anb2[3bn-1-2abn+1+(-1)2003]=________.

3anbn+1-2an+1bn+3-anb2
分析:根據(jù)單項(xiàng)式成多項(xiàng)式,用單項(xiàng)式乘多向數(shù)的每一項(xiàng),把所得的積相加,可得答案.
解答:原式=anb2(3bn-1-2abn+1-1)
=3anbn+1-2an+1bn+3-anb2,
故答案為:3anbn+1-2an+1bn+3-anb2
點(diǎn)評(píng):本題考查了單項(xiàng)式成多項(xiàng)式,用單項(xiàng)式乘多向數(shù)的每一項(xiàng),把所得的積相加.
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