北京邮电大学 计算机学院 离散数学 第十章补充 传输+网络流.ppt

* * College of Computer Science Technology, BUPT Go further? Step 1,2,3 [2,1] [1,5] [1,4] e56 = 0 e65 = 4 e36 = 0 e63 = 3 4 1 2 3 5 6 e14 = 2 e41 = 2 e12 = 0 e21 = 5 e24 = 2 e42 = 0 e25 = 0 e52 = 2 e45 = 1 e54 = 2 e23 = 0 e32 = 3 * * College of Computer Science Technology, BUPT step 4 Terminated with the final overall flow 7. Q.E.D. 4 3 4 1 2 3 5 6 2 5 0 2 2 3 Go back * * College of Computer Science Technology, BUPT Example 4 e36 = 6 e63 = 0 e46 = 7 e64 = 0 5 1 2 4 3 6 e15 = 8 e51 = 0 e12 = 5 e21 = 0 e25= 2 e52 = 0 e23 = 3 e32 = 0 e53 = 6 e35 = 0 e24 = 4 e42 = 0 * * College of Computer Science Technology, BUPT Step 1,2,3 e36 = 6 e63 = 0 e46 = 7 e64 = 0 5 1 2 4 3 6 e15 = 8 e51 = 0 e12 = 5 e21 = 0 e25= 2 e52 = 0 e23 = 3 e32 = 0 e53 = 6 e35 = 0 e24 = 4 e42 = 0 [8,1] [5,1] [4,2] [3,2] [3,3] * * College of Computer Science Technology, BUPT Step 5 e36 = 3 e63 = 3 e46 = 7 e64 = 0 5 1 2 4 3 6 e15 = 8 e51 = 0 e12 = 2 e21 = 3 e25= 2 e52 = 0 e23 = 0 e32 = 3 e53 = 6 e35 = 0 e24 = 4 e42 = 0 * * College of Computer Science Technology, BUPT Step 1,2,3 e36 = 3 e63 = 3 e46 = 7 e64 = 0 5 1 2 4 3 6 e15 = 8 e51 = 0 e12 = 2 e21 = 3 e25= 2 e52 = 0 e23 = 0 e32 = 3 e53 = 6 e35 = 0 e24 = 4 e42 = 0 [8,1] [2,1] [2,2] [3,3] [6,5] * * College of Computer Science Technology, BUPT Step 5 e36 = 0 e63 = 6 e46 = 7 e64 = 0 5 1 2 4 3 6 e15 = 5 e51 = 3 e12 =2 e21 = 3 e25= 2 e52 = 0 e23 = 0 e32 = 3 e53 = 3 e35 = 3 e24 = 4 e42 = 0 * * College of Computer Science Technology, BUPT Step 1,2,3 e36 =0 e63 =6 e46 = 7 e64 = 0 5 1 2 4 3 6 e15 = 5 e51 = 3 e12 =2 e21 = 3 e25= 2 e52 = 0 e23 = 0 e32 = 3 e53 = 3 e35 = 3 e24 = 4 e42 = 0 [5,1] [3,5] [2,1] [2,4] [2,2] * * College of Computer Science Technology, BUPT Step 5 e36 = 0 e63 = 6 e46 = 5 e64 = 2 5 1 2 4 3 6 e15 = 5 e51 = 3 e12 =0 e21 = 5 e25= 2 e52 = 0 e23 = 0 e32 = 3 e53 = 3 e35 = 3 e24 = 2 e42 = 2 * * College of Computer Science Technology, BUPT Step 1,2,3 e36