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Python must have a more elegant solution to this ... maybe one of you can help:

I want to write a cmp-like function returning -1, 0 or 1 for version numbers, allowing for an arbitrary number of subsections.

Each subsection is supposed to be interpreted as a number, therefore 1.10 > 1.1.

Desired function outputs are

mycmp('1.0', '1') == 0
mycmp('1.0.0', '1') == 0
mycmp('1', '1.0.0.1') == -1
mycmp('12.10', '11.0.0.0.0') == 1
...

And here is my implementation, open for improvement:

def mycmp(version1, version2):
    parts1 = [int(x) for x in version1.split('.')]
    parts2 = [int(x) for x in version2.split('.')]

    # fill up the shorter version with zeros ...
    lendiff = len(parts1) - len(parts2)
    if lendiff > 0:
        parts2.extend([0] * lendiff)
    elif lendiff < 0:
        parts1.extend([0] * (-lendiff))

    for i, p in enumerate(parts1):
        ret = cmp(p, parts2[i])
        if ret: return ret
    return 0

I'm using Python 2.4.5 btw. (installed at my working place ...).

Here's a small 'test suite' you can use

assert mycmp('1', '2') == -1
assert mycmp('2', '1') == 1
assert mycmp('1', '1') == 0
assert mycmp('1.0', '1') == 0
assert mycmp('1', '1.000') == 0
assert mycmp('12.01', '12.1') == 0
assert mycmp('13.0.1', '13.00.02') == -1
assert mycmp('1.1.1.1', '1.1.1.1') == 0
assert mycmp('1.1.1.2', '1.1.1.1') == 1
assert mycmp('1.1.3', '1.1.3.000') == 0
assert mycmp('3.1.1.0', '3.1.2.10') == -1
assert mycmp('1.1', '1.10') == -1
share|improve this question
    
Not an answer but a suggestion -- it might be worth implementing Debian's algorithm for version number comparison (basically, alternating sorting of non-numeric and numeric parts). The algorithm is described here (beginning at "The strings are compared from left to right"). –  hobbs Nov 11 '09 at 10:51
    
Blargh. The subset of markdown supported in comments never fails to confuse me. The link works anyway, even if it looks stupid. –  hobbs Nov 11 '09 at 10:52
    
In case future readers need this for user-agent version parsing, I recommend a dedicated library as the historical variation it too wide. –  James Broadhead Apr 11 '12 at 16:26

12 Answers 12

up vote 16 down vote accepted

Remove the uninteresting part of the string (trailing zeroes and dots), and then compare the lists of numbers.

import re

def mycmp(version1, version2):
    def normalize(v):
        return [int(x) for x in re.sub(r'(\.0+)*$','', v).split(".")]
    return cmp(normalize(version1), normalize(version2))

EDIT: same approach as Pär Wieslander, but a bit more compact.

Some tests, thanks to this post:

assert mycmp("1", "1") == 0
assert mycmp("2.1", "2.2") < 0
assert mycmp("3.0.4.10", "3.0.4.2") > 0
assert mycmp("4.08", "4.08.01") < 0
assert mycmp("3.2.1.9.8144", "3.2") > 0
assert mycmp("3.2", "3.2.1.9.8144") < 0
assert mycmp("1.2", "2.1") < 0
assert mycmp("2.1", "1.2") > 0
assert mycmp("5.6.7", "5.6.7") == 0
assert mycmp("1.01.1", "1.1.1") == 0
assert mycmp("1.1.1", "1.01.1") == 0
assert mycmp("1", "1.0") == 0
assert mycmp("1.0", "1") == 0
assert mycmp("1.0", "1.0.1") < 0
assert mycmp("1.0.1", "1.0") > 0
assert mycmp("1.0.2.0", "1.0.2") == 0
share|improve this answer
    
I'm afraid it won't work, the rstrip(".0") will change ".10" to ".1" in "1.0.10". –  RedGlyph Nov 11 '09 at 10:02
    
Sorry, but with your function: mycmp('1.1', '1.10') == 0 –  Johannes Charra Nov 11 '09 at 10:02
    
Heh. Thats what I get for trusting tests :) Fix imminent... –  gnud Nov 11 '09 at 10:05
    
