11

I have to take a string containing placeholders for later substitution, like:

"A %s B %s"

And turn that into:

"A {0} B {1}"

I came up with:

def _fix_substitution_parms(raw_message):
  rv = raw_message
  counter = 0
  while '%s' in rv:
    rv = rv.replace('%s', '{' + str(counter) + '}', 1)
    counter = counter + 1
return rv

That works, but it feels super clunky, and not at all "idiomatic" python.

How would a well, idiomatic python solution look like?

Updates for clarification:

  • the resulting strings aren't used within python. I do need the counter numbers in there! (so {} isn't good enough)!
  • I only need to care about %s strings, as the messages are guaranteed to only use %s (no %i %f whatsoever)
  • "re.sub" can take a function as replacement to dynamically replace with numbered braces. By the way: Replacing with {} without numbers would work as well. – Michael Butscher Oct 14 '19 at 12:08
  • 3
    When you have a working solution and you would like to improve it, please consider codereview.stackexchange.com – kojiro Oct 14 '19 at 12:28
  • @kojiro It isn't working for me, due to "too clunky" ;-) – GhostCat Oct 14 '19 at 12:33
5

I would do what Reznik originally suggested and then call .format on that:

def _fix_substitution_parms(raw_message: str) -> str:
    num_to_replace = raw_message.count("%s")
    python_format_string_message = raw_message.replace("%s", "{{{}}}")
    final_message = python_format_string_message.format(*range(num_to_replace))
    return final_message
| improve this answer | |
  • this will work only if you have 2 %s in the text? – Charif DZ Oct 14 '19 at 12:20
  • @CharifDZ and Aran-Fey - see the edit. You just count them before hand... – Dan Oct 14 '19 at 12:21
  • Looks like a good compromise ... readable, but not too fancy. – GhostCat Oct 14 '19 at 12:37
8

Use re.sub with a lambda function for reapplying the substitution once for each element, and itertools.count for getting numbers sequentially:

import itertools
import re

s = "A %s B %s"

counter = itertools.count()
result = re.sub('%s', lambda x: f'{{{next(counter)}}}', s)
print(result)  # 'A {0} B {1}'

Remember to wrap this in a function to perform this operation more than once, since you'll need to refresh itertools.count.

| improve this answer | |
  • Nice, albeit I find it a bit "obscure" ;-) – GhostCat Oct 14 '19 at 12:23
  • @GhostCat it's not obscure, counter is a generator when ever you call next(counter) it produce the next value, I always forget about this generator really nice answer – Charif DZ Oct 14 '19 at 12:25
  • @GhostCat regex and functional programming in the same line :-P I guess the "obscurity" depends on how much you're used to these tools. – jfaccioni Oct 14 '19 at 12:28
3

I think that shoudl work

rv.replace('%s','{{{}}}').format(*range(rv.count('%s')))

| improve this answer | |
  • 1
    @GhostCat don't be tempted by one-liners, remember that people have to maintain code – Dan Oct 14 '19 at 12:23
  • 1
    @Dan I know. But I less code is also less code to maintain. – GhostCat Oct 14 '19 at 12:23
  • It's not less though, it's just harder to debug and harder to a future dev to read. This answer is pretty close to being identical to mine, it has the same function calls (swapping replace for split and join) but what if there's a problem in an intermediate step? How would you isolate it. And which is quicker of r a new dev to understand what it does just from the code. I really recommend you don't put this much logic in a single line. – Dan Oct 14 '19 at 12:26
  • 1
    Not a nice one-liner. X.join(Y.split(Z)) is just a convoluted way of writing Y.replace(X, Z), and there's no need to wrap the range call in list(...) either. – Aran-Fey Oct 14 '19 at 12:31
  • 1
    @Dan yes, sorry about that, (only in one line now) :) – Reznik Oct 14 '19 at 12:34
1

Using re.sub for dynamic replacing:

import re

text = "A %s B %s %s B %s"


def _fix_substitution_parms(raw_message):
    counter = 0
    def replace(_):
        nonlocal counter
        counter += 1
        return '{{{}}}'.format(counter - 1)
    return re.sub('%s', replace, raw_message)


print(_fix_substitution_parms(text))  # A {0} B {1} {2} B {3}
| improve this answer | |
  • 1
    Keep in mind that this doesn't account for escaped placeholders (%%s) - if that's a concern, you can use the regex r'(?<!%)%s' instead. – Aran-Fey Oct 14 '19 at 12:19
  • If you allow the stupid question: what are the {{{}}} actually about? – GhostCat Oct 15 '19 at 6:57
  • String formating to escape { we don't do \{ like usual we do {{. – Charif DZ Oct 15 '19 at 7:23
1

Using a generator:

def split_and_insert(mystring):
    parts = iter(mystring.split('%s'))
    yield next(parts)
    for n, part in enumerate(parts):
        yield f'{{{n}}}'
        yield part

new_string = ''.join(split_and_insert("A %s B %s"))
| improve this answer | |
-4

Have you try with .format?

string.format(0=value, 1=value)

So:

"A {0} B {1}".format(0=value, 1=value)

| improve this answer | |
  • 1
    How does this help anyone turn %s into {}? – Aran-Fey Oct 14 '19 at 12:10

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