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For example:

$file = fopen("File.txt", "r");
$filename = $file->basename;

if there was a method like basename for file objects (file pointer resources).

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2  
You obviously know the file name if you 'fopen'ed it. Why do you need to get it from the fopen variable? –  Rocket Hazmat Sep 1 '10 at 20:02

3 Answers 3

up vote 3 down vote accepted

No, there is not a method to do. You should rather store the filename in a variable, like this:

<?php
$filename = "File.txt";
$file = fopen($filename, "r");
$basename = basename($filename);

Also, a little side note: a file pointer is not an object, it is a resource, which you can see by passing it to var_dump() (it would output something like resource(3) of type (stream)). This means that you cannot use it directly, you would have to use functions from the PHP core or a PHP extension to handle it. In the case of file pointers, you would use functions like fread(), fwrite() and fclose() to do so.

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No, there is not.

By the way, in which scenario is this thing needed?

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I came to this page while trying to find out the filename that PHP's tmpfile() function had created - it returns a pointer. I wanted to use it to create a file I could use with some Unix commands. In the end I used tempnam(realpath(sys_get_temp_dir()), "piclib_"); instead.

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