Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have firmware version strings into my table (like "4.2.2" or "4.2.16")

How can I compare, select or sort them ?

I cannot use standard strings comparison : "4.2.2" is a seen by SQL greater than "4.2.16"

As version strings, I would like 4.2.16 to be greater than 4.2.2

I would like to consider that firmware version can have chars in them : 4.24a1, 4.25b3 ... for this, usually, the subfield with chars has a fixed length.

how to proceed ?

share|improve this question
3  
That is why you should store strings as strings and numbers as numbers – zerkms Jan 3 '12 at 8:18
    
Do the version numbers always contain 3 groups of numbers? – Salman A Jan 3 '12 at 8:30
    
@Salman : No I may have to compare 4.2 and 4.2.1 – Eric Jan 3 '12 at 8:43
    
@Eric: Are you ever going to have more than 3 groups of numbers? – Mark Bannister Jan 3 '12 at 10:38
1  
@Mark Bannister: as you can see - I didn't advice to store it in a single field. PS: cool reputation value ;-) – zerkms Jan 3 '12 at 10:42

If all your version numbers look like any of these:

X
X.X
X.X.X
X.X.X.X

where X is an integer from 0 to 255 (inclusive), then you could use the INET_ATON() function to transform the strings into integers fit for comparison.

Before you apply the function, though, you'll need to make sure the function's argument is of the X.X.X.X form by appending the necessary quantity of '.0' to it. To do that, you will first need to find out how many .'s the string already contains, which can be done like this:

CHAR_LENGTH(ver) - CHAR_LENGTH(REPLACE(ver, '.', '')

That is, the number of periods in the string is the length of the string minus its length after removing the periods.

The obtained result should then be subtracted from 3 and, along with '.0', passed to the REPEAT() function:

REPEAT('.0', 3 - CHAR_LENGTH(ver) + CHAR_LENGTH(REPLACE(ver, '.', ''))

This will give us the substring that must be appended to the original ver value, to conform with the X.X.X.X format. So, it will, in its turn, be passed to the CONCAT() function along with ver. And the result of that CONCAT() can now be directly passed to INET_ATON(). So here's what we get eventually:

INET_ATON(
  CONCAT(
    ver,
    REPEAT(
      '.0',
      3 - CHAR_LENGTH(ver) + CHAR_LENGTH(REPLACE(ver, '.', ''))
    )
  )
)

And this is only for one value! :) A similar expression should be constructed for the other string, afterwards you can compare the results.

References:

share|improve this answer
    
Thank You so much. I had this problem where I had to compare version values from database. So I needed a way to sanitize version information in MySQL before passing to inet_aton. +1 to you – RedBaron Jan 11 '12 at 12:33

Assuming that the number of groups is 3 or less, you can treat the version number as two decimal numbers and sort it accordingly. Here is how:

SELECT 
ver,
CAST(
    SUBSTRING_INDEX(ver, '.', 2)
    AS DECIMAL(6,3)
) AS ver1, -- ver1 = the string before 2nd dot
CAST(
    CASE
        WHEN LOCATE('.', ver) = 0 THEN NULL
        WHEN LOCATE('.', ver, LOCATE('.', ver)+1) = 0 THEN SUBSTRING_INDEX(ver, '.', -1)
        ELSE SUBSTRING_INDEX(ver, '.', -2)
    END
    AS DECIMAL(6,3)
) AS ver2  -- ver2 = if there is no dot then 0.0
           --        else if there is no 2nd dot then the string after 1st dot
           --        else the string after 1st dot
FROM
(
SELECT '1' AS ver UNION
SELECT '1.1' UNION
SELECT '1.01' UNION
SELECT '1.01.03' UNION
SELECT '1.01.04' UNION
SELECT '1.01.1' UNION
SELECT '1.11' UNION
SELECT '1.2' UNION
SELECT '1.2.0' UNION
SELECT '1.2.1' UNION
SELECT '1.2.11' UNION
SELECT '1.2.2' UNION
SELECT '2.0' UNION
SELECT '2.0.1' UNION
SELECT '11.1.1' 
) AS sample
ORDER BY ver1, ver2

