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This code supposed not to let strings with whitespaces in the beginning and end. In some reason I have negative result with this code

import re
def is_match(pattern, string):
    return True if len(re.compile(pattern).findall(string)) == 1 else False
print(is_match("[^\s]+[a-zA-Z0-9]+[^\s]+", '1'))

However, other strings work fine. Can anyone explain why result is negative, or even provide better function (newbie in python).

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Why do you need to identify white space? Is it to remove it? –  eabraham Apr 27 '12 at 13:42
    
No, I need to know is there was whitespace or not. I know - the question a little bit specific... –  user1300585 Apr 27 '12 at 13:48
    
foo != foo.strip()? –  IfLoop Apr 27 '12 at 14:14
    
@TokenMacGuy: as long as you don't mind creating a temporary copy of foo. Probably nicer to check the first and last characters directly. –  Li-aung Yip Apr 27 '12 at 14:20

5 Answers 5

The regexp you're looking for is ^\s|\s$:

xs = ["no spaces", "  starts", "ends  ", "\t\tboth\n\n", "okay"]

import re
print [x for x in xs if re.search(r'^\s|\s$', x)]

## ['  starts', 'ends  ', '\t\tboth\n\n']

^\s.*?\s$ only matches whitespace on both ends:

print [x for x in xs if re.search(r'^\s.*?\s$', x, re.S)]

## ['\t\tboth\n\n']

An inverse expression (no starting-ending whitespace) is ^\S.*?\S$:

print [x for x in xs if re.search(r'^\S.*?\S$', x, re.S)]

## ['no spaces', 'okay']
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The simplest way to check for whitespace at the beginning or end of a string doesn't involve regular expressions.

if test_string != test_string.strip():
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def is_whiteSpace(string):
    t=' ','\t','\n','\r'
    return string.startswith(t) or string.endswith(t)


print is_whiteSpace(" GO") -> True
print is_whiteSpace("GO") -> False
print is_whiteSpace("GO ") -> True
print is_whiteSpace(" GO ") -> True
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1  
That's not very efficient. Why not use str.startswith() and str.endswith()? Or perhaps check if mystring[0] in " \t\n\r", if mystring[-1] in " \t\n\r"? –  Li-aung Yip Apr 27 '12 at 13:55
    
@Li-aung Yip: You are right, I made my fix. –  eabraham Apr 27 '12 at 14:08

Instead of trying to construct a regular expression that detects strings without spaces, it's easier to check for strings that DO have spaces and then invert the logic in your code.

Remember that re.match() returns None (a logical false value) if it doesn't find a match, and a SRE_Match object (logical true value) if it does find a match. Use that to write something like this:

In [24]: spaces_pattern = re.compile ( r"^(\s.+|.+\s)$" )

In [27]: for s in ["Alpha", " Bravo", "Charlie ", " Delta "]:
   ....:     if spaces_pattern.match(s):
   ....:         print ( "%s had whitespace." % s )
   ....:     else:
   ....:         print ( "%s did not have whitespace." % s )
   ....: 
Alpha did not have whitespace.
 Bravo had whitespace.
Charlie  had whitespace.
 Delta  had whitespace.

Note the use of the ^$ anchors to force the match over the entire input string.


Edit:

This doesn't even need regexp at all - you only need to check the first and last characters:

test_strings = ['a', ' b', 'c ', ' d ', 'e f', ' g h', ' i j', ' k l ']
for s in test_strings:
    if s[0] in " \n\r\t":
        print("'%s' started with whitespace." % s)
    elif s[-1] in " \n\r\t":
        print("'%s' ended with whitespace." % s)
    else:
        print("'%s' was whitespace-free." % s)

Edit 2:

A regex that should work anywhere: ^\S(.*\S)?. You may need to come up with a local equivalent to \S ("anything but whitespace") if your regex dialect doesn't include it.

test_strings = ['a', ' b', 'c ', ' d ', 'e f', ' g h', ' i j', ' k l ']
import re

pat = re.compile("^\S(.*\S)?$")

for s in test_strings:
    if pat.match(s):
        print("'%s' had no whitespace." % s)
    else:
        print("'%s' had whitespace." % s)

Note that \S is the negated form of \s, i.e. \S means "anything but whitespace".

Also note that strings of length 1 are accounted for by making part of the match optional. (You might think to use \S.*\S, but this forces a match length of at least 2.)

'a' had no whitespace.
' b' had whitespace.
'c ' had whitespace.
' d ' had whitespace.
'e f' had no whitespace.
' g h' had whitespace.
' i j' had whitespace.
' k l ' had whitespace.
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And if I want to use it HTML <input pattern="[a-zA-Z0-9]+"> or in java-script regexp.test(pattern) ? –  user1300585 Apr 27 '12 at 13:52
    
You asked for Python. ;) Just a sec while I concoct an appropriate monolithic regex for use in those scenarios... –  Li-aung Yip Apr 27 '12 at 13:53
    
Sorry, my bad. But still I want only regular expression :) –  user1300585 Apr 27 '12 at 13:57
    
See edited answer. I'm not sure if HTML <input pattern="..."> fields support the \S syntax for negated character classes, but you can come up with an equivalent of \S on your own. –  Li-aung Yip Apr 27 '12 at 14:10
    
Slight edit: \S(.+\S) matches exactly 1 or 3 or more characters... it won't work for two characters. I actually meant \S(.*\S). –  Li-aung Yip Apr 27 '12 at 14:14

No fancy regex needed, just use the way more readable:

>>> def is_whitespace(s):
    from string import whitespace
    return any((s[0] in whitespace, s[-1] in whitespace))

>>> map(is_whitespace, ("foo", "bar ", " baz", "\tspam\n"))
[False, True, True, True]
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