设等比数列为{an},首项为a1
S1=a1=4a+1/8
S2=a1+a2=8a+1/8
S3=a1+a2+a3=16a+1/8
a1=4a+1/8
a2=4a
a3=8a
因为是等比数列
a1/a2=a2/a3
(4a+1/8)/4a=4a/8a
a=-1/16
设等比数列为{an},首项为a1
S1=a1=4a+1/8
S2=a1+a2=8a+1/8
S3=a1+a2+a3=16a+1/8
a1=4a+1/8
a2=4a
a3=8a
因为是等比数列
a1/a2=a2/a3
(4a+1/8)/4a=4a/8a
a=-1/16