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新手求ajax返回值的有关问题

WBOY
WBOYOriginal
2016-06-13 11:21:22898browse

新手求ajax返回值的问题
ajax返回值进入showmsg函数,然后alert(tips)出函数返回的值,但是总显示undefined,是不是返回类型的问题,新手求教~
function showmsg(ms)
{  
    var tips
  switch(ms)
{  
  case 'ding':
  tips='thanx votting';
  break
  case 'cai':
  tips='thanx u done';
  break
  case 'erro':
  tips='404 notfound';
  break; 
  default: tips='erro';
  break;
 
 }return tips;
 }


------解决方案--------------------
var pass= str.replace(/\s+/g,""); 这个才是清楚空格,你那个是清楚换行
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