309

A function to return human readable size from bytes size:

>>> human_readable(2048)
'2 kilobytes'
>>>

How to do this?

4
  • 2
    I think this falls under the heading of "too small a task to require a library". If you look at the source for hurry.filesize, there's only a single function, with a dozen lines of code. And even that could be compacted.
    – Ben Blank
    Jul 7, 2009 at 21:09
  • 14
    The advantage of using a library is that it is usually tested (contains tests that can be run in case if one's edit introduces a bug). If you add the tests, then it is not anymore 'dozen lines of code' :-) Jul 7, 2009 at 21:49
  • 1
    The amount of re-inventing the wheel in python community is crazy and ridiculous. Just ls -h /path/to/file.ext will do the job. Having said that, the accepted answer is doing a good job. Kudo. Apr 14, 2019 at 23:49
  • 2048 bytes = 2 kibibytes (not kilobytes). Oct 25, 2021 at 4:03

24 Answers 24

665

Addressing the above "too small a task to require a library" issue by a straightforward implementation (using f-strings, so Python 3.6+):

def sizeof_fmt(num, suffix="B"):
    for unit in ["", "Ki", "Mi", "Gi", "Ti", "Pi", "Ei", "Zi"]:
        if abs(num) < 1024.0:
            return f"{num:3.1f}{unit}{suffix}"
        num /= 1024.0
    return f"{num:.1f}Yi{suffix}"

Supports:

  • all currently known binary prefixes
  • negative and positive numbers
  • numbers larger than 1000 Yobibytes
  • arbitrary units (maybe you like to count in Gibibits!)

Example:

>>> sizeof_fmt(168963795964)
'157.4GiB'

by Fred Cirera

16
  • 7
    There should be a space between the number and the unit. If you are outputting html or latex it should be a non-breaking-space.
    – josch
    Nov 21, 2014 at 14:57
  • 5
    just a thought, but for any(?) suffix other than B (i.e. for units other than bytes) you'd want the factor to be 1000.0 rather than 1024.0 no?
    – Anentropic
    Dec 23, 2014 at 10:15
  • 6
    If you want to increase the precision of the decimal component,change the 1 on lines 4 and 6 to whatever precision you want.
    – Matthew G
    May 10, 2015 at 4:07
  • 3
    cool! I liked it some much I converted it to Go lang : play.golang.org/p/68w_QCsE4F
    – eSniff
    Jun 2, 2015 at 5:47
  • 67
    sure would be nice if all this iteration on this "too small a task" were captured and encapsulated into a library with tests.
    – fess .
    Feb 27, 2016 at 22:03
164

A library that has all the functionality that it seems you're looking for is humanize. humanize.naturalsize() seems to do everything you're looking for.

Example code (python 3.10)

import humanize

disk_sizes_list = [1, 100, 999, 1000,1024, 2000,2048, 3000, 9999, 10000, 2048000000, 9990000000, 9000000000000000000000]
for size in disk_sizes_list:
    natural_size = humanize.naturalsize(size)
    binary_size = humanize.naturalsize(size, binary=True)
    print(f" {natural_size} \t| {binary_size}\t|{size}")

Output

 1 Byte     | 1 Byte    |1
 100 Bytes  | 100 Bytes |100
 999 Bytes  | 999 Bytes |999
 1.0 kB     | 1000 Bytes    |1000
 1.0 kB     | 1.0 KiB   |1024
 2.0 kB     | 2.0 KiB   |2000
 2.0 kB     | 2.0 KiB   |2048
 3.0 kB     | 2.9 KiB   |3000
 10.0 kB    | 9.8 KiB   |9999
 10.0 kB    | 9.8 KiB   |10000
 2.0 GB     | 1.9 GiB   |2048000000
 10.0 GB    | 9.3 GiB   |9990000000
 9.0 ZB     | 7.6 ZiB   |9000000000000000000000
1
  • 22
    Some examples using the data from the OP: humanize.naturalsize(2048) # => '2.0 kB' , humanize.naturalsize(2048, binary=True) # => '2.0 KiB' humanize.naturalsize(2048, gnu=True) # => '2.0K' Jan 27, 2016 at 10:10
43

