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I'm trying to validate string so that trailing whitespace/linefeed (PHP_EOL, \n, \r, \t and " ") is not allowed. Here's the code:

$pattern = '/^[a-zA-Z0-9 ]+?[^\s]$/';
$value = 'foo' . PHP_EOL;
$status = preg_match($pattern, $value);

With trailing PHP_EOL and "\n" expression matches, with "\t", "\r" and " " it doesn't.

What is the proper expression to disallow all whitespace/linefeed at the end of the string, including PHP_EOL and "\n"?

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2  
why not just trim ? –  obi NullPoiиteя kenobi May 14 '13 at 10:31
    
idea was to validate input, not filter it. –  Eero Niemi May 15 '13 at 13:30

3 Answers 3

up vote 2 down vote accepted

The problem with $ is, that it matches at the end of the string or immediately before a newline character that is the last character in the string (by default), therefore you can not match a \n at the end of the string using the $ anchor.

To avoid that you can use \z (see escape sequences on php.net), that will always match at the end of the string (also independently of the multiline modifier).

So a solution would be

$pattern = '/^[a-zA-Z0-9 ]+?(?<!\s)\z/';

(?<!\s) is a negative lookbehind assertion, that is true if there is no whitespace character before \z

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Try this

$pattern = '/\s(?=\s*$)/';
$value = 'foo'. PHP_EOL;
$status = preg_match($pattern, $value);

if(!$status) {
    echo "Allow";
}
else {
    echo "Not Allow";
}
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This sounds like a basic "no trailing delimiters" problem, as seen here, but with spaces instead of hyphens.

'/^[a-zA-Z0-9]+(\s+[a-zA-Z0-9]+)*$/'

This regex assumes the delimiter can be any kind of whitespace, and there can be more than one of them. If you only want to allow one space character (\x20), this will do it:

'/^[a-zA-Z0-9]+( [a-zA-Z0-9]+)*$/'
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