已知数列{a
n]满足a
1=2,
an+1=(n∈N
*),则a
2012=______.
人气:174 ℃ 时间:2019-10-23 11:08:40
解答
设a
n=f(n),由
an+1=得,
f(n+1)=,则f(n+2)=f[(n+1)+1]=
=
=
=-∴
f(n+4)=-=-=f(n),所以数列a
n是以4为周期出现的,
所以a
2012=a
4,
又
a2==-3,
a3==-,
a4==所以
a2012=.
故答案为
.
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