我正在使用表单提交用jquery Ajax插入数据,并在表单提交后将数据提取到dataTable中,以下代码向DataTables警告:table id = mainTable-请求的未知参数'1'用于第0行,第1列。 。 。
var mainTable = $('.mainTable').DataTable();
$('#Form').submit(function(e) {
e.preventDefault();
var form = $(this).serialize();
$.ajax({
url: "result.php",
type: "post",
data: form
}).done(function (data) {
mainTable .clear().draw();
mainTable .rows.add(data).draw();
}).fail(function (jqXHR, textStatus, errorThrown) {
});
});
HTML
<div class="content">
<!-- form start -->
<form method="post" id="Form">
<input type="text" name="id">
<input type="text" name="name">
<input type="text" name="class">
<button type="submit">submit</button>
</form>
<table id="mainTable" class="mainTable table table-striped">
<thead>
<tr>
<th>Roll No</th>
<th>Name</th>
<th>class</th>
</tr>
</thead>
<tbody>
</tbody>
</table>
</div>
PHP
$id = $_POST['group_id'];
$rollno = $_POST['roll_no'];
$name = $_POST['name'];
$class = $_POST['class'];
$insert = "insert into students (roll_no,group_id,name,class) values(:roll_no,:id,:name,:class)";
$insert = $db->prepare($insert );
$insert ->bindParam(':roll_no',$rollno);
$insert ->bindParam(':id',$id );
$insert ->bindParam(':name',$name);
$insert ->bindParam(':class',$class);
$insert ->execute();
$fetch = "SELECT roll_no,name,class FROM students where group-id=:id";
$fetch = $db->prepare($fetch );
$fetch ->bindParam(':id',$id);
$fetch ->execute();
$output = array('data' => array());
while($row = $fetch ->fetch(PDO:: FETCH_OBJ)) {
$id = $row->roll_no;
$name = $row->name;
$class = $row->class;
$output['data'][] = array( $id,$name,class);
} // /while
echo json_encode($output);
答案 0 :(得分:0)
已从评论中移出
根本原因仅仅是因为jQuery ajax()无法解析来自result.php的JSON响应。最简单的解决方案是在done()内部进行解析:
data = JSON.parse(data);
mainTable.rows.add(data.data).draw();
另一种解决方案是在result.php中正确return JSON header。 data = JSON.parse(data)中的行done()也应省略:
header('Content-Type: application/json');
echo json_encode($output);