已知(ab-2)²+|b-1|=0,求1/ab+1/(a+1)(b+1)+1/(a+2)(b+2)+…1/(a+2011)(b+2011)=

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已知(ab-2)²+|b-1|=0,求1/ab+1/(a+1)(b+1)+1/(a+2)(b+2)+…1/(a+2011)(b+2011)=已知(ab-2)²+|b-1|=0,求1

已知(ab-2)²+|b-1|=0,求1/ab+1/(a+1)(b+1)+1/(a+2)(b+2)+…1/(a+2011)(b+2011)=
已知(ab-2)²+|b-1|=0,求1/ab+1/(a+1)(b+1)+1/(a+2)(b+2)+…1/(a+2011)(b+2011)=

已知(ab-2)²+|b-1|=0,求1/ab+1/(a+1)(b+1)+1/(a+2)(b+2)+…1/(a+2011)(b+2011)=
(ab-2)²+|b-1|=0可知,b=1,a=2
1/ab+1/(a+1)(b+1)+1/(a+2)(b+2)+…1/(a+2011)(b+2011)
=1/2+1/(2*3)+……+1/(2013*2012)
=1-1/2+1/2-1/3+1/3-1/4+……+1/1012-1/2013
=2012/1013