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Ajax对象 向 服务器发送数据请求的有关问题 新手求解答

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Release: 2016-06-13 10:12:03
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Ajax对象 向 服务器发送数据请求的问题 新手求解答。
问题出在 文件 Ajax.html 向 文件 server.php 发送数据请求。。  

以下是 Ajax.html 代码:

HTML code
<!--Code highlighting produced by Actipro CodeHighlighter (freeware)http://www.CodeHighlighter.com/--><script>            function  createAjax(){            var Ajax=false;            if(window.XMLHttpRequest){            //非IE系列,符合W3C标准,或者是IE7,IE8                    Ajax=new window.XMLHttpRequest();                        if(Ajax.overrideMimeType){                    Ajax.overrideMimeType("text/xml");            }                         }else if(window.ActiveXObject){            //IE系列的低版本                    var version=['Microsoft.XMLHTTP','MSXML.XMLHTTP','Msxml2.XMLHTTP.7.0','Msxml2.XMLHTTP.6.0','Msxml2.XMLHTTP.5.0','Msxml2.XMLHTTP.4.0','Msxml2.XMLHTTP.3.0','Msxml2.XMLHTTP'];                        for(var i=0;i<version.length;i++){                        try{                           Ajax=new ActiveXObject(version[i]);                                    if(Ajax){                                            return Ajax;                                            }                           }                        catch(e){                           Ajax=false;                        }                                              }                                }                         return Ajax;            }                        var Ajax=null;            function show(){                   Ajax=createAjax();                   Ajax.open("post","server.php?name=tianxiaokang&age=22&"+Math.random(),ture);                   Ajax.send(null);            }            </script>            <input type="button" onclick="show()" value="请求">
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这个是 server.php 代码:
PHP code
<!--Code highlighting produced by Actipro CodeHighlighter (freeware)http://www.CodeHighlighter.com/--><?php $str=$_GET["name"];      $str.="*******";      $str.=$_GET["age"];            $file=fopen("save.txt","a");      fwrite($file,$str);      fclose();      ?>
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为什么我的根目录生成不了 save.txt 文件。。

------解决方案--------------------
将ajax的传递方式改为get
------解决方案--------------------
Ajax.open("get", "server.php?name=tianxiaokang&age=22&"+Math.random(),true);
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