899

I have a small utility that I use to download an MP3 file from a website on a schedule and then builds/updates a podcast XML file which I've added to iTunes.

The text processing that creates/updates the XML file is written in Python. However, I use wget inside a Windows .bat file to download the actual MP3 file. I would prefer to have the entire utility written in Python.

I struggled to find a way to actually download the file in Python, thus why I resorted to using wget.

So, how do I download the file using Python?

  • Many of the answers below are not a satisfactory replacement for wget. Among other things, wget (1) preserves timestamps (2) auto-determines filename from url, appending .1 (etc.) if the file already exists (3) has many other options, some of which you may have put in your .wgetrc. If you want any of those, you have to implement them yourself in Python, but it's simpler to just invoke wget from Python. – ShreevatsaR Sep 27 '16 at 17:22
  • 2
    Short solution for Python 3: import urllib.request; s = urllib.request.urlopen('http://example.com/').read().decode() – Basj Nov 26 '19 at 9:47

25 Answers 25

463

Use urllib.request.urlopen():

import urllib.request
with urllib.request.urlopen('http://www.example.com/') as f:
    html = f.read().decode('utf-8')

This is the most basic way to use the library, minus any error handling. You can also do more complex stuff such as changing headers.

On Python 2, the method is in urllib2:

import urllib2
response = urllib2.urlopen('http://www.example.com/')
html = response.read()
| improve this answer | |
  • 12
    This won't work if there are spaces in the url you provide. In that case, you'll need to parse the url and urlencode the path. – Jason Sundram Apr 14 '10 at 21:17
  • 95
    Here is the Python 3 solution: stackoverflow.com/questions/7243750/… – tommy.carstensen Feb 25 '14 at 12:09
  • 6
    Just for reference. The way to urlencode the path is urllib2.quote – André Puel Aug 2 '14 at 2:09
  • 11
    @JasonSundram: If there are spaces in it, it isn't a URI. – Zaz Oct 1 '15 at 2:51
  • 1
    This does not work on windows with larger files. You need to read all blocks! – Avia Oct 10 '16 at 22:47
1137

One more, using urlretrieve:

import urllib
urllib.urlretrieve ("http://www.example.com/songs/mp3.mp3", "mp3.mp3")

(for Python 3+ use import urllib.request and urllib.request.urlretrieve)

Yet another one, with a "progressbar"

import urllib2

url = "http://download.thinkbroadband.com/10MB.zip"

file_name = url.split('/')[-1]
u = urllib2.urlopen(url)
f = open(file_name, 'wb')
meta = u.info()
file_size = int(meta.getheaders("Content-Length")[0])
print "Downloading: %s Bytes: %s" % (file_name, file_size)

file_size_dl = 0
block_sz = 8192
while True:
    buffer = u.read(block_sz)
    if not buffer:
        break

    file_size_dl += len(buffer)
    f.write(buffer)
    status = r"%10d  [%3.2f%%]" % (file_size_dl, file_size_dl * 100. / file_size)
    status = status + chr(8)*(len(status)+1)
    print status,

f.close()
| improve this answer | |
  • 1
    Oddly enough, this worked for me on Windows when the urllib2 method wouldn't. The urllib2 method worked on Mac, though. – InFreefall May 15 '11 at 21:49
  • 6
    Bug: file_size_dl += block_sz should be += len(buffer) since the last read is often not a full block_sz. Also on windows you need to open the output file as "wb" if it isn't a text file. – Eggplant Jeff May 25 '11 at 17:53
  • 1
    Me too urllib and urllib2 didn't work but urlretrieve worked well, was getting frustrated - thanks :) – funk-shun Jul 12 '11 at 6:08
  • 2
    Wrap the whole thing (except the definition of file_name) with if not os.path.isfile(file_name): to avoid overwriting podcasts! useful when running it as a cronjob with the urls found in a .html file – Sriram Murali May 1 '12 at 20:15
  • I have a suggestion, using .format() instead of % string formatting and sys.stdout.write(): gist.github.com/3176958 – Savvas Radevic Jul 25 '12 at 16:06
356

In 2012, use the python requests library

>>> import requests
>>> 
>>> url = "http://download.thinkbroadband.com/10MB.zip"
>>> r = requests.get(url)
>>> print len(r.content)
10485760

You can run pip install requests to get it.

