How to download a file using python in a 'smarter' way?
Question:
I need to download several files via http in Python.
The most obvious way to do it is just using urllib2:
import urllib2
u = urllib2.urlopen('http://server.com/file.html')
localFile = open('file.html', 'w')
localFile.write(u.read())
localFile.close()
But I’ll have to deal with the URLs that are nasty in some way, say like this: http://server.com/!Run.aspx/someoddtext/somemore?id=121&m=pdf. When downloaded via the browser, the file has a human-readable name, ie. accounts.pdf.
Is there any way to handle that in python, so I don’t need to know the file names and hardcode them into my script?
Answers:
Download scripts like that tend to push a header telling the user-agent what to name the file:
Content-Disposition: attachment; filename="the filename.ext"
If you can grab that header, you can get the proper filename.
There’s another thread that has a little bit of code to offer up for Content-Disposition-grabbing.
remotefile = urllib2.urlopen('http://example.com/somefile.zip')
remotefile.info()['Content-Disposition']
Based on comments and @Oli’s anwser, I made a solution like this:
from os.path import basename
from urlparse import urlsplit
def url2name(url):
return basename(urlsplit(url)[2])
def download(url, localFileName = None):
localName = url2name(url)
req = urllib2.Request(url)
r = urllib2.urlopen(req)
if r.info().has_key('Content-Disposition'):
# If the response has Content-Disposition, we take file name from it
localName = r.info()['Content-Disposition'].split('filename=')[1]
if localName[0] == '"' or localName[0] == "'":
localName = localName[1:-1]
elif r.url != url:
# if we were redirected, the real file name we take from the final URL
localName = url2name(r.url)
if localFileName:
# we can force to save the file as specified name
localName = localFileName
f = open(localName, 'wb')
f.write(r.read())
f.close()
It takes file name from Content-Disposition; if it’s not present, uses filename from the URL (if redirection happened, the final URL is taken into account).
Combining much of the above, here is a more pythonic solution:
import urllib2
import shutil
import urlparse
import os
def download(url, fileName=None):
def getFileName(url,openUrl):
if 'Content-Disposition' in openUrl.info():
# If the response has Content-Disposition, try to get filename from it
cd = dict(map(
lambda x: x.strip().split('=') if '=' in x else (x.strip(),''),
openUrl.info()['Content-Disposition'].split(';')))
if 'filename' in cd:
filename = cd['filename'].strip(""'")
if filename: return filename
# if no filename was found above, parse it out of the final URL.
return os.path.basename(urlparse.urlsplit(openUrl.url)[2])
r = urllib2.urlopen(urllib2.Request(url))
try:
fileName = fileName or getFileName(url,r)
with open(fileName, 'wb') as f:
shutil.copyfileobj(r,f)
finally:
r.close()
2 Kender:
if localName[0] == '"' or localName[0] == "'":
localName = localName[1:-1]
it is not safe — web server can pass wrong formatted name as [“file.ext] or [file.ext’] or even be empty and localName[0] will raise exception.
Correct code can looks like this:
localName = localName.replace('"', '').replace("'", "")
if localName == '':
localName = SOME_DEFAULT_FILE_NAME
Using wget:
custom_file_name = "/custom/path/custom_name.ext"
wget.download(url, custom_file_name)
Using urlretrieve:
urllib.urlretrieve(url, custom_file_name)
urlretrieve also creates the directory structure if not exists.
You need to look into 'Content-Disposition' header, see the solution by kender.
How to download a file using python in a ‘smarter’ way?
Posting his solution modified with a capability to specify an output folder:
from os.path import basename
import os
from urllib.parse import urlsplit
import urllib.request
def url2name(url):
return basename(urlsplit(url)[2])
def download(url, out_path):
localName = url2name(url)
req = urllib.request.Request(url)
r = urllib.request.urlopen(req)
if r.info().has_key('Content-Disposition'):
# If the response has Content-Disposition, we take file name from it
localName = r.info()['Content-Disposition'].split('filename=')[1]
if localName[0] == '"' or localName[0] == "'":
localName = localName[1:-1]
elif r.url != url:
# if we were redirected, the real file name we take from the final URL
localName = url2name(r.url)
localName = os.path.join(out_path, localName)
f = open(localName, 'wb')
f.write(r.read())
f.close()
download("https://example.com/demofile", '/home/username/tmp')
I have just updated the answer of kender for python3
I need to download several files via http in Python.