The following works in Python 3.6+, is, in my opinion, the easiest to understand answer on here, and lets you customize the amount of decimal places used.

def human_readable_size(size, decimal_places=2):
    for unit in ['B', 'KiB', 'MiB', 'GiB', 'TiB', 'PiB']:
        if size < 1024.0 or unit == 'PiB':
            break
        size /= 1024.0
    return f"{size:.{decimal_places}f} {unit}"
1
  • I like this one, but add the abs() function in the if condition for negative values.
    – benba
    Aug 12, 2021 at 5:15
40

There's always got to be one of those guys. Well today it's me. Here's a one-liner -- or two lines if you count the function signature.

def human_size(bytes, units=[' bytes','KB','MB','GB','TB', 'PB', 'EB']):
    """ Returns a human readable string representation of bytes """
    return str(bytes) + units[0] if bytes < 1024 else human_size(bytes>>10, units[1:])

>>> human_size(123)
123 bytes
>>> human_size(123456789)
117GB

If you need sizes bigger than an Exabyte, it's a little bit more gnarly:

def human_size(bytes, units=[' bytes','KB','MB','GB','TB', 'PB', 'EB']):
    return str(bytes) + units[0] if bytes < 1024 else human_size(bytes>>10, units[1:]) if units[1:] else f'{bytes>>10}ZB'
7
  • 2
    FYI, the output will always be rounded down. May 3, 2017 at 3:10
  • 1
    wouldn't it be better to assign the default list for units inside the method to avoid using a list as a default argument? (and using units=None instead)
    – Ima
    Nov 20, 2017 at 16:02
  • 3
    @ImanolEizaguirre Best practices would state that it's a good idea to do as you suggested, so you don't inadvertently introduce bugs into a program. However, this function as it is written is safe because the units list is never manipulated. If it was manipulated, the changes would be permanent, and any subsequent function calls would receive a manipulated version of the list as the default argument for the units argument. Nov 20, 2017 at 22:14
  • 2
    For Python 3, if you want a decimal point, use this instead: ``` def human_size(fsize, units=[' bytes','KB','MB','GB','TB', 'PB', 'EB']): return "{:.2f}{}".format(float(fsize), units[0]) if fsize < 1024 else human_size(fsize / 1024, units[1:]) ``` Jul 21, 2019 at 8:13
  • @OmerTuchfeld +1 because this way the resulting size is more accurate. Also, I'm divided on whether the units should be called KiB, MiB, etc. or not. Nov 19, 2020 at 10:48
38

Here's my version. It does not use a for-loop. It has constant complexity, O(1), and is in theory more efficient than the answers here that use a for-loop.

from math import log
unit_list = zip(['bytes', 'kB', 'MB', 'GB', 'TB', 'PB'], [0, 0, 1, 2, 2, 2])
def sizeof_fmt(num):
    """Human friendly file size"""
    if num > 1:
        exponent = min(int(log(num, 1024)), len(unit_list) - 1)
        quotient = float(num) / 1024**exponent
        unit, num_decimals = unit_list[exponent]
        format_string = '{:.%sf} {}' % (num_decimals)
        return format_string.format(quotient, unit)
    if num == 0:
        return '0 bytes'
    if num == 1:
        return '1 byte'

