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I use to run

$s =~ s/[^[:print:]]//g;

on Perl to get rid of non printable characters.

In Python there's no POSIX regex classes, and I can't write [:print:] having it mean what I want. I know of no way in Python to detect if a character is printable or not.

What would you do?

EDIT: It has to support Unicode characters as well. The string.printable way will happily strip them out of the output. curses.ascii.isprint will return false for any unicode character.

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5 Answers 5

up vote 36 down vote accepted

Iterating over strings is unfortunately rather slow in Python. Regular expressions are over an order of magnitude faster for this kind of thing. You just have to build the character class yourself. The unicodedata module is quite helpful for this, especially the unicodedata.category() function. See Unicode Character Database for descriptions of the categories.

import unicodedata, re

all_chars = (unichr(i) for i in xrange(0x110000))
control_chars = ''.join(c for c in all_chars if unicodedata.category(c) == 'Cc')
# or equivalently and much more efficiently
control_chars = ''.join(map(unichr, range(0,32) + range(127,160)))

control_char_re = re.compile('[%s]' % re.escape(control_chars))

def remove_control_chars(s):
    return control_char_re.sub('', s)
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2  
Is 'Cc' enough here? I don't know, I'm just asking -- it seems to me that some of the other 'C' categories may be candidates for this filter as well. –  Patrick Johnmeyer Sep 18 '08 at 17:10
    
This code doesn't work in 2.6 or 3.2, which version does it run in? –  Seth Aug 9 '11 at 3:41
    
@Seth: works for me, Ubuntu 10.04, Python 2.6.5. –  tripleee Aug 14 '12 at 8:12
    
This function, as published, removes half of the Hebrew characters. I get the same effect for both of the methods given. –  dotancohen Dec 11 '12 at 15:32
    
From performance perspective, wouldn't string.translate() work faster in this case? See stackoverflow.com/questions/265960/… –  thekashyap Oct 3 '13 at 20:19
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As far as I know, the most pythonic/efficient method would be:

import string

filtered_string = filter(lambda x: x in string.printable, myStr)
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1  
You probably want filtered_string = ''.join(filter(lambda x:x in string.printable, myStr) so that you get back a string. –  Nathan Sanders Sep 18 '08 at 13:27
1  
Sadly string.printable does not contain unicode characters, and thus ü or ó will not be in the output... maybe there is something else? –  Vinko Vrsalovic Sep 18 '08 at 13:29
7  
You should be using a list comprehension or generator expressions, not filter + lambda. One of these will 99.9% of the time be faster. ''.join(s for s in myStr if s in string.printable) –  habnabit Sep 18 '08 at 22:49
1  
The lot of you are correct, of course. I should stop trying to help people while sleep-deprived! –  William Keller Sep 19 '08 at 3:20
3  
@AaronGallagher: 99.9% faster? From whence do you pluck that figure? The performance comparison is nowhere near that bad. –  Chris Morgan Jan 14 '12 at 4:01
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You could try setting up a filter using the unicodedata.category() function:

printable = Set('Lu', 'Ll', ...)
def filter_non_printable(str):
  return ''.join(c for c in str if unicodata.category(c) in printable)

See the Unicode database for the available categories

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you started a list comprehension which did not end in your final line. I suggest you remove the opening bracket completely. –  tzot Sep 19 '08 at 12:13
    
Thank you for pointing this out. I edited the post accordingly –  Ber Oct 5 '08 at 15:32
    
This seems the most direct, straightforward method. Thanks. –  dotancohen Jul 21 '13 at 5:34
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This function uses list comprehensions and str.join, so it runs in linear time instead of O(n^2):

from curses.ascii import isprint

def printable(input):
    return ''.join(char for char in input if isprint(char))
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1  
isprint is also not unicode aware :/ –  Vinko Vrsalovic Sep 18 '08 at 13:36
    
filter(isprint,input) –  yingted Jun 16 '13 at 16:50
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The best I've come up with now is (thanks to the python-izers above)

def filter_non_printable(str):
  return ''.join([c for c in str if ord(c) > 31 or ord(c) == 9])

This is the only way I've found out that works with Unicode characters/strings

Any better options?

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Unless you're on python 2.3, the inner []s are redundant. "return ''.join(c for c ...)" –  habnabit Sep 19 '08 at 4:08
    
Not quite redundant—they have different meanings (and performance characteristics), though the end result is the same. –  Miles Jun 3 '09 at 23:31
    
Should the other end of the range not be protected too?: "ord(c) <= 126" –  Gearoid Murphy Mar 16 '11 at 17:48
    
Gearoid: no, the OP explicitly asked for Unicode. –  Sam Kington Nov 9 '11 at 15:50
    
But there are Unicode characters which are not printable, too. –  tripleee Aug 14 '12 at 8:02
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