I got n-1 independent equations.why do you use b2+c3b3+...+cnbn?

來源: 皆兄弟也 2010-09-14 10:11:26 [] [博客] [舊帖] [給我悄悄話] 閱讀數 : (213 bytes)
回答: Sorry,First term is not right.jinjing2010-09-13 17:47:58

(b2+c3b3+...+cnbn)a1 +(b2+c3b3+...+cnbn)b1x = a2+b2x

a2+b2x = c3a3+c3b3x

c3a3+c3b3x = c4a4+c4b4x
...

c(n-1)a(n-1) + c(n-1)b(n-1) x = cnan+cnbnx

unknowns are x, c3,...,c(n-1), cn.

所有跟帖: 

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

I have realized that it is wrong. -皆兄弟也- 給 皆兄弟也 發送悄悄話 皆兄弟也 的博客首頁 (0 bytes) () 09/14/2010 postreply 10:53:35

The sum of all factors should be constant(no x). -jinjing- 給 jinjing 發送悄悄話 (150 bytes) () 09/15/2010 postreply 10:20:17

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