The most obvious way to do it is just using urllib2:
import urllib2
u = urllib2.urlopen('http://server.com/file.html')
localFile = open('file.html', 'w')
localFile.write(u.read())
localFile.close()
But I’ll have to deal with the URLs that are nasty in some way, say like this: http://server.com/!Run.aspx/someoddtext/somemore?id=121&m=pdf. When downloaded via the browser, the file has a human-readable name, ie. accounts.pdf.
Is there any way to handle that in python, so I don’t need to know the file names and hardcode them into my script?
Download scripts like that tend to push a header telling the user-agent what to name the file:
Content-Disposition: attachment; filename="the filename.ext"
If you can grab that header, you can get the proper filename.
There’s another thread that has a little bit of code to offer up for Content-Disposition-grabbing.
remotefile = urllib2.urlopen('http://example.com/somefile.zip')
remotefile.info()['Content-Disposition']
Based on comments and @Oli’s anwser, I made a solution like this:
from os.path import basename
from urlparse import urlsplit
def url2name(url):
return basename(urlsplit(url)[2])
def download(url, localFileName = None):
localName = url2name(url)
req = urllib2.Request(url)
r = urllib2.urlopen(req)
if r.info().has_key('Content-Disposition'):
# If the response has Content-Disposition, we take file name from it
localName = r.info()['Content-Disposition'].split('filename=')[1]
if localName[0] == '"' or localName[0] == "'":
localName = localName[1:-1]
elif r.url != url:
# if we were redirected, the real file name we take from the final URL
localName = url2name(r.url)
if localFileName:
# we can force to save the file as specified name
localName = localFileName
f = open(localName, 'wb')
f.write(r.read())
f.close()
It takes file name from Content-Disposition; if it’s not present, uses filename from the URL (if redirection happened, the final URL is taken into account).
Combining much of the above, here is a more pythonic solution:
import urllib2
import shutil
import urlparse
import os
def download(url, fileName=None):
def getFileName(url,openUrl):
if 'Content-Disposition' in openUrl.info():
# If the response has Content-Disposition, try to get filename from it
cd = dict(map(
lambda x: x.strip().split('=') if '=' in x else (x.strip(),''),
openUrl.info()['Content-Disposition'].split(';')))
if 'filename' in cd:
filename = cd['filename'].strip(""'")
if filename: return filename
# if no filename was found above, parse it out of the final URL.
return os.path.basename(urlparse.urlsplit(openUrl.url)[2])
r = urllib2.urlopen(urllib2.Request(url))
try:
fileName = fileName or getFileName(url,r)
with open(fileName, 'wb') as f:
shutil.copyfileobj(r,f)
finally:
r.close()
2 Kender:
if localName[0] == '"' or localName[0] == "'":
localName = localName[1:-1]
it is not safe — web server can pass wrong formatted name as [“file.ext] or [file.ext’] or even be empty and localName[0] will raise exception.
Correct code can looks like this:
localName = localName.replace('"', '').replace("'", "")
if localName == '':
localName = SOME_DEFAULT_FILE_NAME
Using wget:
custom_file_name = "/custom/path/custom_name.ext"
wget.download(url, custom_file_name)
Using urlretrieve:
urllib.urlretrieve(url, custom_file_name)
urlretrieve also creates the directory structure if not exists.
You need to look into 'Content-Disposition' header, see the solution by kender.
How to download a file using python in a ‘smarter’ way?
Posting his solution modified with a capability to specify an output folder:
from os.path import basename
import os
from urllib.parse import urlsplit
import urllib.request
def url2name(url):
return basename(urlsplit(url)[2])
def download(url, out_path):
localName = url2name(url)
req = urllib.request.Request(url)
r = urllib.request.urlopen(req)
if r.info().has_key('Content-Disposition'):
# If the response has Content-Disposition, we take file name from it
localName = r.info()['Content-Disposition'].split('filename=')[1]
if localName[0] == '"' or localName[0] == "'":
localName = localName[1:-1]
elif r.url != url:
# if we were redirected, the real file name we take from the final URL
localName = url2name(r.url)
localName = os.path.join(out_path, localName)
f = open(localName, 'wb')
f.write(r.read())
f.close()
download("https://example.com/demofile", '/home/username/tmp')
I have just updated the answer of kender for python3