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For example, I have a list of ASCII characters and want to zip them with a list of zeroes equal to the number of characters in the ASCII list,

like:

    import string

    a = string.printable
    #Gives all ASCII characters as a list ^
    b = zeroes * len(a)
    c = zip(a,b)

Something like that?

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3  
So, you need a list of tuples, or a dict? –  bereal Nov 22 '12 at 8:51

5 Answers 5

You can use a dict comprehension:

{ x:0 for x in string.printable}
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1  
That's Python 3.x exclusive, it will raise Syntax Error in 2.6 at least (not sure about 2.7) –  GSP Nov 22 '12 at 9:42
1  
You are correct that it doesn't work in Python 2.6 but it works fine in Python 2.7. "New in Python 2.7 are dictionary comprehensions" –  Mark Byers Nov 22 '12 at 9:52
    
Thank you, this is an elegant solution. My next question would be then, if I needed an if statement that tallied the existence of ASCII characters in a list, could I add 1 to each term in the ASCIIDict I created for every matching character I find? –  Austin Nov 22 '12 at 22:39
    
@Austin: Have you considered Tim's answer? stackoverflow.com/a/13508872/61974 –  Mark Byers Nov 23 '12 at 7:46
    
I was using dict(zip(items, [0 for _ in items])) in my situation. I knew there had to be a better way to do it. –  Jack Nov 12 '14 at 23:31

There is a standard method for that:

mydict = dict.fromkeys(string.printable, 0)

or, if you need a list of tuples (to be quite honest, Martijn's version of that is more pythonic, but just for variety):

import itertools
tuples = zip(string.printable, itertools.repeat(0))
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Just use a list comprehension:

c = [(i, 0) for i in a]
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This is a list of tuples, not a dictionary. If I know my python right, then you'll have to cast it to a dict: dict([(i, 0) for i in a]) –  Jack Nov 12 '14 at 23:34
1  
@Jack: the question was ambiguous as to what they wanted. For dictionary output just use dict.fromkeys() (much faster). –  Martijn Pieters Nov 13 '14 at 7:58

It may not help you, but if you are going to be using the dictionary to count you can use a defaultdict.

from collections import defaultdict
my_dict = defaultdict(int)

Any key is then set to 0 by default.

>>> print my_dict['a']
    0
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Maybe something like this, if you need a list:

import string
c = zip(string.printable, [0]*len(string.printable))
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