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

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

I struggled though to find a way to actually down load the file in Python, thus why I resorted to wget.

So, how do I download the file using Python?

share|improve this question

13 Answers 13

up vote 264 down vote accepted

In Python 2, use urllib2 which comes with the standard library.

import urllib2
response = urllib2.urlopen('http://www.example.com/')
html = response.read()

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. The documentation can be found here.

share|improve this answer
10  
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
39  
This has changed in python 3. It should be noted that this solution is for 2.* version of Python. – Jono Nov 15 '10 at 3:38
26  
Here is the Python 3 solution: stackoverflow.com/questions/7243750/… – tommy.carstensen Feb 25 '14 at 12:09
5  
Just for reference. The way to urlencode the path is urllib2.quote – André Puel Aug 2 '14 at 2:09
2  
@JasonSundram: If there are spaces in it, it isn't a URI. – Zaz Oct 1 '15 at 2:51

One more, using urlretrieve:

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

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()
share|improve this answer
    
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
4  
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
2  
@PabloG it's a tiny bit more than 31 votes now ;) Anyway, status bar was fun so i'll +1 – AnojiRox Mar 28 '13 at 17:35

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.

share|improve this answer
2  
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
4  
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
6  
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
1  
@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 at 18:44
1  
+1 for requests. best lib out there and 1000x better than the native urllib2 – brianSan Mar 11 at 16:45
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.

share|improve this answer
19  
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
1  
@tripplet so how would we fix that? – Lucas Henrique Jul 30 '15 at 15:10
2  
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

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

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, desc=None):
    u = urllib2.urlopen(url)

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

url = "http://download.thinkbroadband.com/10MB.zip"
filename = download_file(url)
print(filename)
share|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

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

share|improve this answer
1  
No option to save with custom filename ? – Alex May 21 '14 at 15:29
1  
@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

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()
share|improve this answer

Here's how to do it in Python 3 using the standard library:

  • 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')
    
share|improve this answer

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)
share|improve this answer

use wget module:

import wget
wget.download('url')
share|improve this answer

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()
share|improve this answer
2  
cls doesn't do anything on my OS X or nor on an Ubuntu server of mine. Some clarification could be good. – Kasper Souren 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
1  
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

Source code can be:

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

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.

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