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I have a requirement to add 2 string which are in mac format as hex which has 9 octets. As part of that I have achieved almost, but one final thing pending is to get the value in 2 digit format.

string1= "aa.aa.aa.aa.aa.aa.aa.aa.ff"
string2= "00.00.00.00.00.00.00.00.01" 

when I add these 2 the out put I get is aa.aa.aa.aa.aa.aa.aa.ab.0 but I want value to be aa.aa.aa.aa.aa.aa.aa.ab.00 . (2 zeros).

I tried using

temp = '%02d' % string3 

but I got error

TypeError: %d format: a number is required, not str

as I am trying to do that with string.

4
  • Where b comes from?' Aug 2, 2015 at 8:17
  • Have you tried converting that string part to int? Aug 2, 2015 at 8:21
  • How are you adding the two strings?
    – user4322779
    Aug 2, 2015 at 10:33
  • Avinash I am adding two string in Hex format so ff+1 will be 1 00 with 1 carry backwards so here aa.ff becomes ab.00
    – Ravi Kiran
    Aug 2, 2015 at 14:25

2 Answers 2

1

You can split the string, pad each part with leading zeros and join it again:

s = "aa.aa.aa.aa.aa.aa.aa.ab.0"
print '.'.join(["{0:0>2}".format(w) for w in s.split('.')])

Output:

aa.aa.aa.aa.aa.aa.aa.ab.00

(The padding is based on this answer.)


Even shorter version based on map:

print '.'.join(map("{0:0>2}".format, s.split('.')))
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  • Thank you so much Falko. It worked. Which one is better among both methods? Padding or map based?
    – Ravi Kiran
    Aug 2, 2015 at 8:31
  • The format function does the padding. So the difference is using a list comprehension or the map function. In my point of view it doesn't really matter which one to use here. With map you save a temporary variable, which might improve readability.
    – Falko
    Aug 2, 2015 at 8:33
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Instead of fixing the resulting string3, you can improve the way you create it. If you convert the summands to integers, add them and convert the result back to a hex representation, you don't have to worry about missing zeros:

a = "aa.aa.aa.aa.aa.aa.aa.aa.ff"
b = "00.00.00.00.00.00.00.00.01"
c = hex(int(a.replace('.', ''), 16) + int(b.replace('.', ''), 16))[2:-1]
print '.'.join(i+j for i,j in zip(c[::2], c[1::2]))

Output:

aa.aa.aa.aa.aa.aa.aa.ab.00

References:

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  • This is awesome. I have around 15 lines of code to do this. but you made in just 3 lines...Genius. Thanks again.
    – Ravi Kiran
    Aug 2, 2015 at 8:36

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