Requests is a really nice library. I'd like to use it for download big files (>1GB). The problem is it's not possible to keep whole file in memory I need to read it in chunks. And this is a problem with the following code

import requests

def DownloadFile(url)
    local_filename = url.split('/')[-1]
    r = requests.get(url)
    f = open(local_filename, 'wb')
    for chunk in r.iter_content(chunk_size=512 * 1024): 
        if chunk: # filter out keep-alive new chunks
            f.write(chunk)
    f.close()
    return 

By some reason it doesn't work this way. It still loads response into memory before save it to a file.

UPDATE

If you need a small client (Python 2.x /3.x) which can download big files from FTP, you can find it here. It supports multithreading & reconnects (it does monitor connections) also it tunes socket params for the download task.

up vote 490 down vote accepted

I figured out what should be changed. The trick was to set stream = True in the get() method.

After this python process stopped to suck memory (stays around 30kb regardless size of the download file).

Thank you @danodonovan for you syntax I use it here:

def download_file(url):
    local_filename = url.split('/')[-1]
    # NOTE the stream=True parameter
    r = requests.get(url, stream=True)
    with open(local_filename, 'wb') as f:
        for chunk in r.iter_content(chunk_size=1024): 
            if chunk: # filter out keep-alive new chunks
                f.write(chunk)
                #f.flush() commented by recommendation from J.F.Sebastian
    return local_filename

See http://docs.python-requests.org/en/latest/user/advanced/#body-content-workflow for further reference.

  • 8
    @Shuman As I see you resolved the issue when switched from http:// to https:// (github.com/kennethreitz/requests/issues/2043). Can you please update or delete your comments because people may think that there are issues with the code for files bigger 1024Mb – Roman Podlinov May 14 '14 at 18:15
  • 7
    the chunk_size is crucial. by default it's 1 (1 byte). that means that for 1MB it'll make 1 milion iterations. docs.python-requests.org/en/latest/api/… – Eduard Gamonal Mar 25 '15 at 13:06
  • 2
    f.flush() seems unnecessary. What are you trying to accomplish using it? (your memory usage won't be 1.5gb if you drop it). f.write(b'') (if iter_content() may return an empty string) should be harmless and therefore if chunk could be dropped too. – jfs Sep 28 '15 at 1:40
  • 9
    @RomanPodlinov: f.flush() doesn't flush data to physical disk. It transfers the data to OS. Usually, it is enough unless there is a power failure. f.flush() makes the code slower here for no reason. The flush happens when the correponding file buffer (inside app) is full. If you need more frequent writes; pass buf.size parameter to open(). – jfs Sep 28 '15 at 19:08
  • 7
    Don't forget to close the connection with r.close() – 0xcaff Nov 25 '15 at 0:49

It's much easier if you use Response.raw and shutil.copyfileobj():

import requests
import shutil

def download_file(url):
    local_filename = url.split('/')[-1]
    r = requests.get(url, stream=True)
    with open(local_filename, 'wb') as f:
        shutil.copyfileobj(r.raw, f)

    return local_filename

This streams the file to disk without using excessive memory, and the code is simple.

  • 5
    Note that you may need to adjust when streaming gzipped responses per issue 2155. – ChrisP Sep 29 '16 at 1:15
  • 8
    THIS should be the correct answer! The accepted answer gets you up to 2-3MB/s. Using copyfileobj gets you to ~40MB/s. Curl downloads (same machines, same url, etc) with ~50-55 MB/s. – visoft Jul 12 '17 at 7:05
  • 15
    To make sure the Requests connection gets released, you can use a second (nested) with block to make the request: with requests.get(url, stream=True) as r: – Christian Long Nov 22 '17 at 22:26
  • 5
    @ChristianLong: That's true, but only very recently, as the feature to support with requests.get() was only merged on 2017-06-07! Your suggestion is reasonable for people who have Requests 2.18.0 or later. Ref: github.com/requests/requests/issues/4136 – John Zwinck Nov 23 '17 at 0:36
  • 3
    A small caveat for using .raw is that it does not handle decoding. Mentioned in the docs here: docs.python-requests.org/en/master/user/quickstart/… – Eric Cousineau Dec 17 '17 at 1:03

Your chunk size could be too large, have you tried dropping that - maybe 1024 bytes at a time? (also, you could use with to tidy up the syntax)

def DownloadFile(url):
    local_filename = url.split('/')[-1]
    r = requests.get(url)
    with open(local_filename, 'wb') as f:
        for chunk in r.iter_content(chunk_size=1024): 
            if chunk: # filter out keep-alive new chunks
                f.write(chunk)
    return 

Incidentally, how are you deducing that the response has been loaded into memory?

It sounds as if python isn't flushing the data to file, from other SO questions you could try f.flush() and os.fsync() to force the file write and free memory;

    with open(local_filename, 'wb') as f:
        for chunk in r.iter_content(chunk_size=1024): 
            if chunk: # filter out keep-alive new chunks
                f.write(chunk)
                f.flush()
                os.fsync(f.fileno())
  • 1
    I use System Monitor in Kubuntu. It shows me that python process memory increases (up to 1.5gb from 25kb). – Roman Podlinov May 22 '13 at 15:22
  • That memory bloat sucks, maybe f.flush(); os.fsync() might force a write an memory free. – danodonovan May 22 '13 at 15:39
  • 2
    it's os.fsync(f.fileno()) – sebdelsol Oct 10 '14 at 23:40
  • 18
    You need to use stream=True in the requests.get() call. That's what's causing the memory bloat. – Hut8 May 10 '15 at 21:59
  • 1
    minor typo: you miss a colon (':') after def DownloadFile(url) – Aubrey Jan 4 '17 at 15:43

Not exactly what OP was asking, but... it's ridiculously easy to do that with urllib:

from urllib.request import urlretrieve
url = 'http://mirror.pnl.gov/releases/16.04.2/ubuntu-16.04.2-desktop-amd64.iso'
dst = 'ubuntu-16.04.2-desktop-amd64.iso'
urlretrieve(url, dst)

Or this way, if you want to save it to a temporary file:

from urllib.request import urlopen
from shutil import copyfileobj
from tempfile import NamedTemporaryFile
url = 'http://mirror.pnl.gov/releases/16.04.2/ubuntu-16.04.2-desktop-amd64.iso'
with urlopen(url) as fsrc, NamedTemporaryFile(delete=False) as fdst:
    copyfileobj(fsrc, fdst)

I watched the process:

watch 'ps -p 18647 -o pid,ppid,pmem,rsz,vsz,comm,args; ls -al *.iso'

And I saw the file growing, but memory usage stayed at 17 MB. Am I missing something?

  • 2
    For Python 2.x, use from urllib import urlretrieve – Vadim Kotov Apr 9 at 14:19

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