Lol ... yeah, thx and +1 for finding the missing test. –  Johannes Charra Nov 11 '09 at 10:07
    
With the regex use, the problem mentioned above is fixed. –  gnud Nov 11 '09 at 10:36

No need to iterate over the version tuples. The built in comparison operator on lists and tuples already works exactly like you want it. You'll just need to zero extend the version lists to the corresponding length. With python 2.6 you can use izip_longest to pad the sequences.

from itertools import izip_longest
def version_cmp(v1, v2):
    parts1, parts2 = [map(int, v.split('.')) for v in [v1, v2]]
    parts1, parts2 = zip(*izip_longest(parts1, parts2, fillvalue=0))
    return cmp(parts1, parts2)

With lower versions, some map hackery is required.

def version_cmp(v1, v2):
    parts1, parts2 = [map(int, v.split('.')) for v in [v1, v2]]
    parts1, parts2 = zip(*map(lambda p1,p2: (p1 or 0, p2 or 0), parts1, parts2))
    return cmp(parts1, parts2)
share|improve this answer
    
Cool, but hard to understand for someone who can't read code like prose. :) Well, I assume you can only shorten the solution at the cost of readability ... –  Johannes Charra Nov 11 '09 at 9:59

This is a little more compact than your suggestion. Rather than filling the shorter version with zeros, I'm removing trailing zeros from the version lists after splitting.

def normalize_version(v):
    parts = [int(x) for x in v.split(".")]
    while parts[-1] == 0:
        parts.pop()
    return parts

def mycmp(v1, v2):
    return cmp(normalize_version(v1), normalize_version(v2))
share|improve this answer
    
Nice one, thx. But I'm still hoping for a one or two-liner ... ;) –  Johannes Charra Nov 11 '09 at 9:49
3  
+1 @jellybean: two-liners are not always the best for maintenance and readability, this one is very clear and compact code at the same time, besides, you can re-use mycmp for other purposes in your code should you need it. –  RedGlyph Nov 11 '09 at 10:05
    
@RedGlyph: You've got a point there. Should have said "a readable two-liner". :) –  Johannes Charra Nov 11 '09 at 10:08

Remove trailing .0 and .00 with regex, split and use cmp function which compares arrays correctly.

def mycmp(v1,v2):
 c1=map(int,re.sub('(\.0+)+\Z','',v1).split('.'))
 c2=map(int,re.sub('(\.0+)+\Z','',v2).split('.'))
 return cmp(c1,c2)

and of course you can convert it to a one-liner if you don't mind the long lines

share|improve this answer
    
Nice, and readable despite regex ... I like your solution. –  Johannes Charra Nov 11 '09 at 10:30
def compare_version(v1, v2):
    return cmp(*tuple(zip(*map(lambda x, y: (x or 0, y or 0), 
           [int(x) for x in v1.split('.')], [int(y) for y in v2.split('.')]))))

It's a one liner (split for legability). Not sure about readable...

share|improve this answer
    
Yes! And shrunk even further (tuple is not needed btw): cmp(*zip(*map(lambda x,y:(x or 0,y or 0), map(int,v1.split('.')), map(int,v2.split('.')) ))) –  Paul Nov 11 '09 at 10:49

Is reuse considered elegance in this instance? :)

# pkg_resources is in setuptools
# See http://peak.telecommunity.com/DevCenter/PkgResources#parsing-utilities
def mycmp(a, b):
    from pkg_resources import parse_version as V
    return cmp(V(a),V(b))
share|improve this answer
3  
Hmm, it's not so elegant when you refer to something outside the standard library without explaining where to get it. I submitted an edit to include the URL. Personally I prefer to use distutils - it doesn't seem worth the effort to pull in 3rd party software for so simple a task. –  Adam Spiers Feb 14 '12 at 22:14

The most difficult to read solution, but a one-liner nevertheless! and using iterators to be fast.

next((c for c in imap(lambda x,y:cmp(int(x or 0),int(y or 0)),
            v1.split('.'),v2.split('.')) if c), 0)

that is for Python2.6 and 3.+ btw, Python 2.5 and older need to catch the StopIteration.

share|improve this answer

My preferred solution:

Padding the string with extra zeroes and just using the four first is easy to understand, doesn't require any regex and the lambda is more or less readable. I use two lines for readability, for me elegance is short and simple.

def mycmp(version1,version2):
  tup = lambda x: [int(y) for y in (x+'.0.0.0.0').split('.')][:4]
  return cmp(tup(version1),tup(version2))
share|improve this answer

How about using Python's distutils.version.StrictVersion?

