Mathematics
Junior High

⑶の解き方を教えてください。

次の式を展開せよ. (1) (a-2)³ (3) (2)(x- (x−y+2)(x² + xy + y² −2x+2y+4) 解答 8 (1) a³-6a² + 1297

Answers

={(x-y)+2}{(x²+xy+y²)-2(x-y)+4}
分配法則で展開
=(x-y)(x²+xy+y²)-2(x-y)²+4(x-y)
 +2(x²+xy+y²)-4(x-y)+8
=(x³-y³)-2(x²-2xy+y²)+2(x²+xy+y²)+8
=x³-y³+6xy+8

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