Requests has many advantages over the alternatives because the API is much simpler. This is especially true if you have to do authentication. urllib and urllib2 are pretty unintuitive and painful in this case.


2015-12-30

People have expressed admiration for the progress bar. It's cool, sure. There are several off-the-shelf solutions now, including tqdm:

from tqdm import tqdm
import requests

url = "http://download.thinkbroadband.com/10MB.zip"
response = requests.get(url, stream=True)

with open("10MB", "wb") as handle:
    for data in tqdm(response.iter_content()):
        handle.write(data)

This is essentially the implementation @kvance described 30 months ago.

| improve this answer | |
  • how do I save or extract if the zip file is actually a folder with many files in it? – Abdul Muneer Jul 5 '12 at 21:13
  • 6
    How does this handle large files, does everything get stored into memory or can this be written to a file without large memory requirement? – bibstha Dec 17 '12 at 16:05
  • 8
    It is possible to stream large files by setting stream=True in the request. You can then call iter_content() on the response to read a chunk at a time. – kvance Jul 28 '13 at 17:14
  • 7
    Why would a url library need to have a file unzip facility? Read the file from the url, save it and then unzip it in whatever way floats your boat. Also a zip file is not a 'folder' like it shows in windows, Its a file. – Harel Nov 15 '13 at 16:36
  • 2
    @Ali: r.text: For text or unicode content. Returned as unicode. r.content: For binary content. Returned as bytes. Read about it here: docs.python-requests.org/en/latest/user/quickstart – hughdbrown Jan 17 '16 at 18:44
159
import urllib2
mp3file = urllib2.urlopen("http://www.example.com/songs/mp3.mp3")
with open('test.mp3','wb') as output:
  output.write(mp3file.read())

The wb in open('test.mp3','wb') opens a file (and erases any existing file) in binary mode so you can save data with it instead of just text.

| improve this answer | |
  • 31
    The disadvantage of this solution is, that the entire file is loaded into ram before saved to disk, just something to keep in mind if using this for large files on a small system like a router with limited ram. – tripplet Nov 18 '12 at 13:33
  • 2
    @tripplet so how would we fix that? – Lucas Henrique Jul 30 '15 at 15:10
  • 11
    To avoid reading the whole file into memory, try passing an argument to file.read that is the number of bytes to read. See: gist.github.com/hughdbrown/c145b8385a2afa6570e2 – hughdbrown Oct 7 '15 at 16:02
  • @hughdbrown I found your script useful, but have one question: can I use the file for post-processing? suppose I download a jpg file that I want to process with OpenCV, can I use the 'data' variable to keep working? or do I have to read it again from the downloaded file? – Rodrigo E. Principe Nov 16 '16 at 12:29
  • 5
    Use shutil.copyfileobj(mp3file, output) instead. – Aurélien Ooms Nov 6 '17 at 14:20
135

Python 3

  • urllib.request.urlopen

    import urllib.request
    response = urllib.request.urlopen('http://www.example.com/')
    html = response.read()
    
  • urllib.request.urlretrieve

    import urllib.request
    urllib.request.urlretrieve('http://www.example.com/songs/mp3.mp3', 'mp3.mp3')
    

    Note: According to the documentation, urllib.request.urlretrieve is a "legacy interface" and "might become deprecated in the future" (thanks gerrit)

Python 2

  • urllib2.urlopen (thanks Corey)

    import urllib2
    response = urllib2.urlopen('http://www.example.com/')
    html = response.read()
    
  • urllib.urlretrieve (thanks PabloG)

    import urllib
    urllib.urlretrieve('http://www.example.com/songs/mp3.mp3', 'mp3.mp3')
    
| improve this answer | |
  • 2
    It sure took a while, but there, finally is the easy straightforward api I expect from a python stdlib :) – ThorSummoner Aug 4 '17 at 20:52
  • Very nice answer for python3, see also docs.python.org/3/library/… – Edouard Thiel Dec 23 '19 at 10:31
  • @EdouardThiel If you click on urllib.request.urlretrieve above it'll bring you to that exact link. Cheers! – bmaupin Dec 23 '19 at 14:44
  • 2
    urllib.request.urlretrieve is documented as a "legacy interface" and "might become deprecated in the future". – gerrit Mar 27 at 17:32
  • You should mention that you are getting a bunch of bytes that need to be handled after that. – thoroc Jun 14 at 13:02
36