Output:

ver     ver1    ver2
======= ======  ======
1        1.000  (NULL)
1.01     1.010   1.000
1.01.03  1.010   1.030
1.01.04  1.010   1.040
1.01.1   1.010   1.100
1.1      1.100   1.000
1.11     1.110  11.000
1.2.0    1.200   2.000
1.2      1.200   2.000
1.2.1    1.200   2.100
1.2.11   1.200   2.110
1.2.2    1.200   2.200
2.0      2.000   0.000
2.0.1    2.000   0.100
11.1.1  11.100   1.100

Notes:

  1. You can extend this example for max 4 groups or more but the string functions will get more and more complicated.
  2. The datatype conversion DECIMAL(6,3) is used for illustration. If you expect more than 3 digits in minor version numbers then modify accordingly.
share|improve this answer
up vote 3 down vote accepted

Finally, I found another way to sort version strings.

I just justify the string before storing into de database in a way it is sortable. As I am using the python Django framework, I just have created a VersionField that 'encode' the version string while storing and 'decode' it while reading, so that it is totally transparent for the application :

Here my code :

The justify function :

def vjust(str,level=5,delim='.',bitsize=6,fillchar=' '):
    """
    1.12 becomes : 1.    12
    1.1  becomes : 1.     1
    """
    nb = str.count(delim)
    if nb < level:
        str += (level-nb) * delim
    return delim.join([ v.rjust(bitsize,fillchar) for v in str.split(delim)[:level+1] ])

The django VersionField :

class VersionField(models.CharField) :

    description = 'Field to store version strings ("a.b.c.d") in a way it is sortable'

    __metaclass__ = models.SubfieldBase

    def get_prep_value(self, value):
        return vjust(value,fillchar=' ')

    def to_python(self, value):
        return re.sub('\.+$','',value.replace(' ',''))
share|improve this answer

This is rather a complicated one, as SQL isn't designed to split out multiple values from a single field - this is a violation of First Normal Form. Assuming that you are not going to have more than three groups of numbers, each of which will not be more than three digits long, try:

cast(substring_index(concat(X,'.0.0.'), '.', 1) as float) * 1000000 +
cast(substring_index(substring_index(concat(X,'.0.0.'), '.', 2), '.', -1) as float) * 1000 +
cast(substring_index(substring_index(concat(X,'.0.0.'), '.', 3), '.', -1) as float)
share|improve this answer
    
This solution works. But cast as float cause a sql syntax error in mysql(?). So i make a little modify: select CONCAT(LPAD(substring_index(concat("1.2.3",'.0.0.'), '.', 1), 9, '0'), LPAD(substring_index(substring_index(concat("1.2.3",'.0.0.'), '.', 2), '.', -1), 9, '0'), LPAD(substring_index(substring_index(concat("1.2.3",'.0.0.'), '.', 3), '.', -1), 9, '0')); – tangxinfa Oct 29 '13 at 3:05
    
This solution works. – tangxinfa Oct 29 '13 at 3:07

Python can compare lists element-by-element in exactly the way you want the versions to be compared, so you can simply split on the ".", call int(x) on each element (with a list comprehension) to convert the string to an int, and then compare

