作业帮求幂级数(如下图)的和函数.
来源:学生作业帮助网 编辑:作业帮 时间:2024/04/29 02:41:08
求幂级数(如下图)的和函数.
求幂级数(如下图)的和函数.
求幂级数(如下图)的和函数.
虽然楼上输的很辛苦...
用这个符号表示求和符号∑(n,0,+inf)
对上式逐项积分得到∑(n,0,+inf)(n+1)x^(n+1)
设S=∑(n,0,+inf)(n+1)x^(n+1)=x+2x^2+3x^3++4x^4.
xS=x^2+2x^3+3x^4.
(1-x)S=x+x^2+x^3+.
由泰勒展开知1/(1-x)=1+x+x^2+...
所以(1-x)S=x(1+x+x^2+..)=x/(1-x)
S=x/(1-x)^2
然后对S求导就得到所求的和式
S‘=(x+1)/(1-x)^3
若满意,请采纳!.
令上述幂级数的和函数等于E
E=1+(2^2)x+(3^2)x^2+(4^2)x^3+…………+[(n+1)^2]x^n
xE=x+(2^2)x^2+(3^2)x^3+(4^2)x^4+…………+[(n+1)^2]x^(n+1)
两式相减得:
(1-x)E=1-[(n+1)^2]x^(n+1)+(2^2-1)x+(3^2-2^2)x^2+(4^2-3^2)x^3+…...
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令上述幂级数的和函数等于E
E=1+(2^2)x+(3^2)x^2+(4^2)x^3+…………+[(n+1)^2]x^n
xE=x+(2^2)x^2+(3^2)x^3+(4^2)x^4+…………+[(n+1)^2]x^(n+1)
两式相减得:
(1-x)E=1-[(n+1)^2]x^(n+1)+(2^2-1)x+(3^2-2^2)x^2+(4^2-3^2)x^3+…………+[(n+1)^2-n^2]x^n
=[1+3x+5x^2+7x^3+9x^4+…………+(2n+1)x^n]-[(n+1)^2]x^(n+1)
x(1-x)E=[x+3x^2+5x^3+7x^4+…………+(2n-1)x^n+(2n+1)x^(n+1)]-[(n+1)^2]x^(n+2)
两式又相减可得:
(1-x)E - x(1-x)E=(x-1)^2E
=1 - [(n+1)^2]x^(n+1) - (2n+1)x^(n+1) + [(n+1)^2]x^(n+2) +2[x+x^2+x^3+x^4+……+x^n]
=1 - [(n+1)^2]x^(n+1) - (2n+1)x^(n+1) + [(n+1)^2]x^(n+2) + 2[x(1-x)^n]/(1-x)
=[x+1-2.x^(n+1)]/(1-x) + [(n+1)^2]x^(n+2) - (n^2+4n+2)x^(n+1) = (x-1)^2.E
所以E为:
E={[x+1-2.x^(n+1)]/(1-x) + [(n+1)^2]x^(n+2) - (n^2+4n+2)x^(n+1)} / [(x-1)^2]
=[(2.x^(n+1) - (x+1)] /(x-1)^3 + [(n+1)^2.x^(n+2)] /(x-1)^2 - [(n^2+4n+2).x^(n+1)] /(x-1)^2
终于输完了!就是这样的了,希望对楼主有帮助!
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