use wget module:

import wget
wget.download('url')
| improve this answer | |
27
import os,requests
def download(url):
    get_response = requests.get(url,stream=True)
    file_name  = url.split("/")[-1]
    with open(file_name, 'wb') as f:
        for chunk in get_response.iter_content(chunk_size=1024):
            if chunk: # filter out keep-alive new chunks
                f.write(chunk)


download("https://example.com/example.jpg")
| improve this answer | |
21

An improved version of the PabloG code for Python 2/3:

#!/usr/bin/env python
# -*- coding: utf-8 -*-
from __future__ import ( division, absolute_import, print_function, unicode_literals )

import sys, os, tempfile, logging

if sys.version_info >= (3,):
    import urllib.request as urllib2
    import urllib.parse as urlparse
else:
    import urllib2
    import urlparse

def download_file(url, dest=None):
    """ 
    Download and save a file specified by url to dest directory,
    """
    u = urllib2.urlopen(url)

    scheme, netloc, path, query, fragment = urlparse.urlsplit(url)
    filename = os.path.basename(path)
    if not filename:
        filename = 'downloaded.file'
    if dest:
        filename = os.path.join(dest, filename)

    with open(filename, 'wb') as f:
        meta = u.info()
        meta_func = meta.getheaders if hasattr(meta, 'getheaders') else meta.get_all
        meta_length = meta_func("Content-Length")
        file_size = None
        if meta_length:
            file_size = int(meta_length[0])
        print("Downloading: {0} Bytes: {1}".format(url, file_size))

        file_size_dl = 0
        block_sz = 8192
        while True:
            buffer = u.read(block_sz)
            if not buffer:
                break

            file_size_dl += len(buffer)
            f.write(buffer)

            status = "{0:16}".format(file_size_dl)
            if file_size:
                status += "   [{0:6.2f}%]".format(file_size_dl * 100 / file_size)
            status += chr(13)
            print(status, end="")
        print()

    return filename

if __name__ == "__main__":  # Only run if this file is called directly
    print("Testing with 10MB download")
    url = "http://download.thinkbroadband.com/10MB.zip"
    filename = download_file(url)
    print(filename)
| improve this answer | |
  • I would remove the parentheses from the first line, because it is not too old feature. – Arpad Horvath May 30 '13 at 19:37
21

Simple yet Python 2 & Python 3 compatible way comes with six library:

from six.moves import urllib
urllib.request.urlretrieve("http://www.example.com/songs/mp3.mp3", "mp3.mp3")
| improve this answer | |
  • 1
    This is the best way to do it for 2+3 compatibility. – Fush Dec 27 '17 at 6:13
18

Wrote wget library in pure Python just for this purpose. It is pumped up urlretrieve with these features as of version 2.0.

| improve this answer | |
  • 3
    No option to save with custom filename ? – Alex May 21 '14 at 15:29
  • 2
    @Alex added -o FILENAME option to version 2.1 – anatoly techtonik Jul 10 '14 at 11:04
  • The progress bar does not appear when I use this module under Cygwin. – Joe Coder May 6 '15 at 7:40
  • You should change from -o to -O to avoid confusion, as it is in GNU wget. Or at least both options should be valid. – erik Jul 17 '15 at 15:46
  • @eric I am not sure that I want to make wget.py an in-place replacement for real wget. The -o already behaves differently - it is compatible with curl this way. Would a note in documentation help to resolve the issue? Or it is the essential feature for an utility with such name to be command line compatible? – anatoly techtonik Jul 17 '15 at 20:24
16

Following are the most commonly used calls for downloading files in python:

  1. urllib.urlretrieve ('url_to_file', file_name)

  2. urllib2.urlopen('url_to_file')

  3. requests.get(url)

  4. wget.download('url', file_name)

Note: urlopen and urlretrieve are found to perform relatively bad with downloading large files (size > 500 MB). requests.get stores the file in-memory until download is complete.