To make it more clear what is going on, we can omit the code for the string formatting. Here are the lines that actually do the work:

exponent = int(log(num, 1024))
quotient = num / 1024**exponent
unit_list[exponent]
6
  • 2
    while you talk about optimizing such a short code, why not use if/elif/else? Th last check num==1 is unnecessary unless you expect negative file sizes. Otherwise: nice work, I like this version.
    – ted
    Sep 6, 2012 at 6:50
  • 2
    My code could surely be more optimized. However, my point was to demonstrate that this task could be solved with constant complexity.
    – joctee
    Sep 8, 2012 at 16:00
  • 45
    The answers with for loops are also O(1), because the for loops are bounded--their computation time doesn't scale with the size of the input (we don't have unbounded SI prefixes). Apr 17, 2013 at 16:53
  • 1
    probably should add a comma for the formatting, so 1000 would show as 1,000 bytes.
    – iTayb
    Jan 3, 2014 at 9:14
  • 4
    Note that when using Python 3, zip returns an iterator, so you need to wrap it with list(). unit_list = list(zip(['bytes', 'kB', 'MB', 'GB', 'TB', 'PB'], [0, 0, 1, 2, 2, 2]))
    – donarb
    Feb 21, 2018 at 21:46
30

I recently came up with a version that avoids loops, using log2 to determine the size order which doubles as a shift and an index into the suffix list:

from math import log2

_suffixes = ['bytes', 'KiB', 'MiB', 'GiB', 'TiB', 'PiB', 'EiB', 'ZiB', 'YiB']

def file_size(size):
    # determine binary order in steps of size 10 
    # (coerce to int, // still returns a float)
    order = int(log2(size) / 10) if size else 0
    # format file size
    # (.4g results in rounded numbers for exact matches and max 3 decimals, 
    # should never resort to exponent values)
    return '{:.4g} {}'.format(size / (1 << (order * 10)), _suffixes[order])

Could well be considered unpythonic for its readability, though.

2
  • 1
    While I like the log2 thing, you should handle size == 0!
    – Marti Nito
    Jan 15, 2015 at 16:20
  • You need to wrap either size or (1 << (order * 10) in float() in the last line (for python 2).
    – Harvey
    Jan 27, 2015 at 15:18
22

If you're using Django installed you can also try filesizeformat:

from django.template.defaultfilters import filesizeformat
filesizeformat(1073741824)

=>

"1.0 GB"
3
  • 2
    One downside to this for me is that it uses GB instead of GiB even though it's dividing by 1024.
    – Pepedou
    Jun 7, 2019 at 18:23
  • Never heard of GiB before, its seems silly. Does anyone every uses memory storay in real powers of 10^3 for anything useful? No-one says Mebibyte, we all say MegaByte Jan 14 at 14:27
  • Yes, that's quite popular nowadays. For instance, Nautilus and Finder use SI-style prefixes. Apr 7 at 13:14
13

You should use "humanize".

>>> humanize.naturalsize(1000000)
'1.0 MB'
>>> humanize.naturalsize(1000000, binary=True)
'976.6 KiB'
>>> humanize.naturalsize(1000000, gnu=True)
'976.6K'

Reference:

https://pypi.org/project/humanize/

10

One such library is hurry.filesize.

>>> from hurry.filesize import alternative
>>> size(1, system=alternative)
'1 byte'
>>> size(10, system=alternative)
'10 bytes'
>>> size(1024, system=alternative)
'1 KB'
3
  • 4
    However, this library is not very customizable. >>> from hurry.filesize import size >>> size(1031053) >>> size(3033053) '2M' I expect it show, for example, '2.4M' or '2423K' .. instead of the blatantly approximated '2M'. Jul 7, 2009 at 21:06
  • Note also that it's very easy to just grab the code out of hurry.filesize and put it directly in your own code, if you're dealing with dependency systems and the like. It's about as short as the snippets people are providing here.
    – mlissner
    Oct 23, 2011 at 3:03
  • @SridharRatnakumar, to address the over-approximation problem somewhat intelligently, please see my mathematical hack. Can the approach be further improved upon?
    – Asclepius
    Jan 29, 2015 at 0:25
8

