编辑:我的功能被打破/n了.感谢woofmeow让我质疑我的功能!
我是编程新手.我一直在努力,过去几个月我学到了很多东西(这里有一堆!)但我很难过.
我有一个PHP脚本从另一个PHP脚本调用,我无法获得实际运行的代码.它曾经运行,然后我改变了一些东西,并没有保存更改,我不知道我做了什么.我知道,我知道,新手的错误(我从中学到了!).Javascript在视图页面源上显示正常,但不再运行.
这是页面源代码,可能就是这么简单:
<script type="text/javascript">
function delete_user(user_id)
{if (confirm("Are you sure you want to delete this user?" + "\nThere's really no going back!")) {window.location = "delete_user.php?user_id=" + user_id;}}</script>
这是PHP:show_users脚本将其发送到查看器:
$delete_user_script = <<<EOD
function delete_user(user_id)
{
if (confirm("Are you sure you want to delete this user?"
+ "\nThere's really no going back!"))
{
window.location = "delete_user.php?user_id=" + user_id;
}
}
EOD;
HTML中的PHP在工作时没有改变:
<?php
while ($user = mysql_fetch_array($result))
{
$user_row = sprintf("<li><a href='show_user.php?user_id=%d'>%s %s</a>(<a href='mailto:%s'>%s</a>)<a href='javascript:delete_user(%d);'><img class='delete_user' src='../images/delete.png' width='15' …