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请教这种参数怎么用PHP获得

WBOY
Release: 2016-06-13 13:27:24
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请问这种参数如何用PHP获得?
<script><br /> <br /> var url = '/Research';<br /> var objParm = new Object();<br /> objParm.kwd = $('#hdkwd').val();<br /> objParm.sub = $('#hdsub2').val();<br /> objParm.beg = $('#hdbeg').val();<br /> objParm.past = $('#hdpast').val();<br /> objParm.man = $('#hdman').val(); <br /> ...<br /><br /> $.post(url, objParm, function(result) {<br /> $('#dvwait').hide();<br /> ....<br /><br /> });<br /><br /><br /><br /></script>

以上是 ajax 的提交js脚本, 我的疑问是 objParm.kwd 这些 参数应该如何在 php 页面里获得?

------解决方案--------------------
真不知道你是如何做的,难道 jq 会犯这种低级错误?

JScript code
<script src="scripts/jquery-1.7.js"></script>
<script>
var url = 'http://localhost/server.php';
var objParm = new Object();
objParm.id = 1;
$.post(url, objParm, function(result) {
  alert(result);
  })
</script> <div class="clear">
                 
              
              
        
            </div>
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