    >>> v1_3 = [ int(x) for x in "1.3".split(".") ]
    >>> v1_2 = [ int(x) for x in "1.2".split(".") ]
    >>> v1_12 = [ int(x) for x in "1.12".split(".") ]
    >>> v1_3_0 = [ int(x) for x in "1.3.0".split(".") ]
    >>> v1_3_1 = [ int(x) for x in "1.3.1".split(".") ]
    >>> v1_3
    [1, 3]
    >>> v1_2
    [1, 2]
    >>> v1_12
    [1, 12]
    >>> v1_3_0
    [1, 3, 0]
    >>> v1_3_1
    [1, 3, 1]
    >>> v1_2 < v1_3
    True
    >>> v1_12 > v1_3
    True
    >>> v1_12 > v1_3_0
    True
    >>> v1_12 > v1_3_1
    True
    >>> v1_3_1 < v1_3
    False
    >>> v1_3_1 < v1_3_0
    False
    >>> v1_3_1 > v1_3_0
    True
    >>> v1_3_1 > v1_12
    False
    >>> v1_3_1 < v1_12
    True
    >>> 
share|improve this answer

I was searching for the same thing and instead ended up doing this -- but staying in mysql :

  • Installing this udf library into mysql because I wanted the power of PCRE.
  • using this statement

    case when version is null then null
    when '' then 0
    else
    preg_replace( '/[^.]*([^.]{10})[.]+/', '$1', 
        preg_replace('/([^".,\\/_ ()-]+)([".,\\/_ ()-]*)/','000000000$1.',
            preg_replace('/(?<=[0-9])([^".,\\/_ ()0-9-]+)/','.!$1',version
    ))) 
    end
    

I'll break down what that means:

  • preg_replace is a function that the UDF library created. Because it's a UDF you can just call it from any user or dbspace like that
  • ^".,\\/_ () right now i'm considering all of these characters as separators or traditional "dots" in a version
  • preg_replace('/(?<=[0-9])([^".,\\/_ ()0-9-]+)/','.!$1',version) means to replace all the non-"dots" and non-numbers that are preceded by a number to be preceded by a "dot" and an exclamation point.
  • preg_replace('/([^".,\\/_ ()-]+)([".,\\/_ ()-]*)/','000000000$1.', ...) means to additionally replace all the "dots" with actual dots and to pad all the numbers with 9 zero's. Also any adjacent dots would be reduced to 1.
  • preg_replace( '/0*([^.]{10})[.]+/', '$1', ... ) means to additionally strip all the number blocks down to only 10 digits long and to preserve as many blocks as needed. I wanted to force 6 blocks to keep it under 64-bytes but needing 7 blocks was surprisingly common and thus necessary for my accuracy. Also needed blocks of 10 so 7 blocks of 9 was not an option. But the variable length is working well for me. -- remember strings are compared left to right

So now I can handle versions like:

1.2 < 1.10
1.2b < 1.2.0
1.2a < 1.2b
1.2 = 1.2.0
1.020 = 1.20
11.1.1.3.0.100806.0408.000  < 11.1.1.3.0.100806.0408.001
5.03.2600.2180 (xpsp_sp2_rtm.040803-2158)
A.B.C.D = a.B.C.D
A.A  <  A.B

I chose exclamation point because it sorts in the collations sequences (that I'm using anyway) before 0. It's relative sort to 0 allows letters like b and a when used immediately adjacent to a number above to be treated like a new section and be sort before 0 -- which is the padding I am using.

I am using 0 as padding so that vendor's mistakes like moving from a fixed 3 digit block to a variable one don't bite me.

You can easily choose more padding if you want to handle silly versions like "2.11.0 Under development (unstable) (2010-03-09)" -- the string development is 11 bytes.

You can easily request more blocks in the final replace.

I could have done more but I was trying to do a as few paces as possible with a high-level of accuracy since I have several millions records to scan regularly. If anyone sees an optimization please repsond.

I chose to keep it as a string and not cast into a number because the cast has a cost and also letters are important as we saw. One thing i was thinking about is doing a test on the string and returning an option that isn't as many passes or less expensive function for tidier cases. like 11.1.1.3 is a very common format

share|improve this answer

You can use the natsort module. It has a function designed specifically for sorting versions.

>>> from natsort import versorted
>>> versorted(["4.2.16", "4.2.2"])
["4.2.2", "4.2.16"]
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.