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I would like to get a list of all possible keyword arguments a string template might use in a substitution.

Is there a way to do this other than re?

I want to do something like this:

text="$one is a $lonely $number."
keys = get_keys(text) 
# keys = ('one', 'lonely', 'number')

I'm writing a simple Mad-lib-like program, and I want to perform template substitution with either string.format or Template strings. I'd like to write the 'story' and have my program produce a template file of all the 'keywords' (nouns, verbs, etc.) that a user would need to produce. I know I can do this with regular expressions, but I was wondering if there is an alternative solution? I'm open to alternatives to string.format and string template.

I thought there would be solution to this, but I haven't come across it in a quick search. I did find this question, reverse template with python, but it's not really what I'm looking for. It just reaffirms that this can be done with re.

EDIT:

I should note that $$ is an escape for '$', and is not a token I want. $$5 should render to "$5".

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7 Answers 7

up vote 7 down vote accepted

If it's okay to use string.format, consider using built-in class string.Formatter which has a parse() method:

>>> from string import Formatter
>>> [i[1] for i in Formatter().parse('Hello {1} {foo}')]
['1', 'foo']

See here for more details.

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Pretty much what I was looking for. Maybe my question needs work but I basically didn't want to reinvent the wheel. Thanks. –  Yann Oct 23 '12 at 19:20

Why do you want to avoid regular expressions? They work quite well for this:

>>> re.findall(r'\$[a-z]+', "$one is a $lonely $number.")
['$one', '$lonely', '$number']

For templating, check out re.sub, it can be called with callback to do almost the thing you want.

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I don't want to avoid regular expressions, I was just wondering if there was another way. –  Yann Oct 23 '12 at 19:13
    
Well, if you want an african animal with a long neck, it's certainly possible to stretch a crocodile, but in most cases it's easier to go with a giraffe. –  che Oct 23 '12 at 20:27

try str.strip() along with str.split():

In [54]: import string

In [55]: text="$one is a $lonely $number."

In [56]: [x.strip(string.punctuation) for x in text.split() if x.startswith("$")]
Out[56]: ['one', 'lonely', 'number']
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$ is part of string.punctuation, making lstrip('$') redundant –  volcano Oct 23 '12 at 19:17
    
@volcano just checked, you're right. –  Ashwini Chaudhary Oct 23 '12 at 19:21

You could render it once with an instrumented dictionary which records calls, or a defaultdict, and then check what it asked for.

from collections import defaultdict
d = defaultdict("bogus")
text%d
keys = d.keys()
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You could try:

def get_keys(s):
    tokens = filter(lambda x: x[0] == "$", s.split())
    return map(lambda x: x[1:], tokens)
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>>> import string
>>> get_keys = lambda s:[el.strip(string.punctuation) 
                         for el in s.split()if el.startswith('$')]
>>> get_keys("$one is a $lonely $number.")
['one', 'lonely', 'number']
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The string.Template class has the pattern that is uses as an attribute. You can print the pattern to get the matching groups

>>> print string.Template.pattern.pattern

    \$(?:
      (?P<escaped>\$) |   # Escape sequence of two delimiters
      (?P<named>[_a-z][_a-z0-9]*)      |   # delimiter and a Python identifier
      {(?P<braced>[_a-z][_a-z0-9]*)}   |   # delimiter and a braced identifier
      (?P<invalid>)              # Other ill-formed delimiter exprs
    )

And for your example,

>>> string.Template.pattern.findall("$one is a $lonely $number.")
[('', 'one', '', ''), ('', 'lonely', '', ''), ('', 'number', '', '')]
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