已知数列an满足an加二等于九倍的a
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由an+1+an−1an+1−an+1=n可得an+1+an-1=nan+1-nan+n∴(1-n)an+1+(1+n)an=1+n∴an+1=n+1n−1an−n+1n−1=1n−1(an−1)×(
an=1+2+3+…+n=[n(n+1)]/2则:1/(an)=2/[n(n+1)]=2[(1/n)-1/(n+1)],所以:M=1/(a1)+1/(a2)+1/(a3)+…+1/(an)=2[1/1
∵an+an+1=12(n∈N*),a1=−12,S2011=a1+(a2+a3)+(a4+a5)+…+(a2010+a2011)=-12+12+…+12=−12+12×1005=502故答案为:50
a2-a1=2,a3-a2=4,…an+1-an=2n,这n个式子相加,就有an+1=100+n(n+1),即an=n(n-1)+100=n2-n+100,∴ann=n+100n-1≥2n•100n-
(1)由已知a2=2a1+2,a3=2a2+3=4a1+7,若{an}是等差数列,则2a2=a1+a3,即4a1+4=5a1+7,得a1=-3,a2=-4,故d=-1. &nbs
由an+2=3an+1-2an可得an+2-an+1=2(an+1-an)因为a2-a1=2,所以an+1-an不会等于0,则an+1-an是以2为公比的等比数列由上可得an+1-an=2^nan-a
A(n+1)=An-√3/(√3+1)=An-√3(√3-1)/2=An-3/2+√3/2A2=3/2-√3/2A3=A2-(-3/2+√3/2)=3-√3A4=A3-(-3/2+√3/2)=9/2-
由题意,Sn=n^2,则a1=1,S(n-1)=(n-1)^2=n^2-2n+1,n>=2an=Sn-S(n-1)=n^2-n^2+2n-1=2n-1,n>=2由于当n=1时,2n-1=1=a1所以,
a(n+1)=3an+1a(n+1)+1/2=3an+3/2=3(an+1/2)[a(n+1)+1/2]/(an+1/2)=3,为定值.a1+1/2=1/2+1/2=1数列{an+1/2}是以1为首项
a(n)=a(n+3).不可能递增.
两边同除an*an+1得:1/an-1/an+1=11/an+1-1/an=-1,所以数列{1/an}为等差数列1/an=1/a1+(-1)*(n-1)1/a31=1/2+(-1)*301/a31=-
x=anf(x)=a(n+1)代入函数方程a(n+1)=an^2+2ana(n+1)+1=an^2+2an+1=(an+1)^2满足平方递推数列定义,因此数列{an+1}是平方递推数列.a1+1=10
证明:取倒数1/an+1=an+3/3an=1/3+1/an1/an+1-1/an=1/3a1=1/21/a1=2{1/an}2首项1/3公差等差数列an=3/(5+n)
a(n+1)-2an=3.5^n,则a2-2a1=3.5^1a3-2a2=3.5^2.a(n+1)-2an=3.5^n以上式子相加,得a(n+1)-a1-Sn=3.5+3.5^2+...+3.5^n=
你应该是抄错题了吧--A(n+1)=2An+2^n等式两边同时除以2^(n+1)有A(n+1)/2^n+1=An/2^n+1/2设Bn=An/2^n则B(n+1)=Bn+0.5Bn是等差数列即An/2
a(n+1)=2a(n)/[a(n)+2],a(1)=2>0,由归纳法知a(n)>0.1/a(n+1)=[a(n)+2]/[2a(n)]=1/2+1/a(n),{1/a(n)}是首项为1/a(1)=1
因为不清楚你写的到底是怎样,我把我理解出的可能的两种题目都写出来.①假定原题为1/(An+1)=√[1/(An²+2)]两边同时平方,有1/(An+1)²=1/(An²+
(1)a2方-a1方=d,a3方-a2方=d,a4方-a3方=d,a5方-a4方=d.四式相加得a5方-a1方=4d,代入a1=1,a5=3,可求得d=2.另:把上述四式扩展到n式,可得an方-a1方
A2=A1+1A3=A2+2A4=A3+3.An=A(n-1)+(N-1)左式上下相加=右式上下相加An=A1+[1+2+3+...+(N-1)]An=1+[N(N-1)]/2