求解,极限,谢谢。
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lim(x→0)ln(tanx/x)/x²
= lim(x→0)ln[1+(tanx/x-1)]/x²
= lim(x→0)[(tanx/x-1)]/x² (等价无穷小替换)
= lim(x→0)[(tanx-x)]/x³ (0/0)
= lim(x→0)[(sec²x-1)/(3x²)]
= (1/3)*lim(x→0)(1/cos²x)*lim(x→0)[(1-cos²x)/x²]
= (1/3)*1*(1/2)
= 1/6。
= lim(x→0)ln[1+(tanx/x-1)]/x²
= lim(x→0)[(tanx/x-1)]/x² (等价无穷小替换)
= lim(x→0)[(tanx-x)]/x³ (0/0)
= lim(x→0)[(sec²x-1)/(3x²)]
= (1/3)*lim(x→0)(1/cos²x)*lim(x→0)[(1-cos²x)/x²]
= (1/3)*1*(1/2)
= 1/6。
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