I want to download text files using python, how can I do so?
I used requests module's urlopen(url).read() but it gives me the bytes representation of file.
For me, I had to do the following (Python 3):
from urllib.request import urlopen
data = urlopen("[your url goes here]").read().decode('utf-8')
# Do what you need to do with the data.
You can use multiple options:
For the simpler solution you can use this
file_url = 'https://someurl.com/text_file.txt'
for line in urllib.request.urlopen(file_url):
print(line.decode('utf-8'))
For an API solution
file_url = 'https://someurl.com/text_file.txt'
response = requests.get(file_url)
if (response.status_code):
data = response.text
for line in enumerate(data.split('\n')):
print(line)
When downloading text files with python I like to use the wget module
import wget
remote_url = 'https://www.google.com/test.txt'
local_file = 'local_copy.txt'
wget.download(remote_url, local_file)
If that doesn't work try using urllib
from urllib import request
remote_url = 'https://www.google.com/test.txt'
file = 'copy.txt'
request.urlretrieve(remote_url, file)
When you are using the request module you are reading the file directly from the internet and it is causing you to see the text in byte format. Try to write the text to a file then view it manually by opening it on your desktop
import requests
remote_url = 'test.com/test.txt'
local_file = 'local_file.txt'
data = requests.get(remote_url)
with open(local_file, 'wb')as file:
file.write(data.content)
I have managed to get my first python script to work which downloads a list of .ZIP files from a URL and then proceeds to extract the ZIP files and writes them to disk.
I am now at a loss to achieve the next step.
My primary goal is to download and extract the zip file and pass the contents (CSV data) via a TCP stream. I would prefer not to actually write any of the zip or extracted files to disk if I could get away with it.
Here is my current script which works but unfortunately has to write the files to disk.
import urllib, urllister
import zipfile
import urllib2
import os
import time
import pickle
# check for extraction directories existence
if not os.path.isdir('downloaded'):
os.makedirs('downloaded')
if not os.path.isdir('extracted'):
os.makedirs('extracted')
# open logfile for downloaded data and save to local variable
if os.path.isfile('downloaded.pickle'):
downloadedLog = pickle.load(open('downloaded.pickle'))
else:
downloadedLog = {'key':'value'}
# remove entries older than 5 days (to maintain speed)
# path of zip files
zipFileURL = "http://www.thewebserver.com/that/contains/a/directory/of/zip/files"
# retrieve list of URLs from the webservers
usock = urllib.urlopen(zipFileURL)
parser = urllister.URLLister()
parser.feed(usock.read())
usock.close()
parser.close()
# only parse urls
for url in parser.urls:
if "PUBLIC_P5MIN" in url:
# download the file
downloadURL = zipFileURL + url
outputFilename = "downloaded/" + url
# check if file already exists on disk
if url in downloadedLog or os.path.isfile(outputFilename):
print "Skipping " + downloadURL
continue
print "Downloading ",downloadURL
response = urllib2.urlopen(downloadURL)
zippedData = response.read()
# save data to disk
print "Saving to ",outputFilename
output = open(outputFilename,'wb')
output.write(zippedData)
output.close()
# extract the data
zfobj = zipfile.ZipFile(outputFilename)
for name in zfobj.namelist():
uncompressed = zfobj.read(name)
# save uncompressed data to disk
outputFilename = "extracted/" + name
print "Saving extracted file to ",outputFilename
output = open(outputFilename,'wb')
output.write(uncompressed)
output.close()
# send data via tcp stream
# file successfully downloaded and extracted store into local log and filesystem log
downloadedLog[url] = time.time();
pickle.dump(downloadedLog, open('downloaded.pickle', "wb" ))
Below is a code snippet I used to fetch zipped csv file, please have a look:
Python 2:
from StringIO import StringIO
from zipfile import ZipFile
from urllib import urlopen
resp = urlopen("http://www.test.com/file.zip")
myzip = ZipFile(StringIO(resp.read()))
for line in myzip.open(file).readlines():
print line
Python 3:
from io import BytesIO
from zipfile import ZipFile
from urllib.request import urlopen
# or: requests.get(url).content
resp = urlopen("http://www.test.com/file.zip")
myzip = ZipFile(BytesIO(resp.read()))
