y=(2^x+1)/(2^x-1)的值域怎么求(用设t法)我提问了...--
<p>问题:y=(2^x+1)/(2^x-1)的值域怎么求(用设t法)我提问了...--<p>答案:↓↓↓<p class="nav-title mt10" style="border-top:1px solid #ccc;padding-top: 10px;">胡先锋的回答:<div class="content-b">网友采纳 令t=2^x 2^x>0 所以t>0 y=(t+1)/(t-1) =(t-1+2)/(t-1) =(t-1)/(t-1)+2/(t-1) =1+2/(t-1) t>0 t-1>-1 若-1
页:
[1]