انت هنا الان : شبكة جامعة بابل > موقع الكلية > نظام التعليم الالكتروني > مشاهدة المحاضرة
الكلية كلية العلوم للبنات
القسم قسم الحاسبات
المرحلة 3
أستاذ المادة سعد عبد ماضي عنيزي النصراوي
17/03/2014 17:41:31
23.1 Simplex Method
Let us consider the 3 x 3 matrix
As per the assumptions, A always attempts to choose the set of strategies with the non-zero probabilities say p1, p2, p3 where p1 + p2 + p3 = 1 that maximizes his minimum expected gain.
Similarly B would choose the set of strategies with the non-zero probabilities say q1, q2, q3 where q1 + q2 + q3 = 1 that minimizes his maximum expected loss.
Step 1
Find the minimax and maximin value from the given matrix
Step 2
The objective of A is to maximize the value, which is equivalent to minimizing the value 1/V. The LPP is written as
Min 1/V = p1/V + p2/V + p3/V and constraints ? 1
It is written as
Min 1/V = x1 + x2 + x3 and constraints ? 1
Similarly for B, we get the LPP as the dual of the above LPP Max 1/V = Y1 + Y2 + Y3
and constraints ? 1
Where Y1 = q1/V, Y2 = q2/V, Y3 = q3/V
Step 3
Solve the LPP by using simplex table and obtain the best strategy for the players
Example 1
Solve by Simplex method
Solution
We can infer that 2 ? V ? 3. Hence it can be concluded that the value of the game lies between 2
and 3 and the V > 0.
LPP
Max 1/V = Y1 + Y2 + Y3
Subject to
3Y1 – 2Y2 + 4Y3 ? 1
-1Y1 + 4Y2 + 2Y3 ? 1 2Y1 + 2Y2 + 6Y3 ? 1 Y1, Y2, Y3 ? 0
SLPP
Max 1/V = Y1 + Y2 + Y3 + 0s1 + 0s2 + 0s3
Subject to
3Y1 – 2Y2 + 4Y3 + s1 = 1
-1Y1 + 4Y2 + 2Y3 + s2 =1 2Y1 + 2Y2 + 6Y3 + s3 = 1 Y1, Y2, Y3, s1, s2, s3 ? 0
2
Cj? 1 1 1 0 0 0
Basic Variables CB YB Y1 Y2 Y3 S1 S2 S3 Min Ratio YB / YK
S1 S2 S3 0 1
0 1
0 1 3 -2 4 1 0 0 1/3?
-
1/2
-1 4 2 0 1 0
2 2 6 0 0 1
1/V = 0 ?
-1 -1 -1 0 0 0
Y1 S2 S3 1 1/3
0 4/3
0 1/3 1 -2/3 4/3 1/3 0 0
0 10/3 10/3 1/3 1 0 -
2/5
1/10?
0 10/3 10/3 -2/3 0 1
1/V =1/3 ?
0 -5/3 1/3 1/3 0 0
Y1 S2 Y2 1 2/5
0 1
1 1/10 1 0 2 1/5 0 1/5
0 0 0 1 1 -1
0 1 1 -1/5 0 3/10
1/V = 1/2
0 0 2 0 0 1/2
1/V =1/2 V = 2
y1 = 2/5 * 2 = 4/5 y2 = 1/10 * 2 = 1/5 y3 = 0 * 2 = 0
x1 = 0*2 = 0 x2 = 0*2 = 0 x3 = 1/2*2 = 1
SA = (0, 0, 1)
SB = (4/5, 1/5, 0)
Value = 2
Example 2
Solution
Maximin = -1
Minimax = 1
We can infer that -1 ? V ? 1
Since maximin value is -1, it is possible that value of the game may be negative or zero, thus the constant ‘C’ is added to all the elements of matrix which is at least equal to the negative of maximin.
Let C = 1, add this value to all the elements of the matrix. The resultant matrix is
LPP
Max 1/V = Y1 + Y2 + Y3
Subject to
2Y1 + 0Y2 + 0Y3 ? 1
0Y1 + 0Y2 + 4Y3 ? 1
0Y1 + 3Y2 + 0Y3 ? 1
Y1, Y2, Y3 ? 0
SLPP
Max 1/V = Y1 + Y2 + Y3 + 0s1 + 0s2 + 0s3
Subject to
2Y1 + 0Y2 + 0Y3 + s1 = 1
0Y1 + 0Y2 + 4Y3 + s2 = 1
0Y1 + 3Y2 + 0Y3 + s3 = 1 Y1, Y2, Y3, s1, s2, s3 ? 0
Cj? 1 1 1 0 0 0
Basic Variables CB YB Y1 Y2 Y3 S1 S2 S3 Min Ratio YB / YK
S1 S2 S3 0 1
0 1
0 1 2 0 0 1 0 0 1/2?
-
-
0 0 4 0 1 0
0 3 0 0 0 1
1/V =0 ?
-1 -1 -1 0 0 0
Y1 S2 S3 1 1/2
0 1
0 1 1 0 0 1/2 0 0
0 0 4 0 1 0 -
-
1/3?
0 3 0 0 0 1
1/V =1/2 ?
0 -1 -1 1/2 0 0
Y1
S2 Y2 1 1/2
0 1
1 1/3 1 0 0 1/2 0 0
0 0 4 0 1 0
0 1 0 0 0 1/3 -
1/4?
-
1/V = 5/6 ?
0 0 -1 1/2 0 1/3
Y1 Y3 Y2 1 1/2
1 1/4
1 1/3 1 0 0 1/2 0 0
0 0 1 0 1/4 0
0 1 0 0 0 1/3
1/V =13/12
0 0 0 1/2 1/4 1/3
1/V =13/12 V = 12/13
y1 = 1/2 * 12/13 = 6/13 y2 = 1/3 * 12/13 = 4/13 y3 = 1/4 * 12/13 = 3/13
x1 = 1/2*12/13 = 6/13 x2 = 1/4 * 12/13 = 3/13 x3 = 1/3 * 12/13 = 4/13
SA = (6/13, 3/13, 4/13) SB = (6/13, 4/13, 3/13)
Value = 12/13 – C =12/13 -1 = -1/13
المادة المعروضة اعلاه هي مدخل الى المحاضرة المرفوعة بواسطة استاذ(ة) المادة . وقد تبدو لك غير متكاملة . حيث يضع استاذ المادة في بعض الاحيان فقط الجزء الاول من المحاضرة من اجل الاطلاع على ما ستقوم بتحميله لاحقا . في نظام التعليم الالكتروني نوفر هذه الخدمة لكي نبقيك على اطلاع حول محتوى الملف الذي ستقوم بتحميله .
الرجوع الى لوحة التحكم
|