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I have the following Python code (I'm using Python 2.7.X):

my_csv = '{first},{middle},{last}'
print( my_csv.format( first='John', last='Doe' ) )

I get a KeyError exception because 'middle' is not specified (this is expected). However, I want all of those placeholders to be optional. If those named parameters are not specified, I expect the placeholders to be removed. So the string printed above should be:

John,,Doe

Is there built in functionality to make those placeholders optional, or is some more in depth work required? If the latter, if someone could show me the most simple solution I'd appreciate it!

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2 Answers 2

up vote 6 down vote accepted

Here is one option:

from collections import defaultdict

my_csv = '{d[first]},{d[middle]},{d[last]}'
print( my_csv.format( d=defaultdict(str, first='John', last='Doe') ) )
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I see you are using str. What is this? Edit: I see now that this is the factory method, not a variable name. So the factory will create blank strings. –  void.pointer Jun 13 '12 at 21:19

Here's another option that uses the string interpolation operator %:

class DataDict(dict):
    def __missing__(self, key):
        return ''

my_csv = '%(first)s,%(middle)s,%(last)s'
print my_csv % DataDict(first='John', last='Doe')  # John,,Doe


Alternatively, if you prefer the more modern str.format() method, this would also work, but is a little less automatic since you have explicitly define all the possible placeholders:

class DataDict(dict):
    defaults = dict(first='', middle='', last='')
    def __init__(self, *args, **kwargs):
        self.update(self.defaults)
        dict.__init__(self, *args, **kwargs)

my_csv = '{first},{middle},{last}'
print my_csv.format(**DataDict(first='John', last='Doe'))  # John,,Doe
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