Using either powers of 1000 or kibibytes would be more standard-friendly:

def sizeof_fmt(num, use_kibibyte=True):
    base, suffix = [(1000.,'B'),(1024.,'iB')][use_kibibyte]
    for x in ['B'] + map(lambda x: x+suffix, list('kMGTP')):
        if -base < num < base:
            return "%3.1f %s" % (num, x)
        num /= base
    return "%3.1f %s" % (num, x)

P.S. Never trust a library that prints thousands with the K (uppercase) suffix :)

1
  • 1
    P.S. Never trust a library that prints thousands with the K (uppercase) suffix :) Why not? The code could be perfectly sound and the author just didn't consider the casing for kilo. It seems pretty asinine to automatically dismiss any code based on your rule... Feb 11, 2018 at 2:21
7

The HumanFriendly project helps with this.

import humanfriendly
humanfriendly.format_size(1024)

The above code will give 1KB as answer.
Examples can be found here.

1
  • I feel that this and the humanize below are the only real answers to the OP Jul 17, 2020 at 17:11
6

Riffing on the snippet provided as an alternative to hurry.filesize(), here is a snippet that gives varying precision numbers based on the prefix used. It isn't as terse as some snippets, but I like the results.

def human_size(size_bytes):
    """
    format a size in bytes into a 'human' file size, e.g. bytes, KB, MB, GB, TB, PB
    Note that bytes/KB will be reported in whole numbers but MB and above will have greater precision
    e.g. 1 byte, 43 bytes, 443 KB, 4.3 MB, 4.43 GB, etc
    """
    if size_bytes == 1:
        # because I really hate unnecessary plurals
        return "1 byte"

    suffixes_table = [('bytes',0),('KB',0),('MB',1),('GB',2),('TB',2), ('PB',2)]

    num = float(size_bytes)
    for suffix, precision in suffixes_table:
        if num < 1024.0:
            break
        num /= 1024.0

    if precision == 0:
        formatted_size = "%d" % num
    else:
        formatted_size = str(round(num, ndigits=precision))

    return "%s %s" % (formatted_size, suffix)
6

This will do what you need in almost any situation, is customizable with optional arguments, and as you can see, is pretty much self-documenting:

from math import log
def pretty_size(n,pow=0,b=1024,u='B',pre=['']+[p+'i'for p in'KMGTPEZY']):
    pow,n=min(int(log(max(n*b**pow,1),b)),len(pre)-1),n*b**pow
    return "%%.%if %%s%%s"%abs(pow%(-pow-1))%(n/b**float(pow),pre[pow],u)

Example output:

>>> pretty_size(42)
'42 B'

>>> pretty_size(2015)
'2.0 KiB'

>>> pretty_size(987654321)
'941.9 MiB'

>>> pretty_size(9876543210)
'9.2 GiB'

>>> pretty_size(0.5,pow=1)
'512 B'

>>> pretty_size(0)
'0 B'

Advanced customizations:

>>> pretty_size(987654321,b=1000,u='bytes',pre=['','kilo','mega','giga'])
'987.7 megabytes'

>>> pretty_size(9876543210,b=1000,u='bytes',pre=['','kilo','mega','giga'])
'9.9 gigabytes'

This code is both Python 2 and Python 3 compatible. PEP8 compliance is an exercise for the reader. Remember, it's the output that's pretty.

Update:

If you need thousands commas, just apply the obvious extension:

def prettier_size(n,pow=0,b=1024,u='B',pre=['']+[p+'i'for p in'KMGTPEZY']):
    r,f=min(int(log(max(n*b**pow,1),b)),len(pre)-1),'{:,.%if} %s%s'
    return (f%(abs(r%(-r-1)),pre[r],u)).format(n*b**pow/b**float(r))

For example:

>>> pretty_units(987654321098765432109876543210)
'816,968.5 YiB'
4

Drawing from all the previous answers, here is my take on it. It's an object which will store the file size in bytes as an integer. But when you try to print the object, you automatically get a human readable version.

