表单提交结果后用php代码打开新窗口

2022-01-20 00:00:00 validation popup forms window php

这是我一直在编写的脚本,它应该集成用户并在打开时通过

here is the script that i been working on , it is supposed to integrate user and pass when opened

<?php

$name = $_POST['name']; // contain name of person
$pass = $_POST['pass']; // Email address of sender 
$link = window.open(https://secure.brosix.com/webclient/?nid=4444&user=$name&pass=$pass&hideparams=1 'width=710,height=555,left=160,top=170');

echo $link;

?>

我这样做对吗,我想在用户将表单提交到 php 代码后打开一个弹出窗口,但我总是收到错误.

am i doing this right, i want to open a pop up windows after the user submits the form to the php code but i always get an error.

推荐答案

把你的代码改成这个

<?php

$name = $_POST['name']; // contain name of person
$pass = $_POST['pass']; // Email address of sender 
$link = "<script>window.open('https://secure.brosix.com/webclient/?    nid=4510&user=$name&pass=$pass&hideparams=1', 'width=710,height=555,left=160,top=170')</script>";

echo $link;

?>

补充说明

您应该考虑使用 fancybox,它可以使用 iframe 在弹出窗口中加载整个网页.还有其他选择,请随意探索!

You should consider using fancybox which can load webpages as a whole in a popup window using iframes. There are other options as well feel free to explore!

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