一道初二数学题,急用!先化简,再求值:[(a+b)/2ab^2]
先化简,再求值:[(a+b)/2ab^2]^3 ÷[(a^2-b^2)/ab^2]^2÷{1/[2(a-b)]}^2,其中a=-(1/2),b=2/3
[(a+b)/2ab^2]^3 ÷[(a^2-b^2)/ab^2]^2÷{1/[2(a-b)]}^2 =(a+b)³/8a³b^6×a²b^4/(a+b)²(a-b)²×4(a-b)² =(a+b)/2ab² =(-1/2+2/3)/2×(-1/2)×(2/3)² =-3/8