1.当t=2时,取n=2有S2-2S1=2即a1+a2-2a1=2,又a1=1得a2=3;取n=3时有a1+a2+a3-2a1-2a2=3带入得a3=7
2.由Sn-tSn-1=n,a1=1得a2=1+t,a3=1+2t+t^2,因为an +1是等比,带入(a2 +1)^2=(a1+1)*(a3+1)得t^2=0,即t=0,an恒为1
设数列{an}的前n项和为Sn,满足Sn-tSn-1=n(n大于等于2,n属于N),t为常数,且a1
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