| improve this answer | |
14

I agree with Corey, urllib2 is more complete than urllib and should likely be the module used if you want to do more complex things, but to make the answers more complete, urllib is a simpler module if you want just the basics:

import urllib
response = urllib.urlopen('http://www.example.com/sound.mp3')
mp3 = response.read()

Will work fine. Or, if you don't want to deal with the "response" object you can call read() directly:

import urllib
mp3 = urllib.urlopen('http://www.example.com/sound.mp3').read()
| improve this answer | |
12

In python3 you can use urllib3 and shutil libraires. Download them by using pip or pip3 (Depending whether python3 is default or not)

pip3 install urllib3 shutil

Then run this code

import urllib.request
import shutil

url = "http://www.somewebsite.com/something.pdf"
output_file = "save_this_name.pdf"
with urllib.request.urlopen(url) as response, open(output_file, 'wb') as out_file:
    shutil.copyfileobj(response, out_file)

Note that you download urllib3 but use urllib in code

| improve this answer | |
9

If you have wget installed, you can use parallel_sync.

pip install parallel_sync

from parallel_sync import wget
urls = ['http://something.png', 'http://somthing.tar.gz', 'http://somthing.zip']
wget.download('/tmp', urls)
# or a single file:
wget.download('/tmp', urls[0], filenames='x.zip', extract=True)

Doc: https://pythonhosted.org/parallel_sync/pages/examples.html

This is pretty powerful. It can download files in parallel, retry upon failure , and it can even download files on a remote machine.

| improve this answer | |
  • Note this is for Linux only – jjj Sep 7 '17 at 18:18
7

You can get the progress feedback with urlretrieve as well:

def report(blocknr, blocksize, size):
    current = blocknr*blocksize
    sys.stdout.write("\r{0:.2f}%".format(100.0*current/size))

def downloadFile(url):
    print "\n",url
    fname = url.split('/')[-1]
    print fname
    urllib.urlretrieve(url, fname, report)
| improve this answer | |
5

Just for the sake of completeness, it is also possible to call any program for retrieving files using the subprocess package. Programs dedicated to retrieving files are more powerful than Python functions like urlretrieve. For example, wget can download directories recursively (-R), can deal with FTP, redirects, HTTP proxies, can avoid re-downloading existing files (-nc), and aria2 can do multi-connection downloads which can potentially speed up your downloads.

import subprocess
subprocess.check_output(['wget', '-O', 'example_output_file.html', 'https://example.com'])

In Jupyter Notebook, one can also call programs directly with the ! syntax:

!wget -O example_output_file.html https://example.com
| improve this answer | |
4

If speed matters to you, I made a small performance test for the modules urllib and wget, and regarding wget I tried once with status bar and once without. I took three different 500MB files to test with (different files- to eliminate the chance that there is some caching going on under the hood). Tested on debian machine, with python2.

First, these are the results (they are similar in different runs):

$ python wget_test.py 
urlretrive_test : starting
urlretrive_test : 6.56
==============
wget_no_bar_test : starting
wget_no_bar_test : 7.20
==============
wget_with_bar_test : starting
100% [......................................................................] 541335552 / 541335552
wget_with_bar_test : 50.49
==============

The way I performed the test is using "profile" decorator. This is the full code:

import wget
import urllib
import time
from functools import wraps

def profile(func):
    @wraps(func)
    def inner(*args):
        print func.__name__, ": starting"
        start = time.time()
        ret = func(*args)
        end = time.time()
        print func.__name__, ": {:.2f}".format(end - start)
        return ret
    return inner

url1 = 'http://host.com/500a.iso'
url2 = 'http://host.com/500b.iso'
url3 = 'http://host.com/500c.iso'

def do_nothing(*args):
    pass

@profile
def urlretrive_test(url):
    return urllib.urlretrieve(url)

@profile
def wget_no_bar_test(url):
    return wget.download(url, out='/tmp/', bar=do_nothing)

@profile
def wget_with_bar_test(url):
    return wget.download(url, out='/tmp/')

urlretrive_test(url1)
print '=============='
time.sleep(1)

wget_no_bar_test(url2)
print '=============='
time.sleep(1)

wget_with_bar_test(url3)
print '=============='
time.sleep(1)

urllib seems to be the fastest

| improve this answer | |
  • There must be something completely horrible going on under the hood to make the bar increase the time so much. – Alistair Carscadden Sep 10 '18 at 6:39
3

