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I use "g" for formatting floating point values, but it switches to scientific formatting too soon for me - at the 5th digit:

>>> format(0.0001, "g")
'0.0001'
>>> format(0.00001, "g")
'1e-05'

This seems to be described in the "g" rules (the -4):

The precise rules are as follows: suppose that the result formatted with presentation type 'e' and precision p-1 would have exponent exp. Then if -4 <= exp < p, the number is formatted with presentation type 'f' and precision p-1-exp. Otherwise, the number is formatted with presentation type 'e' and precision p-1. In both cases insignificant trailing zeros are removed from the significand, and the decimal point is also removed if there are no remaining digits following it.

Is there a way to display numbers like "g", but with more digits before switching to scientific notation?

I'm thinking of using ".6f" and stripping trailing zeros, but then I won't be able to see small numbers, which need scientific notation.

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  • as per a comment below, ".6g" is valid format string
    – Eric Blum
    Jul 18, 2018 at 20:13

3 Answers 3

9

I had the same question.

Looking at the Python documentation it seems that g also supports precision values:

General format. For a given precision p >= 1, this rounds the number to p significant digits and then formats the result in either fixed-point format or in scientific notation, depending on its magnitude.

I don't know, why the other answers don't use this and I am not very experienced in Python, but it works.

This can be simply achieved by using format(0.00001, '.10g') where 10 is the precision you want.

3
  • 1
    Thanks for pointing this out. I find some of the more obscure string formatting poorly documented or hard to find. This works for me where I'm using pandas to create a csv: dataframe.to_csv(float_format="%.12g")
    – Eric Blum
    Jul 18, 2018 at 20:09
  • I'm having trouble understanding how g with precision works: f"{10.554545:2g}" -> '10.5545' f"{10.554545:.2g}" -> '11' f"{10.554500:2g}" -> '10.5545' f"{10.554500:3g}" -> '10.5545' f"{10.554500:10g}" -> ' 10.5545' So it seems it's not really precision. Dec 24, 2020 at 22:21
  • Looks like you forgot to include a point after the colon for several examples? Or was that just for testing purposes? I think the point is needed and when it is there, it does what is expected: It turns 10.554545 into 11 (two significant digits). f"{10.554545:.4g}" will probably result in 10.55. I haven't tried, though, this is just my assumption.
    – clel
    Jan 1, 2021 at 18:29
4
from math import log10

if log10(n) < -5:
    print "%e" % n
else:
    print "%f" % n

EDIT: it's also possible to put it on a single line:

("%e" if log10(n) < -5 else "%f") % n

If n might be negative, then use log10(abs(n)) in place of log10(n).

EDIT 2: Improved based on Adal's comments:

"%e" % n if n and log10(abs(n)) < -5 else ("%f" % n).rstrip("0")

This will print 0 as "0."--if you want another representation like "0" or "0.0", you'll need to special case it with a separate if.

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  • +1 - or, as a one-liner: (('%f','%e')[log10(n) < -5]) % n - however, the solution works with positive n only.
    – eumiro
    Jan 7, 2011 at 14:36
  • @eumiro: Good point on the negative numbers (updated the answer), but I don't really like your one liner. Indexing a tuple by boolean values is just...non-pythonic.
    – Thomas K
    Jan 7, 2011 at 14:43
  • .rstrip("0") should be added to the "%f" output, so that the result more resembles "%g"
    – Meh
    Jan 7, 2011 at 14:53
  • a check for n == 0 is also needed (log not defined for 0)
    – Meh
    Jan 7, 2011 at 14:57
3

If you're using Python 2.7 you can do the following using it's advanced string formatting mini-language:

>>> '{number:.{width}f}'.format(number=0.000000000001, width=20)
'0.00000000000100000000'

You can then specify the required value of number and width dynamically.

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  • I still want to keep exponential notation for small numbers like 1e-25, and not display 0.0000000000 instead
    – Meh
    Jan 7, 2011 at 15:59

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