作业帮请问这道题幂级数求和怎么做
来源:学生作业帮助网 编辑:作业帮 时间:2024/10/04 01:04:33
x{kPƿJ
$j
1QE]uL69Ko-e
1mj́ xN[K
7y
|clkqp:W/e
Nyɣ_ަW#zOD"`hdRm:MH<
KnYaL_#A)Fq|��t"y�eNrAA=
|$2
Ê4
8U
z^AAYI9AB'A$NPX<^7gax VBaxV9
AUVd!u
h\JLgx]v>7M'.p~ȝL8ɢܱ
\M^S6͡;5Ҩ�6ƕotcw24Oэ~
nU:]"ȴ'oB]3Pzw(.;Qj_[!)Oԯ
请问这道题幂级数求和怎么做
请问这道题幂级数求和怎么做
请问这道题幂级数求和怎么做
记号有点不习惯,按我熟悉的写,结果是:∑{0 ≤ k} C(k+m,k)·x^k = 1/(1-x)^(m+1).
证明可以对m用数学归纳法.
m = 0时1/(1-x) = ∑{0 ≤ k} x^k,结论成立.
假设m = n时结论成立,即∑{0 ≤ k} C(k+n,k)·x^k = 1/(1-x)^(n+1).
两边对x求导得∑{1 ≤ k} k·C(k+n,k)·x^(k-1) = (n+1)/(1-x)^(n+2).
而k·C(k+n,k) = k·(k+n)!/(k!·n!) = (n+1)·(k+n)!/((k-1)!·(n+1)!) = (n+1)·C(k+n,k-1).
故∑{1 ≤ k} k·C(k+n,k)·x^(k-1) = (n+1)·∑{1 ≤ k} C(k+n,k-1)·x^(k-1) = (n+1)·∑{0 ≤ k} C(k+n+1,k)·x^k.
即得∑{0 ≤ k} C(k+n+1,k)·x^k = 1/(1-x)^(n+2),m = n+1时结论成立.
由数学归纳法原理,结论对任意自然数m成立.