Sorry,First term is not right.

（a1+b1x）（a2+b2x）......（an+bnx）={b1[（b2+c3b3+c4...+cnbn)a1/b1-（b2+c3b3+...cnbn）x]（a2+b2x）（c3a3+c3b3x）...（cnan+cnbnx）}/c3c4...cn（b2+c3b3+...cnbn）....We get n equations,but only n-1 is independent.We can get x.

• 此壇真乃從龍臥虎之處也。佩服，佩服。 -NaCl- ♂ (0 bytes) () 09/13/2010 postreply 21:09:47

• Thanks,I'm not strong for some open questions. -jinjing- ♀ (59 bytes) () 09/14/2010 postreply 10:16:19

• can you transit（a1+b1x）（a2+b2x）...（an+bnx）step by step? -皆兄弟也- ♂ (0 bytes) () 09/14/2010 postreply 07:59:03

• Sorry,I could say clearly and have some carelessness. -jinjing- ♀ (774 bytes) () 09/14/2010 postreply 10:00:53

• I really appreciate your effort. -皆兄弟也- ♂ (0 bytes) () 09/14/2010 postreply 10:13:56

• For n,it seems (n-1)th equition should be delt with. -皆兄弟也- ♂ (0 bytes) () 09/14/2010 postreply 10:22:32

• really wonderful. there are no (n-1)th equition . -皆兄弟也- ♂ (259 bytes) () 09/14/2010 postreply 10:43:52

• I got this transition. but,can you show what n equations are? -皆兄弟也- ♂ (333 bytes) () 09/14/2010 postreply 08:41:16

• Thank you,you correct me the +,-.some where.Up is answer. -jinjing- ♀ (0 bytes) () 09/14/2010 postreply 10:09:35

• I got n-1 independent equations.why do you use b2+c3b3+...+cnbn? -皆兄弟也- ♂ (213 bytes) () 09/14/2010 postreply 10:11:26

• n=2,your first Q is wrong. In fact t, you can choice any (n-1) -jinjing- ♀ (113 bytes) () 09/14/2010 postreply 10:41:32

• I have realized that it is wrong. -皆兄弟也- ♂ (0 bytes) () 09/14/2010 postreply 10:53:35

• The sum of all factors should be constant(no x). -jinjing- ♀ (150 bytes) () 09/15/2010 postreply 10:20:17