class Filesize(object):
    """
    Container for a size in bytes with a human readable representation
    Use it like this::

        >>> size = Filesize(123123123)
        >>> print size
        '117.4 MB'
    """

    chunk = 1024
    units = ['bytes', 'KB', 'MB', 'GB', 'TB', 'PB']
    precisions = [0, 0, 1, 2, 2, 2]

    def __init__(self, size):
        self.size = size

    def __int__(self):
        return self.size

    def __str__(self):
        if self.size == 0: return '0 bytes'
        from math import log
        unit = self.units[min(int(log(self.size, self.chunk)), len(self.units) - 1)]
        return self.format(unit)

    def format(self, unit):
        if unit not in self.units: raise Exception("Not a valid file size unit: %s" % unit)
        if self.size == 1 and unit == 'bytes': return '1 byte'
        exponent = self.units.index(unit)
        quotient = float(self.size) / self.chunk**exponent
        precision = self.precisions[exponent]
        format_string = '{:.%sf} {}' % (precision)
        return format_string.format(quotient, unit)
0
3

Modern Django have self template tag filesizeformat:

Formats the value like a human-readable file size (i.e. '13 KB', '4.1 MB', '102 bytes', etc.).

For example:

{{ value|filesizeformat }}

If value is 123456789, the output would be 117.7 MB.

More info: https://docs.djangoproject.com/en/1.10/ref/templates/builtins/#filesizeformat

1
  • from django.template.defaultfilters import filesizeformat; filesizeformat(1024*400) this was super useful, thank you! Oct 6, 2020 at 8:38
2

I like the fixed precision of senderle's decimal version, so here's a sort of hybrid of that with joctee's answer above (did you know you could take logs with non-integer bases?):

from math import log
def human_readable_bytes(x):
    # hybrid of https://stackoverflow.com/a/10171475/2595465
    #      with https://stackoverflow.com/a/5414105/2595465
    if x == 0: return '0'
    magnitude = int(log(abs(x),10.24))
    if magnitude > 16:
        format_str = '%iP'
        denominator_mag = 15
    else:
        float_fmt = '%2.1f' if magnitude % 3 == 1 else '%1.2f'
        illion = (magnitude + 1) // 3
        format_str = float_fmt + ['', 'K', 'M', 'G', 'T', 'P'][illion]
    return (format_str % (x * 1.0 / (1024 ** illion))).lstrip('0')
1

How about a simple 2 liner:

def humanizeFileSize(filesize):
    p = int(math.floor(math.log(filesize, 2)/10))
    return "%.3f%s" % (filesize/math.pow(1024,p), ['B','KiB','MiB','GiB','TiB','PiB','EiB','ZiB','YiB'][p])

Here is how it works under the hood:

  1. Calculates log2(filesize)
  2. Divides it by 10 to get the closest unit. (eg if size is 5000 bytes, the closest unit is Kb, so the answer should be X KiB)
  3. Returns file_size/value_of_closest_unit along with unit.

It however doesn't work if filesize is 0 or negative (because log is undefined for 0 and -ve numbers). You can add extra checks for them:

def humanizeFileSize(filesize):
    filesize = abs(filesize)
    if (filesize==0):
        return "0 Bytes"
    p = int(math.floor(math.log(filesize, 2)/10))
    return "%0.2f %s" % (filesize/math.pow(1024,p), ['Bytes','KiB','MiB','GiB','TiB','PiB','EiB','ZiB','YiB'][p])

Examples:

>>> humanizeFileSize(538244835492574234)
'478.06 PiB'
>>> humanizeFileSize(-924372537)
'881.55 MiB'
>>> humanizeFileSize(0)
'0 Bytes'

NOTE - There is a difference between Kb and KiB. KB means 1000 bytes, whereas KiB means 1024 bytes. KB,MB,GB are all multiples of 1000, whereas KiB, MiB, GiB etc are all multiples of 1024. More about it here

1

What you're about to find below is by no means the most performant or shortest solution among the ones already posted. Instead, it focuses on one particular issue that many of the other answers miss.

