问题
解答题
(1)计算:4cos245°-|-2|+tan45°;
(2)分解因式:a3-9a.
答案
(1)原式=4×(
)2-2+12 2
=2-2+1
=1;
(2)a3-9a=a(a2-9)
=a(a+3)(a-3).
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(1)计算:4cos245°-|-2|+tan45°;
(2)分解因式:a3-9a.
(1)原式=4×(
)2-2+12 2
=2-2+1
=1;
(2)a3-9a=a(a2-9)
=a(a+3)(a-3).