设等差数项{An}的前n项和为A,第n 1项到第2n项
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an=3^n-2^n=(3-2)[3^(n-1)+3^(n-2)×2+3^(n-3)×2²+…+2^(n-1)]是代公式:a^n-b^n=(a-b)*[a^(n-1)+a^(n-2)*b+a
S5^2=S3*S4(S3+S4)/2=1=>S3+S4=2S3=a1+a1+d+a1+2d=3a1+3dS4=4a1+7dS5=5a1+12dS3+S4=7a1+10d=2=>d=1/5-7/10a
学霸解题先采后解(全过程)诚信再问:过程呢?再问:-_-|||
Sn是an^2和an的等差中项所以Sn=(an²+an)/2①同理得Sn-1=(an-1²+an-1)/2②①-②得2an=an²-an-1²+an-an-1化
sn=2n^2-n,bn=sn/(n+p)=(2n^2-n)/(n+p)b1=1/(1+p),b2=6/(2+p),b3=15/(3+p).bn是等差数列,则b1+b3=2b2,即1/(1+p)+15
由题意知对任意n有2S[n]=a[n]^2+a[n]同样有:2S[n-1]=a[n-1]^1+a[n-1]两式相减,得左边=2S[n]-2S[n-1]=2a[n]即2a[n]=a[n]^2+a[n]-
S3=a1+a2+a3=a1+a1+d+a1+2d=3(a1+d)=12a1+d=4=a2(a2)^2=2a1*(a3+1)16=2a1*(a1+2d+1)a1+d=4联合方程解得a1=8(舍去)a1
1)由题意得,a1=1,当n>1时,sn=an^2/2+an/2sn-1=a(n-1)^2/2+a(n-1)/2,∴sn-sn-1=an^2/2-a(n-1)^2/2+an/2-a(n-1)/2即(a
(1)(an+2)/2=根号下2Sn所以8Sn=(an+2)^2n=1,S1=a1.8a1=(a1+2)^2,得a1=2n=2,8S2=(a2+2)^2,8(a1+a2)=(a2+2)^2,得a2=6
2sn=(an)^2+an,2(sn+1)=(an+1)^2+(an+1)作差((sn+1)-(sn)=an+1)则((an+1)-an-1)((an+1)+an)=0因为数列{an}的各项都是正数所
(1)这道题很基础,希望楼主可以自己独立掌握Sn=2An-2^nS(n-1)=2A(n-1)-2^(n-1)两式相减得An-2A(n-1)=2^(n-1)等式两边同时除以2^(n-1)得An/[2^(
前三项之和为9.A1=1,A2=3,A3=5猜想An=2n-1经验证符合题意.
an与1的等差中项为:(an+1)/2因为{an}是正数组成的数列,所以Sn与1的等比中项为根号Sn那么根号Sn=(an+1)/2所以Sn=(an+1)^2/4当n1=,a1=(a1+1)^2/4即a
由已知an与1的等差中项等于Sn与1的等比中项得(an+1)/2=√SnSn=(an+1)²/4n=1时,S1=a1=(a1+1)²/4,整理,得(a1-1)²=0a1=
S(n+1)=4an+2Sn=4a(n-1)+2S(n+1)-Sn=4an-4a(n-1)=a(n+1)有a(n+1)-2an=2(an-2a(n-1))可得{a(n+1)-2an}为q=2的等比有公
由题意得(an+1)/2=√(Sn×1)Sn=[(an+1)/2]²n=1时,S1=a1=[(a1+1)/2]²,整理,得(a1-1)²=0a1=1n≥2时,Sn=[(a
这道题需要一个仿写,因为且an与2的等差中项等于sn与2的等比中项,所以(an+2)/2的平方=2sn即(an+2)^2=8sn所以(an-1+2)^2=8sn-1两式作差,an^2+4an-an-1
2*Sn^(1/2)=An+1(1)2*S1^(1/2)=A1+1,S1=A1A1=1(2)Sn=(An+1)^2/4S(n-1)=[A(n-1)+1]^2/4An=Sn-S(n-1)=(1/4)*(