因为对于等差数列:S(2k-1)=(2k-1)[a1+a(2k-1)]/2=(2k-1)*ak →所以ak=S(2k-1)/(2k-1) →所以a11:b11=(S21/21):(S'21/21)=S21/S'21=148/111
Sn为等差数列an的前n项和S'n为等差数列
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