问题
计算题
已知x+2y=5,xy=1.求下列各式的值:(1)2x2y+4xy2;(2)(x2+1)(4y2+1)
答案
解:(1)原式=2xy(x+2y)=2×1×5=10;
(2)原式=4x2y2+x2+4y2+1
=4(xy)2+(x+2y)2﹣4xy+1
=4×12+52﹣4×1+1
=26.
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已知x+2y=5,xy=1.求下列各式的值:(1)2x2y+4xy2;(2)(x2+1)(4y2+1)
解:(1)原式=2xy(x+2y)=2×1×5=10;
(2)原式=4x2y2+x2+4y2+1
=4(xy)2+(x+2y)2﹣4xy+1
=4×12+52﹣4×1+1
=26.
