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ajax?表单出错

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Release: 2016-06-20 12:49:42
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 <body>       <form>            Name:<input type="text" id="txt" >            <input type="button"  value="提交" onclick="A()" >       </form>    </body>    <script>            function A() {                $.ajax({                    url: 'b.php',                    type: 'post',                    dateType: 'json',                    data: {name: $("#txt").val()},                    success: function (result) {                        alert(result.password);                      //点击提交按钮是,弹出信息 undefined  而不是  B??                    },                    error: function (result) {                        alert("error");                    }                });            }    </script>b.php:<?php   $result=array();   $result['name']=$_POST['name'];   $result['password']="B";   echo json_encode($result);   exit;?>
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回复讨论(解决方案)

var result = jQuery.parseJSON(result); alert(result.password);
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先alert(result)看看result是不是json对象。。。。

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