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I am trying to convert 10000000C9ABCDEF to 10:00:00:00:c9:ab:cd:ef

This is needed because 10000000C9ABCDEF format is how I see HBAs or host bust adapaters when I login to my storage arrays. But the SAN Switches understand 10:00:00:00:c9:ab:cd:ef notation.

I have only been able to accomplish till the following:

#script to convert WWNs to lowercase and add the :.
def wwn_convert():
    while True:
        wwn = (input('Enter the WWN or q to quit- '))
        list_wwn = list(wwn)
        list_wwn = [x.lower() for x in list_wwn]
        lower_wwn = ''.join(list_wwn)
        print(lower_wwn)
    if wwn == 'q':
        break

wwn_convert()

I tried ':'.join, but that inserts : after each character, so I get 1:0:0:0:0:0:0:0:c:9:a:b:c:d:e:f

I want the .join to go through a loop where I can say something like for i in range (0, 15, 2) so that it inserts the : after two characters, but not quite sure how to go about it. (Good that Python offers me to loop in steps of 2 or any number that I want.)

Additionally, I will be thankful if someone could direct me to pointers where I could script this better...

Please help.

I am using Python Version 3.2.2 on Windows 7 (64 Bit)

share|improve this question

Here is another option:

>>> s = '10000000c9abcdef'
>>> ':'.join(a + b for a, b in zip(*[iter(s)]*2))
'10:00:00:00:c9:ab:cd:ef'

Or even more concise:

>>> import re
>>> ':'.join(re.findall('..', s))
'10:00:00:00:c9:ab:cd:ef'
share|improve this answer
    
The regex solution is pretty slick!! – jathanism Dec 1 '11 at 20:01
    
Hi, Yeah the regex solution is really pretty slick...thank you sir :) – scriptq Dec 2 '11 at 3:24
>>> s = '10000000C9ABCDEF'
>>> ':'.join([s[x:x+2] for x in range(0, len(s)-1, 2)])
'10:00:00:00:C9:AB:CD:EF'

Explanation:

':'.join(...) returns a new string inserting ':' between the parts of the iterable

s[x:x+2] returns a substring of length 2 starting at x from s

range(0, len(s) - 1, 2) returns a list of integers with a step of 2

so the list comprehension would split the string s in substrings of length 2, then the join would put them back together but inserting ':' between them.

share|improve this answer
1  
Could you please include an explanation of the code? – N.N. Dec 1 '11 at 20:04
    
Hi F.C., Thank you very much !! You guys are very helpful. – scriptq Dec 2 '11 at 3:21
>>> s='10000000C9ABCDEF'
>>> si=iter(s)
>>> ':'.join(c.lower()+next(si).lower() for c in si)
>>> '10:00:00:00:c9:ab:cd:ef'

In lambda form:

>>> (lambda x: ':'.join(c.lower()+next(x).lower() for c in x))(iter(s))
'10:00:00:00:c9:ab:cd:ef'
share|improve this answer
    
wow, so many options !! Thank you Austin :) – scriptq Dec 2 '11 at 3:24

I think what would help you out the most is a construction in python called a slice. I believe that you can use them on any iterable object, including strings, making them quite useful and something that is generally a very good idea to know how to use.

>>> s = '10000000C9ABCDEF'
>>> [s.lower()[i:i+2] for i in range(0, len(s)-1, 2)]
['10', '00', '00', '00', 'c9', 'ab', 'cd', 'ef']
>>> ':'.join([s.lower()[i:i+2] for i in range(0, len(s)-1, 2)])
'10:00:00:00:c9:ab:cd:ef'

If you'd like to read some more about slices, they're explained very nicely in this question, as well as a part of the actual python documentation.

share|improve this answer
    
This is great....You guys are awesome....I think pretty soon I am going to be wondering which solution will be best because there are more than one way to resolve things in Python. Thats awesome....may be time will tell me which is a better method to use for a given problem.... – scriptq Dec 2 '11 at 3:25
    
It's funny that you mention that... One of Python's guiding principles is that "There should be one-- and preferably only one --obvious way to do it." It's part of what's called the Zen of Python, you can read it if you use import this in the Python Interpreter. Alternatively you can read it here. – Dan Bolan Dec 2 '11 at 18:49

It may be done using grouper recipe from here.

from itertools import izip_longest

def grouper(n, iterable, fillvalue=None):
    "grouper(3, 'ABCDEFG', 'x') --> ABC DEF Gxx"
    args = [iter(iterable)] * n
    return izip_longest(fillvalue=fillvalue, *args)

Using this function, the code will look like:

def join(it):
    for el in it:
        yield ''.join(el)

':'.join(join(grouper(2, s)))

It works this way:

grouper(2,s) returns tuples '1234...' -> ('1','2'), ('3','4') ...

def join(it) does this: ('1','2'), ('3','4') ... -> '12', '34' ...

':'.join(...) creates a string from iterator: '12', '34' ... -> '12:34...'

Also, it may be rewritten as:

':'.join(''.join(el) for el in grouper(2, s))
share|improve this answer
    
+1 for using itertools grouper recipe!! :) – jathanism Dec 1 '11 at 20:00
    
-1 The solution is ludicrously convoluted. – John Machin Dec 1 '11 at 20:53
    
@JohnMachin I don't agree. Furthermore, I would add that it's quite simple and straightforward. It uses a standard function grouper from the module itertools, and what is still left to do is to join the output tuples by ''.join, and join those joined tuples by ':'.join. There is not slices prone to off-by-one errors, etc. Simple and straightforward! (Still, the matter of taste I think). – ovgolovin Dec 1 '11 at 21:00
    
For those who are utterly confused with the code like John, try to understand how this recursive geneartor works. If you understand, everything connected with generators will be a bit easier. – ovgolovin Dec 1 '11 at 21:09
    
If you didn't want to wrap this around the grouper() function, you could still 1-liner it (where s is the input string): ':'.join(''.join(t).lower() for t in itertools.izip_longest(*[iter(s)]* 2)). – jathanism Dec 1 '11 at 21:30

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