Source code can be:

import urllib
sock = urllib.urlopen("http://diveintopython.org/")
htmlSource = sock.read()                            
sock.close()                                        
print htmlSource  
| improve this answer | |
3

You can use PycURL on Python 2 and 3.

import pycurl

FILE_DEST = 'pycurl.html'
FILE_SRC = 'http://pycurl.io/'

with open(FILE_DEST, 'wb') as f:
    c = pycurl.Curl()
    c.setopt(c.URL, FILE_SRC)
    c.setopt(c.WRITEDATA, f)
    c.perform()
    c.close()
| improve this answer | |
2

I wrote the following, which works in vanilla Python 2 or Python 3.


import sys
try:
    import urllib.request
    python3 = True
except ImportError:
    import urllib2
    python3 = False


def progress_callback_simple(downloaded,total):
    sys.stdout.write(
        "\r" +
        (len(str(total))-len(str(downloaded)))*" " + str(downloaded) + "/%d"%total +
        " [%3.2f%%]"%(100.0*float(downloaded)/float(total))
    )
    sys.stdout.flush()

def download(srcurl, dstfilepath, progress_callback=None, block_size=8192):
    def _download_helper(response, out_file, file_size):
        if progress_callback!=None: progress_callback(0,file_size)
        if block_size == None:
            buffer = response.read()
            out_file.write(buffer)

            if progress_callback!=None: progress_callback(file_size,file_size)
        else:
            file_size_dl = 0
            while True:
                buffer = response.read(block_size)
                if not buffer: break

                file_size_dl += len(buffer)
                out_file.write(buffer)

                if progress_callback!=None: progress_callback(file_size_dl,file_size)
    with open(dstfilepath,"wb") as out_file:
        if python3:
            with urllib.request.urlopen(srcurl) as response:
                file_size = int(response.getheader("Content-Length"))
                _download_helper(response,out_file,file_size)
        else:
            response = urllib2.urlopen(srcurl)
            meta = response.info()
            file_size = int(meta.getheaders("Content-Length")[0])
            _download_helper(response,out_file,file_size)

import traceback
try:
    download(
        "https://geometrian.com/data/programming/projects/glLib/glLib%20Reloaded%200.5.9/0.5.9.zip",
        "output.zip",
        progress_callback_simple
    )
except:
    traceback.print_exc()
    input()

Notes:

  • Supports a "progress bar" callback.
  • Download is a 4 MB test .zip from my website.
| improve this answer | |
  • works great, run it through jupyter got what i want :-) – Samir Ouldsaadi Sep 26 '18 at 7:14
2

This may be a little late, But I saw pabloG's code and couldn't help adding a os.system('cls') to make it look AWESOME! Check it out :

    import urllib2,os

    url = "http://download.thinkbroadband.com/10MB.zip"

    file_name = url.split('/')[-1]
    u = urllib2.urlopen(url)
    f = open(file_name, 'wb')
    meta = u.info()
    file_size = int(meta.getheaders("Content-Length")[0])
    print "Downloading: %s Bytes: %s" % (file_name, file_size)
    os.system('cls')
    file_size_dl = 0
    block_sz = 8192
    while True:
        buffer = u.read(block_sz)
        if not buffer:
            break

        file_size_dl += len(buffer)
        f.write(buffer)
        status = r"%10d  [%3.2f%%]" % (file_size_dl, file_size_dl * 100. / file_size)
        status = status + chr(8)*(len(status)+1)
        print status,

    f.close()

If running in an environment other than Windows, you will have to use something other then 'cls'. In MAC OS X and Linux it should be 'clear'.

| improve this answer | |
  • 3
    cls doesn't do anything on my OS X or nor on an Ubuntu server of mine. Some clarification could be good. – kqw Sep 24 '14 at 21:57
  • I think you should use clear for linux, or even better replace the print line instead of clearing the whole command line output. – Arijoon Jan 21 '15 at 1:01
  • 4
    this answer just copies another answer and adds a call to a deprecated function (os.system()) that launches a subprocess to clear the screen using a platform specific command (cls). How does this have any upvotes?? Utterly worthless "answer" IMHO. – Corey Goldberg Dec 11 '15 at 19:56
1

urlretrieve and requests.get are simple, however the reality not. I have fetched data for couple sites, including text and images, the above two probably solve most of the tasks. but for a more universal solution I suggest the use of urlopen. As it is included in Python 3 standard library, your code could run on any machine that run Python 3 without pre-installing site-package

import urllib.request
url_request = urllib.request.Request(url, headers=headers)
url_connect = urllib.request.urlopen(url_request)