>>> from distutils.version import StrictVersion
>>> StrictVersion('10.4.10') > StrictVersion('10.4.9')
True

So for your cmp function:

>>> cmp = lambda x, y: StrictVersion(x).__cmp__(y)
>>> cmp("10.4.10", "10.4.11")
-1

If you want to compare version numbers that are more complex distutils.version.LooseVersion will be more useful, however be sure to only compare the same types.

>>> from distutils.version import LooseVersion, StrictVersion
>>> LooseVersion('1.4c3') > LooseVersion('1.3')
True
>>> LooseVersion('1.4c3') > StrictVersion('1.3')  # different types
False

LooseVersion isn't the most intelligent tool, and can easily be tricked:

>>> LooseVersion('1.4') > LooseVersion('1.4-rc1')
False

To have success with this breed, you'll need to step outside the standard library and use distribute's parsing utility parse_version.

>>> from pkg_resources import parse_version
>>> parse_version('1.4') > parse_version('1.4-rc2')
True

So depending on your specific use-case, you'll need to decide whether the builtin distutils tools are enough, or if it's warranted to add as a dependency distribute.

share|improve this answer
2  
seems to make the most sense to just use what is already there :) –  Patrick Jan 25 '12 at 20:05
    
Nice! Did you figure this out by reading the source? I can't find docs for distutils.version anywhere :-/ –  Adam Spiers Feb 14 '12 at 22:17
1  
I don't think there are any docs. Yes I was reading through the source a while back when I was considering writing my own packaging solution, but then I found distutils2. –  bradley.ayers Feb 14 '12 at 23:57
3  
Any time you can't find documentation, try importing the package and use help(). –  rspeed Mar 11 '12 at 0:01
2  
Be aware though, that StrictVersion ONLY works with up to a three number version. It fails for things like 0.4.3.6! –  abergmeier Aug 22 '13 at 8:18

This is my solution (written in C, sorry). I hope you'll find it useful

int compare_versions(const char *s1, const char *s2) {
    while(*s1 && *s2) {
        if(isdigit(*s1) && isdigit(*s2)) {
            /* compare as two decimal integers */
            int s1_i = strtol(s1, &s1, 10);
            int s2_i = strtol(s2, &s2, 10);

            if(s1_i != s2_i) return s1_i - s2_i;
        } else {
            /* compare as two strings */
            while(*s1 && !isdigit(*s1) && *s2 == *s1) {
                s1++;
                s2++;
            }

            int s1_i = isdigit(*s1) ? 0 : *s1;
            int s2_i = isdigit(*s2) ? 0 : *s2;

            if(s1_i != s2_i) return s1_i - s2_i;
        }
    }

    return 0;
}
share|improve this answer
    
+1 for being pythonic –  Tom Jan 25 '13 at 21:49

Lists are comparable in python, so if one converts the strings representing the numbers in to integers, the basic python comparison can be used with success.

I however needed to extend a bit this approach, first cause I use python3x where cmp function does not exist any-more I had to emulate cmp(a,b) with (a > b) - (a < b).

Second, sadly, version numbers are not that clean at all, can contain all kind of other alphanumeric chars. There are cases when the function can't tell the order so return's False (see the first example).

