我下面有一个javascript变量,它应该从imageupload中检索$_SESSION['imagename'].php(一个单独的页面)
var imagename = <?php echo json_encode(isset($_SESSION['imagename']) ? $_SESSION['imagename'] : null); ?>;
但是我的问题是我将下面的代码放在 php 脚本中的什么位置,以便会话变量包含文件的名称并能够由上面的变量检索?
if (isset($_POST['fileImage'])) { // fileImage is the name of the file input
$_SESSION['imagename'] = $_FILES['fileImage']['name'];
}
$_SESSION['fileImage']['name'] = $_FILES['fileImage']['name'];
下面是 php 脚本:
$result = 0;
if( file_exists("ImageFiles/".$_FILES['fileImage']['name'])) {
$parts = explode(".",$_FILES['fileImage']['name']);
$ext = array_pop($parts);
$base = implode(".",$parts);
$n = 2;
while( file_exists("ImageFiles/".$base."_".$n.".".$ext)) $n++;
$_FILES['fileImage']['name'] = $base."_".$n.".".$ext;
move_uploaded_file($_FILES["fileImage"]["tmp_name"],
"ImageFiles/" . $_FILES["fileImage"]["name"]);
$result = 1;
}
else
{
move_uploaded_file($_FILES["fileImage"]["tmp_name"],
"ImageFiles/" . $_FILES["fileImage"]["name"]);
$result = 1;
}
?>
<script language="javascript" type="text/javascript">
window.top.stopImageUpload(<?php echo "'$result'";?>); // call backs javascript function
</script>
$result = 0;
if (isset($_POST['fileImage']) && ((($_FILES["file"]["type"] == "image/gif")
|| ($_FILES["file"]["type"] == "image/jpeg")
|| ($_FILES["file"]["type"] == "image/pjpeg"))
&& ($_FILES["file"]["size"] < 20000))){
//you must check for file type, else your website could be hacked.
if( file_exists("ImageFiles/".$_FILES['fileImage']['name'])) {
//...
}
else{
//...
}
}
$_SESSION['fileImage']['name'] = $_FILES['fileImage']['name'];