Namely the case when input like 999_995 is given:

Python 3.6.1 ...
...
>>> value = 999_995
>>> base = 1000
>>> math.log(value, base)
1.999999276174054

which, being truncated to the nearest integer and applied back to the input gives

>>> order = int(math.log(value, base))
>>> value/base**order
999.995

This seems to be exactly what we'd expect until we're required to control output precision. And this is when things start to get a bit difficult.

With the precision set to 2 digits we get:

>>> round(value/base**order, 2)
1000 # K

instead of 1M.

How can we counter that?

Of course, we can check for it explicitly:

if round(value/base**order, 2) == base:
    order += 1

But can we do better? Can we get to know which way the order should be cut before we do the final step?

It turns out we can.

Assuming 0.5 decimal rounding rule, the above if condition translates into:

enter image description here

resulting in

def abbreviate(value, base=1000, precision=2, suffixes=None):
    if suffixes is None:
        suffixes = ['', 'K', 'M', 'B', 'T']

    if value == 0:
        return f'{0}{suffixes[0]}'

    order_max = len(suffixes) - 1
    order = log(abs(value), base)
    order_corr = order - int(order) >= log(base - 0.5/10**precision, base)
    order = min(int(order) + order_corr, order_max)

    factored = round(value/base**order, precision)

    return f'{factored:,g}{suffixes[order]}'

giving

>>> abbreviate(999_994)
'999.99K'
>>> abbreviate(999_995)
'1M'
>>> abbreviate(999_995, precision=3)
'999.995K'
>>> abbreviate(2042, base=1024)
'1.99K'
>>> abbreviate(2043, base=1024)
'2K'
1
  • That was a very good read, and it was fun to see your mathematical algorithm. Unfortunately it's slow, as you pointed out. I have previously solved this issue in a high-performance way in the following post: stackoverflow.com/a/63839503/8874388 Sep 11, 2020 at 1:48
1

To get the file size in a human readable form, I created this function:

import os

def get_size(path):
    size = os.path.getsize(path)
    if size < 1024:
        return f"{size} bytes"
    elif size < 1024*1024:
        return f"{round(size/1024, 2)} KB"
    elif size < 1024*1024*1024:
        return f"{round(size/(1024*1024), 2)} MB"
    elif size < 1024*1024*1024*1024:
        return f"{round(size/(1024*1024*1024), 2)} GB"
>>> get_size("a.txt")
1.4KB
0
def human_readable_data_quantity(quantity, multiple=1024):
    if quantity == 0:
        quantity = +0
    SUFFIXES = ["B"] + [i + {1000: "B", 1024: "iB"}[multiple] for i in "KMGTPEZY"]
    for suffix in SUFFIXES:
        if quantity < multiple or suffix == SUFFIXES[-1]:
            if suffix == SUFFIXES[0]:
                return "%d%s" % (quantity, suffix)
            else:
                return "%.1f%s" % (quantity, suffix)
        else:
            quantity /= multiple
0

This feature if available in Boltons which is a very handy library to have for most projects.

>>> bytes2human(128991)
'126K'
>>> bytes2human(100001221)
'95M'
>>> bytes2human(0, 2)
'0.00B'
-1

Here is an option using while:

def number_format(n):
   n2, n3 = n, 0
   while n2 >= 1e3:
      n2 /= 1e3
      n3 += 1
   return '%.3f' % n2 + ('', ' k', ' M', ' G')[n3]

s = number_format(9012345678)
print(s == '9.012 G')

https://docs.python.org/reference/compound_stmts.html#while

-1

Referencing Sridhar Ratnakumar's answer, updated to:

