Ajax發布到PHP並獲取返回數據

Question

我正在開發一個滑塊來設置預算，並希望實現在slider1.php中設置的值。 但是，當我嘗試使用下面的代碼時，遇到錯誤“注意：未定義的索引：C：\\ xampp \\ htdocs \\ 1204763e \\ slider1 \\ slider1.php在第4行上的slideStatus謝謝，說的是PHP文件”

在slide.php中，我插入了以下代碼集：

     <html>
    <head>
    <script language="JavaScript" type="text/javascript">

    function ajax_post(val){

        var hr = new XMLHttpRequest();

        var url = "slider1.php";
        var ss = document.getElementById('sliderStatus').innerHTML = val;
        var vars = "sliderStatus="+ss;
        hr.open("POST", url, true);

        hr.setRequestHeader("Content-type", "application/x-www-form-urlencoded");

        hr.onreadystatechange = function() {
            if(hr.readyState == 4 && hr.status == 200) {
                var return_data = hr.responseText;
                document.getElementById("status").innerHTML = return_data;
            }
        }
        // Send the data to PHP now... and wait for response to update the status div
        hr.send(vars); // Actually execute the request
        document.getElementById("status").innerHTML = "processing...";
    }
    </script>
    </head>
    <body>
    <h2>Ajax Post to PHP and Get Return Data</h2>

    <input type="range" name="slide" min="0" max="100" value="50" step="2" onChange="ajax_post(this.value)" />
    <br /><br />
    <span id="sliderStatus">50</span>
    <br/><br/>

    <div id="status"></div>

    </body>
    </html>



In slider1.php, I inserted this set of code:

    <?php 
    echo 'Thank you '. $_GET['slideStatus'] . ', says the PHP file';
    ?>

Answer 1

您似乎嘗試訪問“ slideStatus”，但要發布“ sliderStatus”。