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How to simple format string with decimal number for show it with spaces between every three digits?

I can make something like this:

some_result = '12345678,46'
' '.join(re.findall('...?', test[:test.find(',')]))+test[test.find(','):]

and result is:

'123 456 78,46'

but I want:

'12 345 678,46'
share|improve this question
    
What about '12345678,46123'? –  Ashwini Chaudhary Jul 5 '13 at 8:41
    
@AshwiniChaudhary: Usually, people don't put thousands separators after the decimal point. At least PEP 378 formatting doesn't, and neither does any LC_NUMERIC I can dig up. –  abarnert Jul 5 '13 at 8:51
1  
Try to make spaces from the end not from the beginning –  Zaffy Jul 5 '13 at 8:52

3 Answers 3

up vote 11 down vote accepted

This is a bit hacky, but:

format(12345678.46, ',').replace(',', ' ').replace('.', ',')

As described in Format specification mini-language, in a format_spec:

The ',' option signals the use of a comma for a thousands separator.

Then we just replace each comma with a space, then the decimal point with a comma, and we're done.

For more complex cases using str.format instead of format, the format_spec goes after the colon, as in:

'{:,}'.format(12345678.46)

See PEP 378 for details.


Meanwhile, if you're just trying to use the standard grouping and separators for your system's locale, there are easier ways to do that—the n format type, or the locale.format function, etc. For example:

>>> locale.setlocale(locale.LC_NUMERIC, 'pl_PL')
>>> format(12345678, 'n')
12 345 678
>>> locale.format('%.2f' 12345678.12, grouping=True)
12 345 678,46
>>> locale.setlocale(locale.LC_NUMERIC, 'fr_FR')
>>> locale.format('%.2f' 12345678.12, grouping=True)
12345678,46
>>> locale.setlocale(locale.LC_ALL, 'en_AU')
>>> locale.format('%.2f' 12345678.12, grouping=True)
12,345,678.46

If your system locale is, say, pl_PL, just calling locale.setlocale(locale.LC_NUMERIC) (or locale.setlocale(locale.LC_ALL)) will pick up the Polish settings that you want, but the same person running your program in Australia will pick up the Australian settings that he wants.

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I think a regex would be much nicer:

>>> import re
>>> some_result = '12345678,46'
>>> re.sub(r"\B(?=(?:\d{3})+,)", " ", some_result)
'12 345 678,46'

Explanation:

\B       # Assert that we're not at the start of a number
(?=      # Assert that the following regex could match from here:
 (?:     # The following non-capturing group
  \d{3}  # which contains three digits
 )+      # and can be matched one or more times
 ,       # until a comma follows.
)        # End of lookahead assertion
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+1 for providing a breakdown of the regex! –  Christoph Jul 5 '13 at 9:32

Use:

' '.join(re.findall('...?',test[:test.find(',')][::-1]))[::-1]+test[test.find(','):]

You have used regex which starts matching a string from the start. But you want to group the 3 numbers from the end (before comma).

So reverse the string before comma, apply the same logic and then reverse it back.

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