43

What is an easy way in Python to format integers into strings representing thousands with K, and millions with M, and leaving just couple digits after comma?

I'd like to show 7436313 as 7.44M, and 2345 as 2,34K.

Is there some % string formatting operator available for that? Or that could be done only by actually dividing by 1000 in a loop and constructing result string step by step?

10 Answers 10

62

I don't think there's a built-in function that does that. You'll have to roll your own, e.g.:

def human_format(num):
    magnitude = 0
    while abs(num) >= 1000:
        magnitude += 1
        num /= 1000.0
    # add more suffixes if you need them
    return '%.2f%s' % (num, ['', 'K', 'M', 'G', 'T', 'P'][magnitude])

print('the answer is %s' % human_format(7436313))  # prints 'the answer is 7.44M'
2
  • 5
    999999 displays 1000.00K when it should say 1M. – rtaft Aug 21 '17 at 19:23
  • You can write long_nr=1_000_000 instead of 1000000 in the editor, python will not consider the _.. – Timo Sep 20 '20 at 20:33
46

This version does not suffer from the bug in the previous answers where 999,999 gives you 1000.0K. It also only allows 3 significant figures and eliminates trailing 0's.

def human_format(num):
    num = float('{:.3g}'.format(num))
    magnitude = 0
    while abs(num) >= 1000:
        magnitude += 1
        num /= 1000.0
    return '{}{}'.format('{:f}'.format(num).rstrip('0').rstrip('.'), ['', 'K', 'M', 'B', 'T'][magnitude])

The output looks like:

>>> human_format(999999)
'1M'
>>> human_format(999499)
'999K'
>>> human_format(9994)
'9.99K'
>>> human_format(9900)
'9.9K'
>>> human_format(6543165413)
'6.54B'
3
  • 2
    this is the only version that works perfectly for me (no annoying trailing 0s) – Harry Palmer Jan 4 '18 at 10:32
  • What if I want the format as '9_9K' instead of '9.9K'? – AleB Dec 12 '19 at 17:02
  • @AleB use the replace function afterwards to replace the . with _ – rtaft Dec 12 '19 at 18:05
7

A more "math-y" solution is to use math.log:

from math import log, floor


def human_format(number):
    units = ['', 'K', 'M', 'G', 'T', 'P']
    k = 1000.0
    magnitude = int(floor(log(number, k)))
    return '%.2f%s' % (number / k**magnitude, units[magnitude])

Tests:

>>> human_format(123456)
'123.46K'
>>> human_format(123456789)
'123.46M'
>>> human_format(1234567890)
'1.23G'
2
  • 1
    999999 displays 1000.00K when it should say 1M. – rtaft Aug 21 '17 at 19:51
  • Best approach in my opinion because it doesn't require a loop – Addison Klinke Jan 29 '20 at 20:43
5

I needed this function today, refreshed the accepted answer a bit for people with Python >= 3.6:

def human_format(num, precision=2, suffixes=['', 'K', 'M', 'G', 'T', 'P']):
    m = sum([abs(num/1000.0**x) >= 1 for x in range(1, len(suffixes))])
    return f'{num/1000.0**m:.{precision}f}{suffixes[m]}'

print('the answer is %s' % human_format(7454538))  # prints 'the answer is 7.45M'

Edit: given the comments, you might want to change to round(num/1000.0)

2
  • 1
    999999 displays 1000.00K when it should say 1M. – rtaft Aug 21 '17 at 19:59
  • 1
    more elegant: m = int(math.log10(num) // 3) – Nimrod Morag Oct 15 '19 at 12:20
5

Variable precision and no 999999 bug:

def human_format(num, round_to=2):
    magnitude = 0
    while abs(num) >= 1000:
        magnitude += 1
        num = round(num / 1000.0, round_to)
    return '{:.{}f}{}'.format(round(num, round_to), round_to, ['', 'K', 'M', 'G', 'T', 'P'][magnitude])
0

No String Formatting Operator, according to the docs. I've never heard of such a thing, so you may have to roll your own, as you suggest.

0

I don't think there are format operators for that, but you can simply divide by 1000 until the result is between 1 and 999 and then use a format string for 2 digits after comma. Unit is a single character (or perhaps a small string) in most cases, which you can store in a string or array and iterate through it after each divide.

0

I don't know of any built-in capability like this, but here are a couple of list threads that may help:

http://coding.derkeiler.com/Archive/Python/comp.lang.python/2005-09/msg03327.html http://mail.python.org/pipermail/python-list/2008-August/503417.html

0

I had the same need. And if anyone comes on this topic, I found a lib to do so: https://github.com/azaitsev/millify

Hope it helps :)

1
  • millify also displays 999999 as 1000k – rtaft Mar 5 '20 at 14:32
0

I was kind of confused by some of the stuff that other people showed, so I made the below code. It rounds to the second decimal point, ex. '23.56 Billion', but you can change what decimal place it rounds to by replacing the two '100.0's in the last line with a larger or smaller number, ex. '10.0' rounds to one decimal point and '1000.0' rounds to three decimal points. Also, using this code, it always rounds down from what it actually is. You can change this if you like, by replacing 'floor' with 'ceil' or 'round'.

#make the dictionary to store what to put after the result (ex. 'Billion'). You can go further with this then I did, or to wherever you wish. 
#import the desired rounding mechanism. You will not need to do this for round. 
from math import floor
magnitudeDict={0:'', 1:'Thousand', 2:'Million', 3:'Billion', 4:'Trillion', 5:'Quadrillion', 6:'Quintillion', 7:'Sextillion', 8:'Septillion', 9:'Octillion', 10:'Nonillion', 11:'Decillion'}
def simplify(num):
    num=floor(num)
    magnitude=0
    while num>=1000.0:
        magnitude+=1
        num=num/1000.0
    return(f'{floor(num*100.0)/100.0} {magnitudeDict[magnitude]}')

The 'f' before the string in the last line is to let python know you are formatting it. The result from running print(simplify(34867123012.13)) is this:

34.86 Billion

Please let me know if you have questions! Thanks, Angus

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