xx11 + 3 + 3xx22 << 12 12
22xx11 + + xx22 >> 8 8
xx11, , xx22 >> 0 0xx22
xx11
44xx11 + 3 + 3xx22 << 12 12
22xx11 + + xx22 >> 8 8
33 44
44
88In this example, common In this example, common feasible region does not exist feasible region does not exist and hence the problem is not and hence the problem is not having a optimal solution. having a optimal solution.
This is the case of infeasible This is the case of infeasible solution.solution.