$.getJSON 获取不到php输出的值

WBOY
Release: 2016-06-20 12:41:54
Original
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js代码:
start_btn.click(function(){
        $.getJSON("data.php",function(json){
            if (json){
                var len = json.length;
                _gogo = setInterval(function () {
                    var num = Math.floor(Math.random()*len);
                    var id = json[num].id;
                    var v = json[num].mobile;
                    $("#roll").html(v);
                    $("#mid").val(id);
                },100);
                stop_btn.show();
                start_btn.hide();
            }else{
                $("#roll").html("系统找不到资源,请先导入数据");
            }
        });
    });

php代码:
if($action == ""){ //读取数据,返回json
    $query = mysqli_query($conn,"select * from member where status = 0");
    while($row = mysqli_fetch_array($query)) {
        $arr[] = array(
            'id' => $row['id'],
            'mobile' => substr($row['mobile'], 0, 3) . "****" . substr($row['mobile'], -4, 4));
    }
    $j_arr = json_encode($arr);
    echo $j_arr;
}


回复讨论(解决方案)

1.先直接运行php,看看返回的json是否正确,如果正确则php正常,否则php有问题
2.如果php正常, 则把js的json打印出来,看看有什么错误。

1.先直接运行php,看看返回的json是否正确,如果正确则php正常,否则php有问题
2.如果php正常, 则把js的json打印出来,看看有什么错误。



怎么将json打印出来啊,php正常的

echo bin2hex(file_get_contents('http://localhost/data.php'));

source:php.cn
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