由函數(shù)y=f(x)確定數(shù)列{an},an=f(n),函數(shù)y=f(x)的反函數(shù)y="f" -1(x)能確定數(shù)列{bn},bn=" f" –1(n),若對(duì)于任意nÎN*,都有bn=an,則稱數(shù)列{bn}是數(shù)列{an}的“自反數(shù)列”.
(1)若函數(shù)f(x)=確定數(shù)列{an}的自反數(shù)列為{bn},求an;
(2)已知正數(shù)數(shù)列{cn}的前n項(xiàng)之和Sn=(cn+).寫出Sn表達(dá)式,并證明你的結(jié)論;
(3)在(1)和(2)的條件下,d1=2,當(dāng)n≥2時(shí),設(shè)dn=,Dn是數(shù)列{dn}的前n項(xiàng)之和,且Dn>log a (1-2a)恒成立,求a的取值范圍.

(1)an=
(2)Sn=,證明略
(3)0<a<–1

解析

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