662

I am writing a Python script in Windows. I want to do something based on the file size. For example, if the size is greater than 0, I will send an email to somebody, otherwise continue to other things.

How do I check the file size?

620

Use os.stat, and use the st_size member of the resulting object:

>>> import os
>>> statinfo = os.stat('somefile.txt')
>>> statinfo
(33188, 422511L, 769L, 1, 1032, 100, 926L, 1105022698,1105022732, 1105022732)
>>> statinfo.st_size
926L

Output is in bytes.

  • 2
    If anything, the value could be passed as multiples of the file system block size (4096 bytes for example). Gladly, it is given as bytes instead. – josch Feb 13 '16 at 8:36
  • 1
    @josch - yes, this is nice, for the "size on disk" you can multiply stat_result.st_blocks by the block size, but I'm still searching how to get it programmatically and cross-platform (not via tune2fs etc.) – Tomasz Gandor Apr 22 '16 at 20:56
994

Using os.path.getsize:

>>> import os
>>> b = os.path.getsize("/path/isa_005.mp3")
>>> b
2071611L

The output is in bytes.

  • 108
    Note: the implementation of os.path.getsize is simply return os.stat(filename).st_size – wim Mar 21 '13 at 11:20
  • 244
    But, oh, how much clearer than st_size! – Paul Draper Jan 15 '14 at 3:53
  • 5
    @wordsforthewise measure it! ~150 ns in my computer. – Davidmh Jul 15 '15 at 11:24
  • 2
    @wordsforthewise So is it like 2071611L bytes or 2071611L MB ? What does L stand for ? pls tell I am new to File I/O – Tilak Maddy Nov 8 '15 at 14:35
  • 2
    Docs say: os.path.getsize(path): Return the size, in bytes, of path. docs.python.org/2/library/os.path.html Ignore the L: stackoverflow.com/questions/12589976/… – wordsforthewise Nov 8 '15 at 21:16
121

The other answers work for real files, but if you need something that works for "file-like objects", try this:

# f is a file-like object. 
f.seek(0, os.SEEK_END)
size = f.tell()

It works for real files and StringIO's, in my limited testing. (Python 2.7.3.) The "file-like object" API isn't really a rigorous interface, of course, but the API documentation suggests that file-like objects should support seek() and tell().

Edit

Another difference between this and os.stat() is that you can stat() a file even if you don't have permission to read it. Obviously the seek/tell approach won't work unless you have read permission.

Edit 2

At Jonathon's suggestion, here's a paranoid version. (The version above leaves the file pointer at the end of the file, so if you were to try to read from the file, you'd get zero bytes back!)

# f is a file-like object. 
old_file_position = f.tell()
f.seek(0, os.SEEK_END)
size = f.tell()
f.seek(old_file_position, os.SEEK_SET)
  • 6
    You don't need to import os, instead write f.seek(0, 2) to seek 0 bytes from the end. – cdosborn Apr 3 '15 at 3:58
  • 2
    And for the last line, if os isn't used: f.seek(old_file_position, 0) – luckydonald Dec 2 '15 at 15:11
  • 42
    If you use integer literals instead of named variables, you are torturing anybody that has to maintain your code. There's no compelling reason not to import os. – Mark E. Haase Dec 2 '15 at 16:25
  • 1
    @Kedar.Aitawdekar correct: bytes – Mark E. Haase May 29 '18 at 20:22
  • 1
    Apparently this is at least a little risky, depending on how Python implements #seek(): wiki.sei.cmu.edu/confluence/display/c/… – Doctor Mohawk Aug 17 '18 at 20:35
65
import os


def convert_bytes(num):
    """
    this function will convert bytes to MB.... GB... etc
    """
    for x in ['bytes', 'KB', 'MB', 'GB', 'TB']:
        if num < 1024.0:
            return "%3.1f %s" % (num, x)
        num /= 1024.0


def file_size(file_path):
    """
    this function will return the file size
    """
    if os.path.isfile(file_path):
        file_info = os.stat(file_path)
        return convert_bytes(file_info.st_size)


# Lets check the file size of MS Paint exe 
# or you can use any file path
file_path = r"C:\Windows\System32\mspaint.exe"
print file_size(file_path)

Result:

6.1 MB
  • 5
    this function will convert bytes to MB.... GB... etc Wrong. This function will convert bytes to MiB, GiB, etc. See this post. – moi Jul 18 '17 at 7:30
  • 2
    Line 10 can be changed to return f'{num:.1f} {x}' in Python >= 3.5. – Matt M. Jun 7 '18 at 23:40
32

Using pathlib (added in Python 3.4 or a backport available on PyPI):

from pathlib import Path
file = Path() / 'doc.txt'  # or Path('./doc.txt')
size = file.stat().st_size

This is really only an interface around os.stat, but using pathlib provides an easy way to access other file related operations.

13

There is a bitshift trick I use if i want to to convert from bytes to any other unit. If you do a right shift by 10 you basically shift it by an order (multiple).

Example: 5GB are 5368709120 bytes

print (5368709120 >> 10)  # 5242880 kilo Bytes (kB)
print (5368709120 >> 20 ) # 5120 Mega Bytes(MB)
print (5368709120 >> 30 ) # 5 Giga Bytes(GB)
  • 4
    This doesn't answer the question. The question is about finding the size of a file, not about formatting the result for human consumption. – Will Manley Apr 9 '18 at 12:44
  • 1
    These numbers are wrong and thus confusing. 5GB is 5e9 bytes. Is this supposed to be some sort of human-readable approximation? Where would you even use something like this? – Dre Aug 14 '18 at 0:29
  • 1-bit=>2 ... 2-bits=>4 ... 3-bits=>8 ... 4-bits=>16 ... 5-bits=>32 ... 6-bits=>64 ... 7-bits=>128 ... 8-bits=>256 ... 9-bits=>512 ... 10-bits=>1024 ... 1024 bytes is 1kB ... => 20-bits => 1024 * 1024 = 1,048,576bytes, which is 1024kB, and 1MB... => 30-bits => 1024 * 1024 * 1024 = 1,073,741,824 bytes, which is 1,048,576 kB, and 1024MB, and 1GB … You have confused scientific notation and decimal places with the binary/base-2 representation used in computing. 5x9 = 5 x 10^9 = 5,000,000,000 – James 'Fluffy' Burton Sep 12 '18 at 15:33
  • 1
    Guys, he hasn't confused anything... he's just given an approximation, which is evident when he says "basically". 2^10 is approx. 10^3. In fact, this approximation is so common that it has a name: Mebi, Gibi, and Tebi are Mega, Giga, and Tera, respectively. Regarding not answering the question, @WillManley , you have a fair point there! ;-p – Mike Williamson Oct 2 '18 at 23:36
9

Strictly sticking to the question, the python code (+ pseudo-code) would be:

import os
file_path = r"<path to your file>"
if os.stat(file_path).st_size > 0:
    <send an email to somebody>
else:
    <continue to other things>
0
#Get file size , print it , process it...
#Os.stat will provide the file size in (.st_size) property. 
#The file size will be shown in bytes.

import os

fsize=os.stat('filepath')
print('size:' + fsize.st_size.__str__())

#check if the file size is less than 10 MB

if fsize.st_size < 10000000:
    process it ....

protected by eyllanesc Aug 17 '18 at 18:18

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.