php代码如下:
<?php header('Content-Type: application/json'); header('Content-Type: text/html;charset=utf-8'); $email = $_GET['email']; $user = []; $conn = @mysql_connect("localhost","Test","123456") or die("Failed in connecting database"); mysql_select_db("Test",$conn); mysql_query("set names 'UTF-8'"); $query = "select * from UserInformation where email = '".$email."'"; $result = mysql_query($query); if (null == ($row = mysql_fetch_array($result))) { echo $_GET['callback']."(no such user)"; } else { $user['email'] = $email; $user['nickname'] = $row['nickname']; $user['portrait'] = $row['portrait']; echo $_GET['callback']."(".json_encode($user).")"; } ?>js代码如下:
<script>
$.ajax({
url: "http://test.localhost/UserInterfaceForChatroom/[email protected]",
type: "GET",
dataType: 'jsonp',
// crossDomain: true,
success: function (result) {
// data = $.parseJSON(result);
// alert(data.nickname);
alert(result.nickname);
}
});
</script>其中遇到了两个问题:
1.第一个问题:
Uncaught SyntaxError: Unexpected token :
解决方案如下:
This has just happened to me, and the reason was none of the reasons above. I was using the jQuery command getJSON and adding callback=? to
use JSONP (as I needed to go cross-domain), and returning the JSON code {"foo":"bar"} and
getting the error.
This is because I should have included the callback data, something like jQuery17209314005577471107_1335958194322({"foo":"bar"})
Here is the PHP code I used to achieve this, which degrades if JSON (without a callback) is used:
$ret['foo'] = "bar";
finish();
function finish() {
header("content-type:application/json");
if ($_GET['callback']) {
print $_GET['callback']."(";
}
print json_encode($GLOBALS['ret']);
if ($_GET['callback']) {
print ")";
}
exit;
}Hopefully that will help someone in the future.
2.第二个问题:解析json数据。从上面的javascript中可以看到,我没有使用jquery.parseJSON()这些方法,开始使用这些方法,但是总是会报
VM219:1 Uncaught SyntaxError: Unexpected token o in JSON at position 1
的错误,后来不用jquery.parseJSON()这个方法,反而一切正常。不知为何。