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I am looking for a more elegant solution to formatting a MAC address with colons. I am using Python 3.2. A fancy list comprehension perhaps?

s=""
h="00233a990c21"
for i in range(0,12,2):
    s += h[i:i+2] + ":"
s=s[:-1]
print("s=",s)
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@EricFortis, that example is different, where the MAC address is in a binary string. This question has ascii string as the starting point –  TJD Jun 13 '12 at 0:38
    
@Eric: slightly different, I saw this question & answer but it did not answer this specific question –  jftuga Jun 13 '12 at 0:39

5 Answers 5

up vote 7 down vote accepted

Your code is easily converted to a comprehension form:

':'.join(h[i:i+2] for i in range(0,12,2))
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2  
+1 I like it better than my solution :) –  Levon Jun 13 '12 at 0:42

Not sure how pretty this is, but it will do what you ask:

':'.join([h[i:i+2] for i,j in enumerate(h) if not (i%2)])

gives:

'00:23:3a:99:0c:21'
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1  
Why do you use enumerate? –  Andre Boos Jun 13 '12 at 0:43
    
It's what I though of using. It does do what the OP asks, so is a valid answer. –  Levon Jun 13 '12 at 0:44

Well, I might start with something pretty specific, since you know that it is an MAC address you know the exact size and format.

print "%s:%s:%s:%s:%s:%s" % (h[0:2], h[2:4], h[4:6], h[6:8], h[8:10], h[10:12])

But we can make this better if we create a class and then tell it how to format it's string.

class Mac():
    def __init__(self, mac):
        self.mac = mac
    def __str__(self):
        return "%s:%s:%s:%s:%s:%s" % (
            self.mac[0:2],
            self.mac[2:4],
            self.mac[4:6],
            self.mac[6:8],
            self.mac[8:10],
            self.mac[10:12])

m = Mac("123456789012")
print m
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2  
This is a bit verbose, and also, new style string formatting (str.format() over %) is preferred for new code. –  Lattyware Jun 13 '12 at 0:46

The easiest solution here is just to use str.join()

>>> ":".join(str_grouper(2, "00233a990c21"))
'00:23:3a:99:0c:21'

Here using a modified version of the grouper() recipe from the itertools docs:

def str_grouper(n, iterable):
     args = [iter(iterable)] * n
     for part in zip(*args): #itertools.izip in 2.x for efficiency.
         yield "".join(part)
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>>> import itertools
>>> h = '00233a990c21'
>>> ':'.join(a+b for a, b in (itertools.izip(
...                              itertools.compress(h, itertools.cycle((1,0))),
...                              itertools.compress(h, itertools.cycle((0,1))))))
>>> '00:23:3a:99:0c:21'

Does that win for the highest density of parentheses?

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1  
Yes you have won! –  jamylak Jun 13 '12 at 3:45

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