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jquery获取多个checkbox的值异步提交给php的方法

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2016-06-13 09:00:10899browse

jquery获取多个checkbox的值异步提交给php的方法

         本文实例讲述了jquery获取多个checkbox的值异步提交给php的方法。分享给大家供大家参考。具体实现方法如下:

          html代码:

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=$item['mtaccount_id']?> =$item['account_id']?> =$item['account_name']?> =$item['server']?> =$item['platform']?>

         我的是html里的数据是从数据库读出来的,在此可以理解为下面代码

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  • 用户1
  • 用户2
  • 用户3
  • 用户4
  •           jquery代码:

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    var mt4Ids = [];

    $('input[name=uid]').each(function() {

    if(this.checked) {

    mt4Ids.push($(this).val());

    }

    });

    data = {

    mt4Ids : JSON.stringify(mt4Ids)

    };

    var pUrl = "/a/manageUser.html";

    $.post(pUrl, data, function(data){

    if(data.state == 1){

    alert(data.msg);

    location.href = "/h/permission.html";

    }else{

    alert("操作失败");

    }

    }, 'json');

             PHP代码

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    $mt4Ids = !empty($_POST['mt4Ids']) ? $_POST['mt4Ids'] : false;

    $stripMt4Ids = preg_replace('/[\"\[\]]/', '', $mt4Ids);

    $mt4IdsToArr = explode(',', $stripMt4Ids);

    foreach($mt4IdsToArr as $uid){

    permission_relation::add($uid, $gid);

    }

    $data = array(

    'state' => 1,

    'msg' => '操作成功'

    );

    echo json_encode($data);

    return false;

    // $gid 可忽略

              希望本文所述对大家的php程序设计有所帮助。

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