PHP需要返回回声?
是否有可能需要一个PHP文件,并获得所有的回声被返回并存储到一个变量?PHP需要返回回声?
例子:
//file1.php
// let's say $somevar = "hello world"
<p><?php echo $somevar; ?></p>
//file2.php
$file1 = getEchoed("file1.php");
// I know getEchoed don't exist, but i'm unsure how to do it.
使用输出缓冲:
ob_start();
require('somefile.php');
$data = ob_get_clean();
oops,将其更改为使用正确的功能。总是混淆这两者。 – ThiefMaster 2011-04-17 00:06:09
如果我想关闭它,是否还需要ob_end()以及? – Pwnna 2011-04-17 14:05:21
编号'ob_get_clean()实质上执行ob_get_contents()和ob_end_clean()。'' – ThiefMaster 2011-04-17 14:15:10
Output buffering可以做你的需要。
ob_start();
require("file1.php");
$file1 = ob_get_contents();
ob_clean();
ob_start();
include('file1.php');
$contents = ob_get_clean();
从file1.php输出现在存储在变量$内容。
<?php
ob_start();
require 'file1.php';
$var_buffer = ob_get_contents();
ob_end_clean();
echo $var_buffer;
?>
可能重复http://stackoverflow.com/questions/1814182/get-the-results-of- an-include-in-a-string-in-php) – mario 2011-04-16 23:58:00