def formatSize(sizeInBytes, decimalNum=1, isUnitWithI=False, sizeUnitSeperator=""):
  """format size to human readable string"""
  # https://en.wikipedia.org/wiki/Binary_prefix#Specific_units_of_IEC_60027-2_A.2_and_ISO.2FIEC_80000
  # K=kilo, M=mega, G=giga, T=tera, P=peta, E=exa, Z=zetta, Y=yotta
  sizeUnitList = ['','K','M','G','T','P','E','Z']
  largestUnit = 'Y'

  if isUnitWithI:
    sizeUnitListWithI = []
    for curIdx, eachUnit in enumerate(sizeUnitList):
      unitWithI = eachUnit
      if curIdx >= 1:
        unitWithI += 'i'
      sizeUnitListWithI.append(unitWithI)

    # sizeUnitListWithI = ['','Ki','Mi','Gi','Ti','Pi','Ei','Zi']
    sizeUnitList = sizeUnitListWithI

    largestUnit += 'i'

  suffix = "B"
  decimalFormat = "." + str(decimalNum) + "f" # ".1f"
  finalFormat = "%" + decimalFormat + sizeUnitSeperator + "%s%s" # "%.1f%s%s"
  sizeNum = sizeInBytes
  for sizeUnit in sizeUnitList:
      if abs(sizeNum) < 1024.0:
        return finalFormat % (sizeNum, sizeUnit, suffix)
      sizeNum /= 1024.0
  return finalFormat % (sizeNum, largestUnit, suffix)

and example output is:

def testKb():
  kbSize = 3746
  kbStr = formatSize(kbSize)
  print("%s -> %s" % (kbSize, kbStr))

def testI():
  iSize = 87533
  iStr = formatSize(iSize, isUnitWithI=True)
  print("%s -> %s" % (iSize, iStr))

def testSeparator():
  seperatorSize = 98654
  seperatorStr = formatSize(seperatorSize, sizeUnitSeperator=" ")
  print("%s -> %s" % (seperatorSize, seperatorStr))

def testBytes():
  bytesSize = 352
  bytesStr = formatSize(bytesSize)
  print("%s -> %s" % (bytesSize, bytesStr))

def testMb():
  mbSize = 76383285
  mbStr = formatSize(mbSize, decimalNum=2)
  print("%s -> %s" % (mbSize, mbStr))

def testTb():
  tbSize = 763832854988542
  tbStr = formatSize(tbSize, decimalNum=2)
  print("%s -> %s" % (tbSize, tbStr))

def testPb():
  pbSize = 763832854988542665
  pbStr = formatSize(pbSize, decimalNum=4)
  print("%s -> %s" % (pbSize, pbStr))


def demoFormatSize():
  testKb()
  testI()
  testSeparator()
  testBytes()
  testMb()
  testTb()
  testPb()

  # 3746 -> 3.7KB
  # 87533 -> 85.5KiB
  # 98654 -> 96.3 KB
  # 352 -> 352.0B
  # 76383285 -> 72.84MB
  # 763832854988542 -> 694.70TB
  # 763832854988542665 -> 678.4199PB
-2

This solution might also appeal to you, depending on how your mind works:

from pathlib import Path    

def get_size(path = Path('.')):
    """ Gets file size, or total directory size """
    if path.is_file():
        size = path.stat().st_size
    elif path.is_dir():
        size = sum(file.stat().st_size for file in path.glob('*.*'))
    return size

def format_size(path, unit="MB"):
    """ Converts integers to common size units used in computing """
    bit_shift = {"B": 0,
            "kb": 7,
            "KB": 10,
            "mb": 17,
            "MB": 20,
            "gb": 27,
            "GB": 30,
            "TB": 40,}
    return "{:,.0f}".format(get_size(path) / float(1 << bit_shift[unit])) + " " + unit

# Tests and test results
>>> get_size("d:\\media\\bags of fun.avi")
'38 MB'
>>> get_size("d:\\media\\bags of fun.avi","KB")
'38,763 KB'
>>> get_size("d:\\media\\bags of fun.avi","kb")
'310,104 kb'

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