113

I have a floating point number, say 135.12345678910. I want to concatenate that value to a string, but only want 135.123456789. With print, I can easily do this by doing something like:

print "%.9f" % numvar

with numvar being my original number. Is there an easy way to do this?

  • 2
    % exactly does that - % is not part of the print function but of string - see Python docs – michael_s Mar 7 '13 at 5:21
130

With Python < 3 (e.g. 2.6 [see comments] or 2.7), there are two ways to do so.

# Option one
older_method_string = "%.9f" % numvar

# Option two
newer_method_string = "{:.9f}".format(numvar)

But note that for Python versions above 3 (e.g. 3.2 or 3.3), option two is preferred.

For more information on option two, I suggest this link on string formatting from the Python documentation.

And for more information on option one, this link will suffice and has info on the various flags.

Python 3.6 (officially released in December of 2016), added the f string literal, see more information here, which extends the str.format method (use of curly braces such that f"{numvar:.9f}" solves the original problem), that is,

# Option 3 (versions 3.6 and higher)
newest_method_string = f"{numvar:.9f}"

solves the problem. Check out @Or-Duan's answer for more info, but this method is fast.

  • 1
    old style formatting still works in 3.2 – John La Rooy Mar 7 '13 at 5:49
  • 1
    option two should be newer_method_string = "{:.9f}".format(numvar) - note the required : to separate the field and the formatting. I have tested this on 2.7.5 anyway. – Caltor Nov 4 '13 at 14:29
  • 1
    For python 2.6 option two should be newer_method_string = "{0:.9f}".format(numvar) -- note the required 0 for the field_name for this older version. – ttq Oct 26 '16 at 15:26
41

Python 3.6 | 2017

Just to make it clear, you can use f-string formatting. This has almost the same syntax as the format method, but make it a bit nicer.

Example:

print(f'{numvar:.9f}')

More reading about the new f string:

Enter image description here

36

Using round:

>>> numvar = 135.12345678910
>>> str(round(numvar, 9))
'135.123456789'
7

It's not print that does the formatting, It's a property of strings, so you can just use

newstring = "%.9f" % numvar
  • Or use the new style formatting. valueString ="{:.9f}".format(number) – Zaren Mar 7 '13 at 5:40
5

In case the precision is not known until runtime, this other formatting option is useful:

>>> n = 9
>>> '%.*f' % (n, numvar)
'135.123456789'
  • 1
    If you'd prefer to use .format-method, note that this can also be done by nesting arguments like so: '{:.{n}f}'.format(numvar,n=n). – nivk Oct 29 '18 at 20:42
2

To set precision with 9 digits, get:

print "%.9f" % numvar

Return precision with 2 digits:

print "%.2f" % numvar 

Return precision with 2 digits and float converted value:

numvar = 4.2345
print float("%.2f" % numvar) 
-1

The str function has a bug. Please try the following. You will see '0,196553' but the right output is '0,196554'. Because the str function's default value is ROUND_HALF_UP.

>>> value=0.196553500000 
>>> str("%f" % value).replace(".", ",")
  • 1
    What is up with . vs. ,? And how is it relevant for pauliwago's question? – Peter Mortensen May 25 '18 at 23:00

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