1
我有一个脚本在这里,复制几乎直接关闭this。为什么下面列出的代码不返回任何内容?YQL JSON脚本不返回?
ajax.html
:
<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.01//EN"
"http://www.w3.org/TR/html4/strict.dtd">
<html dir="ltr" lang="en-US">
<head>
<meta http-equiv="Content-Type" content="text/html; charset=UTF-8">
<title>Cross-Domain Ajax Demo</title>
</head>
<body>
<div id="container">
<form>
<p><label>Type a URL:</label><input type="text" name="sitename" id="sitename"/></p>
<p><input type="submit" name="submit" id="submit" value="Make Cross Domain Ajax request"</p>
</form>
</div>
<script type="text/javascript" src="http://ajax.googleapis.com/ajax/libs/jquery/1.4/jquery.min.js" charset="utf-8"></script>
<script type="text/javascript" src="cross-domain-requests.js"></script>
<script type="text/javascript">
$('form').submit(function() {
var path = "www.google.com";
requestCrossDomain(path, function(results) {
$('#container').html(results);
});
return false;
});
</script>
</body>
</html>
cross-domain-requests.js
:
// Accepts a URL and a callback function to run.
function requestCrossDomain(site, callback) {
// If no URL was passed, exit.
if (!site) {
alert('No site was passed.');
return false;
}
// Take the provided URL, and add it to a YQL query. Make sure you encode it!
var yql = 'http://query.yahooapis.com/v1/public/yql?q=' + encodeURIComponent('select * from html where url="' + site + '"') + '&format=xml&callback=cbFunc';
// Request that YSQL string, and run a callback function.
// Pass a defined function to prevent cache-busting.
$.getJSON(yql, cbFunc);
function cbFunc(data) {
// If we have something to work with...
if (data.results[0]) {
// Strip out all script tags, for security reasons.
// BE VERY CAREFUL. This helps, but we should do more.
data = data.results[0].replace(/<script[^>]*>[\s\S]*?<\/script>/gi, '');
// If the user passed a callback, and it
// is a function, call it, and send through the data var.
if (typeof callback === 'function') {
callback(data);
}
}
// Else, maybe we requested a site that doesn't exist, and nothing returned.
else throw new Error('Nothing returned from getJSON.');
}
}
(我是比较新的脚本和Ajax,所以我提前道歉,如果我做任何愚蠢的事)
圣莫里它的工作原理,非常感谢。这节省了我几个小时的睡眠时间,熬夜通宵地想知道为什么它不工作:D – Luke 2012-04-13 20:22:42
很酷,我很高兴它解决了。请将答案标记为已接受,以结束此问题。 – 2012-04-13 20:26:20
我必须再等一分钟才能做到抱歉,我想我对于堆栈溢出来说太新了编辑:对不起,我的意思是在,它不会让我标记为答案 – Luke 2012-04-13 20:28:06