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I just want to change a list (that I make using range(r)) to a list of strings, but if the length of the string is 1, tack a 0 on the front. I know how to turn the list into strings using

ranger= map(str,range(r))

but I want to be able to also change the length of those strings.

Input:

r = 12
ranger = range(r)
ranger = magic_function(ranger)

Output:

print ranger
>>> ['00','01','02','03','04','05','06','07','08','09','10','11']

And if possible, my final goal is this: I have a matrix of the form

numpy.array([[1,2,3],[4,5,6],[7,8,9]])

and I want to make a set of strings such that the first 2 characters are the row, the second two are the column and the third two are '01', and have matrix[row,col] of each one of these. so the above values would look like such:

000001    since matrix[0,0] = 1
000101    since matrix[0,1] = 2
000101    since matrix[0,1] = 2
000201
000201
000201
etc
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4 Answers 4

up vote 3 down vote accepted

Use string formatting and list comprehension:

>>> lis = range(11)
>>> ["{:02d}".format(x) for x in lis]
['00', '01', '02', '03', '04', '05', '06', '07', '08', '09', '10']

or format:

>>> [format(x,'02d') for x in lis]
['00', '01', '02', '03', '04', '05', '06', '07', '08', '09', '10']
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1  
Argh! Beat me to it! Well, +1 –  arshajii Jul 10 '13 at 18:08

zfill does exactly what you want and doesn't require you to understand an arcane mini-language as with the various types of string formatting. There's a place for that, but this is a simple job with a ready-made built-in tool.

ranger = [str(x).zfill(2) for x in range(r)]
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Here's my take on it:

>>> map('{:02}'.format, xrange(12))
['00', '01', '02', '03', '04', '05', '06', '07', '08', '09', '10', '11']

For your own enlightenment, try reading about the format string syntax.

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Use string formatting:

>>> sr = []
>>> for r in range(11):
...     sr.append('%02i' % r)
... 
>>> sr
['00', '01', '02', '03', '04', '05', '06', '07', '08', '09', '10']
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