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I'm trying to use string.format on a 'nan' float.

Here's the description of the 'g' option from the python documentation.

General format. This prints the number as a fixed-point number, unless the number is too large, in which case it switches to 'e' exponent notation. Infinity and NaN values are formatted as inf, -inf and nan, respectively.

And here's what i get trying it in the interpreter (Python 2.6):

>>> print "{0:g}".format(float('nan'))
-1.#IND

As I understand the documentation, the output should be "nan".

Is this a bug or am I doing it wrong?

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What platform and which version of Python are you using? –  ecatmur Aug 7 '12 at 15:30
1  
Platform's Windows 7 and Python v. 2.6.6 (32-bit) –  Chris Aug 7 '12 at 15:33

1 Answer 1

up vote 7 down vote accepted

repr(float) was fixed in Python 2.6 and Python 3.0; see http://bugs.python.org/issue1635; however str.format was not fixed until the 2.7 branch; see http://hg.python.org/cpython/rev/c5e0d9beebf9 and http://bugs.python.org/issue1580.

I'd recommend seeing if "{0!r}" works for you; that should call into the non-broken repr code.

If you need to use "{0:g}" format spec, you could try subclassing float and overriding __format__:

class FixFloat(float):
    def __format__(self, format_spec):
        return 'nan' if math.isnan(self) else float.__format__(self, format_spec)

"{0:g}".format(FixFloat(1.2345e9))
'1.2345e+09'
"{0:g}".format(FixFloat(float('nan')))
'nan'
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I am using Python 2.6. Would you care to develop your answer a little more? –  Chris Aug 7 '12 at 15:37
    
Are the Versions listed in the bug report the versions where it was discovered, or the versions where it was fixed? I suspect the former. It works for me in 2.7. –  Mark Ransom Aug 7 '12 at 16:20
    
@Chris it looks like str.format was a separate fix. –  ecatmur Aug 7 '12 at 17:04
    
The command "{0!r}".format(float('nan')) does produce the expected output ('nan'). However, I'd like to use the 'g' option behavior. Any ideas how that can be done? I'm thinking of a conditional check if math.isnan(num): print this; else: print that but it seems rather unpythonic... –  Chris Aug 8 '12 at 6:39
    
And I'm accepting your answer because the question was effectively solved plus the discussions in the links you provide are very interesting indeed. –  Chris Aug 8 '12 at 6:42

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