So posting this even if the question is old and answered already, but may save a few minutes from ones life.

import re

def _preprocess(v, separator, ignorecase):
    if ignorecase: v = v.lower()
    return [int(x) if x.isdigit() else [int(y) if y.isdigit() else y for y in re.findall("\d+|[a-zA-Z]+", x)] for x in v.split(separator)]

def compare(a, b, separator = '.', ignorecase = True):
    a = _preprocess(a, separator, ignorecase)
    b = _preprocess(b, separator, ignorecase)
    try:
        return (a > b) - (a < b)
    except:
        return False

print(compare('1.0', 'beta13'))    
print(compare('1.1.2', '1.1.2'))
print(compare('1.2.2', '1.1.2'))
print(compare('1.1.beta1', '1.1.beta2'))
share|improve this answer

In case you don't want to pull in an external dependency here is an attempt of mine (written for python 3.x). "rc", "rel" (and possibly one could add "c") are regarded as "release candidate" and devide the version number into two parts and if missing the value of the second part is high (999). Else letters produce a split and are dealt as sub-numbers via base 36 code.


    import re
    from itertools import chain
    def compare_version(version1,version2):
        '''compares two version numbers
        >>> compare_version('1', '2') >> compare_version('2', '1') > 0
        True
        >>> compare_version('1', '1') == 0
        True
        >>> compare_version('1.0', '1') == 0
        True
        >>> compare_version('1', '1.000') == 0
        True
        >>> compare_version('12.01', '12.1') == 0
        True
        >>> compare_version('13.0.1', '13.00.02') >> compare_version('1.1.1.1', '1.1.1.1') == 0
        True
        >>> compare_version('1.1.1.2', '1.1.1.1') >0
        True
        >>> compare_version('1.1.3', '1.1.3.000') == 0
        True
        >>> compare_version('3.1.1.0', '3.1.2.10') >> compare_version('1.1', '1.10') >> compare_version('1.1.2','1.1.2') == 0
        True
        >>> compare_version('1.1.2','1.1.1') > 0
        True
        >>> compare_version('1.2','1.1.1') > 0
        True
        >>> compare_version('1.1.1-rc2','1.1.1-rc1') > 0
        True
        >>> compare_version('1.1.1a-rc2','1.1.1a-rc1') > 0
        True
        >>> compare_version('1.1.10-rc1','1.1.1a-rc2') > 0
        True
        >>> compare_version('1.1.1a-rc2','1.1.2-rc1') >> compare_version('1.11','1.10.9') > 0
        True
        >>> compare_version('1.4','1.4-rc1') > 0
        True
        >>> compare_version('1.4c3','1.3') > 0
        True
        >>> compare_version('2.8.7rel.2','2.8.7rel.1') > 0
        True
        >>> compare_version('2.8.7.1rel.2','2.8.7rel.1') > 0
        True

        '''
        chn = lambda x:chain.from_iterable(x)
        def split_chrs(strings,chars):
            for ch in chars:
                strings = chn( [e.split(ch) for e in strings] )
            return strings
        split_digit_char=lambda x:[s for s in re.split(r'([a-zA-Z]+)',x) if len(s)>0]
        splt = lambda x:[split_digit_char(y) for y in split_chrs([x],'.-_')]
        def pad(c1,c2,f='0'):
            while len(c1) > len(c2): c2+=[f]
            while len(c2) > len(c1): c1+=[f]
        def base_code(ints,base):
            res=0
            for i in ints:
                res=base*res+i
            return res
        ABS = lambda lst: [abs(x) for x in lst]
        def cmp(v1,v2):
            c1 = splt(v1)
            c2 = splt(v2)
            pad(c1,c2,['0'])
            for i in range(len(c1)): pad(c1[i],c2[i])
            cc1 = [int(c,36) for c in chn(c1)]
            cc2 = [int(c,36) for c in chn(c2)]
            maxint = max(ABS(cc1+cc2))+1
            return base_code(cc1,maxint) - base_code(cc2,maxint)
        v_main_1, v_sub_1 = version1,'999'
        v_main_2, v_sub_2 = version2,'999'
        try:
            v_main_1, v_sub_1 = tuple(re.split('rel|rc',version1))
        except:
            pass
        try:
            v_main_2, v_sub_2 = tuple(re.split('rel|rc',version2))
        except:
            pass
        cmp_res=[cmp(v_main_1,v_main_2),cmp(v_sub_1,v_sub_2)]
        res = base_code(cmp_res,max(ABS(cmp_res))+1)
        return res


    import random
    from functools import cmp_to_key
    random.shuffle(versions)
    versions.sort(key=cmp_to_key(compare_version))
share|improve this answer

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