已知数列的前n项和sn=2的n次-1,此数列奇数项的前n项和是
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/17 08:03:34
S(N-1)=(n-1)^2-9(n-1)=n^2-11n+11Sn-S(n-1)=an=2n-115
(1)当n≥2时,an=Sn-Sn-1=n(2n-1)-(n-1)(2n-3)=4n-3,当n=1时,a1=S1=1,适合.∴an=4n-3,∵an-an-1=4(n≥2),∴an为等差数列.(2)由
an=sn-Sn-1(1)Sn=3n^2-nSn-1=3(n-1)^2-(n-1)Sn-Sn-1=3(2n-1)-1=6n-4
(1)当n=1时a(1)=S(1)=3-5/2=1/2当n≥2时a(n)=S(n)-S(n-1)=3n^2-5n/2-3(n-1)^2+5(n-1)/2=6n-11/2其中n=1是也符合上式,所以a(
证明:(1)由Sn=n2an−n(n−1)知,当n≥2时:Sn=n2(Sn−Sn−1)−n(n−1),…(1分)即(n2−1)Sn−n2Sn−1=n(n−1),∴n+1nSn−nn−1Sn−1=1,对
1.n=1时,a1=S1=1²+1=2n≥2时,Sn=n²+nS(n-1)=(n-1)²+(n-1)an=Sn-S(n-1)=n²+n-(n-1)²-
1、当n=1时,a1=s1=2当n≥2时,an=Sn-S(n-1)=4n²-2n-[4(n-1)²-2(n-1)]=8n-6当n=1时,满足an通项公式∴an=8n-6n属于N+2
Sn=12n-n^2Snmax=36Sn=12n-n^2Sn-1=12(n-1)-(n-1)^2两式相减an=12-2n+1=-2n+13数列{|An|}的前n项和Tn当n6时Tn=36+1+3+5+
(1)令n=1a1=S1=32-1+1=32Sn=32n-n²+1Sn-1=32(n-1)-(n-1)²+1an=Sn-Sn-1=32n-n²+1-32(n-1)+(n-
为了避免混淆,我把下角标放在内.首先从数列本身的基本意义出发a=S-S其次,从已知a=S(n+2)/n出发a=S*(n+1)/(n-1)因此S-S=S*(n+1)/(n-1)移项整理S=S
(Ⅰ)由S1=13(a1−1),得a1=13(a1−1)∴a1=−12又S2=13(a2−1),即a1+a2=13(a2−1),得a2=14.(Ⅱ)当n>1时,an=Sn−Sn−1=13(an−1)−
A(n+1)=S(n+1)-Sn=2(n+1)^2+3(n+1)+2-2n^2-3n-2=2n^2+4n+2+3n+3-2n^2-3n=4n+5An=5+4(n-1)
【方法1:强行展开a(n)表达式】1+2+……+n=n(n+1)/21^2+2^2+……+n^2=n(n+1)(2n+1)/61^3+2^3+……+n^3=n^2(n+1)^2/41^4+2^4+……
an=n^2=n(n+1)-n=(1/3)[n(n+1)(n+2)-(n-1)n(n+1)]-(1/2)[n(n+1)-(n-1)n]Sn=a1+a2+...+an=(1/3)n(n+1)(n+2)-
n=n(n+1)=n^2+nSn=b1+b2+...+bn=(1^2+1)+(2^2+2)+...+(n^2+n)=(1^2+2^2+...+n^2)+(1+2+...+n)=n(n+1)(2n+1)
Sn=10n-n²,a1=S1=9,n≥2时,an=Sn-S(n-1)=11-2n∴an=11-2n(n≥1)该数列前5项为正,从第6起为负.①1≤n≤5时,Bn=Sn=10n-n²
(Ⅰ)a1=3,当n≥2时,Sn−1=23an−1+1,∴n≥2时,an=Sn−Sn−1=23an−23an−1,∴n≥2时,anan−1=−2∴数列an是首项为a1=3,公比为q=-2的等比数列,∴
2Sn=n²+n则n≥2时2S(n-1)=(n-1)²+(n-1)=n²-n相减2an=2nan=n2a1=2S1=1+1=2a1=1符合n≥2的式子所以an=n
解题思路:方法:数列通项的求法:已知sn,求an。求和:错位相减法。解题过程:
由题意:a1=1^2-8×1=-7由条件sn=n^2-8n…①s(n-1)=(n-1)^2-8(n-1)…②①-②得:sn-s(n-1)=2n-9由an=sn-s(n-1)故an=2n-9,此式适用于