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I have used hashlib (which replaces md5 in Python 2.6/3.0) and it worked fine if I opened a file and put its content in hashlib.md5 function.

The problem is with very big files that their sizes could exceed RAM size.

How to get the MD5 hash of a file without loading the whole file to memory?

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2  
Counter-question: How did you expect to get a checksum of the contents of a file without first reading said contents? –  korona Jul 15 '09 at 13:07
3  
By using a function or another way that does it rather than me, I thought there could be something like hashlib.md5.file(path) –  JustRegisterMe Jul 15 '09 at 13:14
14  
I would rephrase: "How to get the MD5 has of a file without loading the whole file to memory?" –  XTL Feb 24 '12 at 12:29
1  
@XTL: "loading the whole file" does not mean "keeping the whole file in memory". You can read and process in chunks –  MestreLion Jun 16 at 18:26
    
@MestreLion: Then RAM size shouldn't be an issue and this question doesn't make much sense. (It's true, though, of course. And there's still some difference between reading a big file and an "endless" stream.) –  XTL Jun 27 at 16:23

6 Answers 6

up vote 115 down vote accepted

Break the file into 128-byte chunks and feed them to MD5 consecutively using update().

This takes advantage of the fact that MD5 has 128-byte digest blocks. Basically, when MD5 digest()s the file, this is exactly what it is doing.

If you make sure you free the memory on each iteration (i.e. not read the entire file to memory), this shall take no more than 128 bytes of memory.

One example is to read the chunks like so:

f = open(fileName)
while not endOfFile:
    f.read(128)
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3  
Python is garbage-collected, so there's (usually) not really a need to worry about memory. Unless you explicitly keep around references to all the strings you read from the file, python will free and/or reuse as it sees fit. –  Kjetil Joergensen Jul 15 '09 at 13:18
13  
@kjeitikor: If you read the entire file into e.g. a Python string, then Python won't have much of a choice. That's why "worrying" about memory makes total sense in this case, where the choice to read it in chunks must be made by the programmer. –  unwind Jul 15 '09 at 14:43
56  
You can just as effectively use a block size of any multiple of 128 (say 8192, 32768, etc.) and that will be much faster than reading 128 bytes at a time. –  jmanning2k Jul 15 '09 at 15:09
26  
Thanks jmanning2k for this important note, a test on 184MB file takes (0m9.230s, 0m2.547s, 0m2.429s) using (128, 8192, 32768), I will use 8192 as the higher value gives non-noticeable affect. –  JustRegisterMe Jul 17 '09 at 19:33
6  
Nothing. It's one of the builtin functions. docs.python.org/library/functions.html#open –  Yuval Adam Jun 16 '12 at 9:17

if you care about more pythonic (no 'while True') way of reading the file check this code:

import hashlib

def checksum_md5(filename):
    md5 = hashlib.md5()
    with open(filename,'rb') as f: 
        for chunk in iter(lambda: f.read(8192), b''): 
            md5.update(chunk)
    return md5.digest()

Note that the iter() func needs an empty byte string for the returned iterator to halt at EOF, since read() returns b'' (not just '').

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14  
Better still, use something like 128*md5.block_size instead of 8192. –  mrkj Jan 6 '11 at 22:51
    
Why does iter(func, '') work yet iter(func) does not? –  bradley.ayers Apr 28 '11 at 2:59
4  
Never mind, help(iter) tells all! –  bradley.ayers Apr 28 '11 at 3:22
    
mrkj: I think it's more important to pick your read block size based on your disk and then to ensure that it's a multiple of md5.block_size. –  Harvey Apr 12 '13 at 14:10
2  
the b'' syntax was new to me. Explained here. –  cod3monk3y Feb 18 at 5:19

Here's my version of @Piotr Czapla's method:

def md5sum(filename):
    md5 = hashlib.md5()
    with open(filename, 'rb') as f:
        for chunk in iter(lambda: f.read(128 * md5.block_size), b''):
            md5.update(chunk)
    return md5.hexdigest()
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Using multiple comment/answers in this thread, here is my solution :

import hashlib
def md5_for_file(path, block_size=256*128, hr=False):
    '''
    Block size directly depends on the block size of your filesystem
    to avoid performances issues
    Here I have blocks of 4096 octets (Default NTFS)
    '''
    md5 = hashlib.md5()
    with open(path,'rb') as f: 
        for chunk in iter(lambda: f.read(block_size), b''): 
             md5.update(chunk)
    if hr:
        return md5.hexdigest()
    return md5.digest()
  • This is "pythonic"
  • This is a function
  • It avoids implicit values: always prefer explicit ones.
  • It allows (very important) performances optimizations

And finally,

- This has been built by a community, thanks all for your advices/ideas.

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3  
One suggestion: make your md5 object an optional parameter of the function to allow alternate hashing functions, such as sha256 to easily replace MD5. I'll propose this as an edit, as well. –  Hawkwing Aug 15 '13 at 19:41
1  
also: digest is not human-readable. hexdigest() allows a more understandable, commonly recogonizable output as well as easier exchange of the hash –  Hawkwing Aug 15 '13 at 19:51
    
Others hash formats are out of the scope of the question, but the suggestion is relevant for a more generic function. I added a "human readable" option according to your 2nd suggestion. –  Sabbasth Aug 27 '13 at 8:17

You need to read the file in chunks of suitable size:

def md5_for_file(f, block_size=2**20):
    md5 = hashlib.md5()
    while True:
        data = f.read(block_size)
        if not data:
            break
        md5.update(data)
    return md5.digest()
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Thanks for this example. –  JustRegisterMe Jul 15 '09 at 13:09
    
Awesome example. –  Honza Pokorny Dec 28 '10 at 18:33
21  
What's important to notice is that the file which is passed to this function must be opened in binary mode, i.e. by passing rb to the open function. –  Frerich Raabe Jul 21 '11 at 13:02
8  
This is a simple addition, but using hexdigest instead of digest will produce a hexadecimal hash that "looks" like most examples of hashes. –  tchaymore Oct 16 '11 at 2:26
1  
Erik, no, why would it be? The goal is to feed all bytes to MD5, until the end of the file. Getting a partial block does not mean all the bytes should not be fed to the checksum. –  Lars Wirzenius Nov 2 '12 at 20:12

u can't get it's md5 without read full content. but u can use update function to read the files content block by block.
m.update(a); m.update(b) is equivalent to m.update(a+b)

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Thank you for help. –  JustRegisterMe Jul 15 '09 at 13:13

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