求极限:lim(x→0)ln(1+xamp;#178;)/(secx-cosx)
<p>问题:求极限:lim(x→0)ln(1+xamp;#178;)/(secx-cosx)<p>答案:↓↓↓<p class="nav-title mt10" style="border-top:1px solid #ccc;padding-top: 10px;">封志云的回答:<div class="content-b">网友采纳 lim(x→0)ln(1+x²)/(secx-cosx) =lim(x→0)cosx*ln(1+x²)/sin²x =lim(x→0)cosx*lim(x→0)ln(1+x²)/sin²x =lim(x→0)/2sinxcosx =lim(x→0)1/*lim(x→0)x/sinx =1/2<p class="nav-title mt10" style="border-top:1px solid #ccc;padding-top: 10px;">高宇欣的回答:<div class="content-b">网友采纳 结果不大对中间求导的时候分子上有个2忘写了所以导致结果是1/2正确结果是1不用改了我了解了谢啦
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