已知a与b互为相反数,c与d互为倒数,x=3(a-1)-(a-2b) y=c^2d-[(d/c)+c-1] 求(2x+y)/3-(3x-2y)/6
问题描述:
已知a与b互为相反数,c与d互为倒数,x=3(a-1)-(a-2b) y=c^2d-[(d/c)+c-1] 求(2x+y)/3-(3x-2y)/6
答
a+b=0
cd=1
x=3a-3-a+2b=2a+2b-3=2(a-b)-3=-3
y=c(cd)-cd-c+1=c-1-c+1=0
原式=(4x+2y-3x+2y)/6
=(x+4y)/6
=(-3+0)/6
=-1/2