求y=(1+sinx)(1+cosx)的值域
<p>问题:求y=(1+sinx)(1+cosx)的值域<p>答案:↓↓↓<p class="nav-title mt10" style="border-top:1px solid #ccc;padding-top: 10px;">邵浩的回答:<div class="content-b">网友采纳 f(x)=(1+sinx)(1+cosx)=1+(sinx+cosx)+sinxcosx令t=sinx+cosx=√2sin(x+π/4)则-√2≤t≤√2f(x)=1+t+(t^2-1)/2=1/2(t^2+2t)+1/2=1/2(t+1)^2最小值是0(此时t=-1),最大值是√2+3/2(此时t=√2)...
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