《PHP實戰:AJAX PHP無刷新form表單提交的簡單實現(推薦)》要點:
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PHP學習ajax.php:
PHP學習
<head>
<meta http-equiv="Content-Type" content="text/html; charset=utf-8" />
<title>Untitled Document</title>
</head>
<script language="javascript">
function saveUserInfo()
{
//獲取接受返回信息層
var msg = document.getElementByIdx_x("msg");
//獲取表單對象和用戶信息值
var f = document.user_info;
var userName = f.user_name.value;
var userAge = f.user_age.value;
var userSex = f.user_sex.value;
//接收表單的URL地址
var url = "./ajax_output.php";
//需要POST的值,把每個變量都通過&來聯接
var postStr = "user_name="+ userName +"&user_age="+ userAge +"&user_sex="+ userSex;
//實例化Ajax
//var ajax = InitAjax();
var ajax = false;
//開始初始化XMLHttpRequest對象
if(window.XMLHttpRequest) { //Mozilla 瀏覽器
ajax = new XMLHttpRequest();
if (ajax.overrideMimeType) {//設置MiME類別
ajax.overrideMimeType("text/xml");
}
}
else if (window.ActiveXObject) { // IE瀏覽器
try {
ajax = new ActiveXObject("Msxml2.XMLHTTP");
} catch (e) {
try {
ajax = new ActiveXObject("Microsoft.XMLHTTP");
} catch (e) {}
}
}
if (!ajax) { // 異常,創建對象實例失敗
window.alert("不能創建XMLHttpRequest對象實例.");
return false;
}
//通過Post方式打開連接
ajax.open("POST", url, true);
//定義傳輸的文件HTTP頭信息
ajax.setRequestHeader("Content-Type","application/x-www-form-urlencoded");
//發送POST數據
ajax.send(postStr);
//獲取執行狀態
ajax.onreadystatechange = function() {
//如果執行狀態成功,那么就把返回信息寫到指定的層里
if (ajax.readyState == 4 && ajax.status == 200) {
msg.innerHTML = ajax.responseText;
}
}
alert (userName);
}
</script>
<body >
<div id="msg"></div>
<form name="user_info" method="post" action="">
姓名:<input type="text" id="user_name"name="user_name" /><br />
年齡:<input type="text" name="user_age" /><br />
性別:<input type="text" name="user_sex" /><br />
<input type="button" value="提交表單" onClick="saveUserInfo()">
</form>
</body>
PHP學習?ajax_output.php:
PHP學習
<?php
$username = $_POST['user_name'];
$userage = $_POST['user_age'];
$usersex = $_POST['user_sex'];
echo "$username <br>";
echo "$userage <br>";
echo "$usersex <br>";
$db = new mysqli('localhost','root','123456','test');
if(!$db){
echo "連接失敗!";
}
$db->query("set names utf8");
$query = "insert into userinfo(uname,uage,usex) values ('".$username."','".$userage."','".$usersex."')";
$result = $db->query($query);
if ($result){
echo "上傳成功!";
}
else {
echo "失敗!";
}
$db->close();
?>
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