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若f(α)=[sin(π-α)cos(2π-α)tan(-α+π)]/[-tan(-α-π)sin(-π-α)]化简
人气:193 ℃ 时间:2020-04-30 07:04:20
解答
f(α)=[sin(π-α)cos(2π-α)tan(-α+π)]/[-tan(-α-π)sin(-π-α)]
=[sinαcosα(-tanα)]/{tanα[-sin(π+α)}
=-sinαcosαtanα/(tanαsinα)
=-cosα不是cosα吗?不是
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