#remember to open file in bytes mode
with open(filename, 'wb') as f:
    while True:
        buffer = url_connect.read(buffer_size)
        if not buffer: break

        #an integer value of size of written data
        data_wrote = f.write(buffer)

#you could probably use with-open-as manner
url_connect.close()

This answer provides a solution to HTTP 403 Forbidden when downloading file over http using Python. I have tried only requests and urllib modules, the other module may provide something better, but this is the one I used to solve most of the problems.

| improve this answer | |
1

I wanted do download all the files from a webpage. I tried wget but it was failing so I decided for the Python route and I found this thread.

After reading it, I have made a little command line application, soupget, expanding on the excellent answers of PabloG and Stan and adding some useful options.

It uses BeatifulSoup to collect all the URLs of the page and then download the ones with the desired extension(s). Finally it can download multiple files in parallel.

Here it is:

#!/usr/bin/env python3
# -*- coding: utf-8 -*-
from __future__ import (division, absolute_import, print_function, unicode_literals)
import sys, os, argparse
from bs4 import BeautifulSoup

# --- insert Stan's script here ---
# if sys.version_info >= (3,): 
#...
#...
# def download_file(url, dest=None): 
#...
#...

# --- new stuff ---
def collect_all_url(page_url, extensions):
    """
    Recovers all links in page_url checking for all the desired extensions
    """
    conn = urllib2.urlopen(page_url)
    html = conn.read()
    soup = BeautifulSoup(html, 'lxml')
    links = soup.find_all('a')

    results = []    
    for tag in links:
        link = tag.get('href', None)
        if link is not None: 
            for e in extensions:
                if e in link:
                    # Fallback for badly defined links
                    # checks for missing scheme or netloc
                    if bool(urlparse.urlparse(link).scheme) and bool(urlparse.urlparse(link).netloc):
                        results.append(link)
                    else:
                        new_url=urlparse.urljoin(page_url,link)                        
                        results.append(new_url)
    return results

if __name__ == "__main__":  # Only run if this file is called directly
    # Command line arguments
    parser = argparse.ArgumentParser(
        description='Download all files from a webpage.')
    parser.add_argument(
        '-u', '--url', 
        help='Page url to request')
    parser.add_argument(
        '-e', '--ext', 
        nargs='+',
        help='Extension(s) to find')    
    parser.add_argument(
        '-d', '--dest', 
        default=None,
        help='Destination where to save the files')
    parser.add_argument(
        '-p', '--par', 
        action='store_true', default=False, 
        help="Turns on parallel download")
    args = parser.parse_args()

    # Recover files to download
    all_links = collect_all_url(args.url, args.ext)

    # Download
    if not args.par:
        for l in all_links:
            try:
                filename = download_file(l, args.dest)
                print(l)
            except Exception as e:
                print("Error while downloading: {}".format(e))
    else:
        from multiprocessing.pool import ThreadPool
        results = ThreadPool(10).imap_unordered(
            lambda x: download_file(x, args.dest), all_links)
        for p in results:
            print(p)

An example of its usage is:

python3 soupget.py -p -e <list of extensions> -d <destination_folder> -u <target_webpage>

And an actual example if you want to see it in action:

python3 soupget.py -p -e .xlsx .pdf .csv -u https://healthdata.gov/dataset/chemicals-cosmetics
| improve this answer | |
0

Late answer, but for python>=3.6 you can use:

import dload
dload.save(url)

Install dload with:

pip3 install dload
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0

Another way is to call an external process such as curl.exe. Curl by default displays a progress bar, average download speed, time left, and more all formatted neatly in a table. Put curl.exe in the same directory as your script

from subprocess import call
url = ""
call(["curl", {url}, '--output', "song.mp3"])

Note: You cannot specify an output path with curl, so do an os.rename afterwards

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