1*(1/2)+3*(1/4)+5*(1/8)+.+(2n-1+1/2^n) “*”代表“又”代表是带分数.求和

问题描述:

1*(1/2)+3*(1/4)+5*(1/8)+.+(2n-1+1/2^n)
“*”代表“又”代表是带分数.求和

a=1*(1/2)+3*(1/4)+5*(1/8)+.+(2n-3)*1/2^(n-1)+(2n-1)*1/2^n
2a=1*1+3*(1/2)+5*(1/4)+.+(2n-1)*1/2^(n-1)
相减
2a-a=a=1+2*(1/2)+2*(1/4)+……+2*1/2^(n-1)-(2n-1)*1/2^n
2*(1/2)+2*(1/4)+……+2*1/2^(n-1)
=2*(1/2)*[1-(1/2)^(n-1)]/(1-1/2)
=2-1/2^(n-2)
所以原式=1+2-1/2^(n-2)-(2n-1)*1/2^n
=3-4*1/2^n-(2n-1)*1/2^n
=3-(2n+3)*1/2^n