for line in myzip.open(file).readlines():
print(line.decode('utf-8'))
Here file is a string. To get the actual string that you want to pass, you can use zipfile.namelist(). For instance,
resp = urlopen('http://mlg.ucd.ie/files/datasets/bbc.zip')
myzip = ZipFile(BytesIO(resp.read()))
myzip.namelist()
# ['bbc.classes', 'bbc.docs', 'bbc.mtx', 'bbc.terms']
My suggestion would be to use a StringIO object. They emulate files, but reside in memory. So you could do something like this:
# get_zip_data() gets a zip archive containing 'foo.txt', reading 'hey, foo'
import zipfile
from StringIO import StringIO
zipdata = StringIO()
zipdata.write(get_zip_data())
myzipfile = zipfile.ZipFile(zipdata)
foofile = myzipfile.open('foo.txt')
print foofile.read()
# output: "hey, foo"
Or more simply (apologies to Vishal):
myzipfile = zipfile.ZipFile(StringIO(get_zip_data()))
for name in myzipfile.namelist():
[ ... ]
In Python 3 use BytesIO instead of StringIO:
import zipfile
from io import BytesIO
filebytes = BytesIO(get_zip_data())
myzipfile = zipfile.ZipFile(filebytes)
for name in myzipfile.namelist():
[ ... ]
I'd like to offer an updated Python 3 version of Vishal's excellent answer, which was using Python 2, along with some explanation of the adaptations / changes, which may have been already mentioned.
from io import BytesIO
from zipfile import ZipFile
import urllib.request
url = urllib.request.urlopen("http://www.unece.org/fileadmin/DAM/cefact/locode/loc162txt.zip")
with ZipFile(BytesIO(url.read())) as my_zip_file:
for contained_file in my_zip_file.namelist():
# with open(("unzipped_and_read_" + contained_file + ".file"), "wb") as output:
for line in my_zip_file.open(contained_file).readlines():
print(line)
# output.write(line)
Necessary changes:
There's no StringIO module in Python 3 (it's been moved to io.StringIO). Instead, I use io.BytesIO]2, because we will be handling a bytestream -- Docs, also this thread.
urlopen:
"The legacy urllib.urlopen function from Python 2.6 and earlier has been discontinued; urllib.request.urlopen() corresponds to the old urllib2.urlopen.", Docs and this thread.
Note:
In Python 3, the printed output lines will look like so: b'some text'. This is expected, as they aren't strings - remember, we're reading a bytestream. Have a look at Dan04's excellent answer.
A few minor changes I made:
I use with ... as instead of zipfile = ... according to the Docs.
The script now uses .namelist() to cycle through all the files in the zip and print their contents.
I moved the creation of the ZipFile object into the with statement, although I'm not sure if that's better.
I added (and commented out) an option to write the bytestream to file (per file in the zip), in response to NumenorForLife's comment; it adds "unzipped_and_read_" to the beginning of the filename and a ".file" extension (I prefer not to use ".txt" for files with bytestrings). The indenting of the code will, of course, need to be adjusted if you want to use it.
Need to be careful here -- because we have a byte string, we use binary mode, so "wb"; I have a feeling that writing binary opens a can of worms anyway...
I am using an example file, the UN/LOCODE text archive:
What I didn't do:
NumenorForLife asked about saving the zip to disk. I'm not sure what he meant by it -- downloading the zip file? That's a different task; see Oleh Prypin's excellent answer.
Here's a way:
import urllib.request
import shutil
with urllib.request.urlopen("http://www.unece.org/fileadmin/DAM/cefact/locode/2015-2_UNLOCODE_SecretariatNotes.pdf") as response, open("downloaded_file.pdf", 'w') as out_file:
shutil.copyfileobj(response, out_file)
I'd like to add my Python3 answer for completeness:
from io import BytesIO
from zipfile import ZipFile
import requests
def get_zip(file_url):
url = requests.get(file_url)
zipfile = ZipFile(BytesIO(url.content))
files = [zipfile.open(file_name) for file_name in zipfile.namelist()]
return files.pop() if len(files) == 1 else files
write to a temporary file which resides in RAM
it turns out the tempfile module ( http://docs.python.org/library/tempfile.html ) has just the thing:
tempfile.SpooledTemporaryFile([max_size=0[,
mode='w+b'[, bufsize=-1[, suffix=''[,
prefix='tmp'[, dir=None]]]]]])
This
function operates exactly as
TemporaryFile() does, except that data
is spooled in memory until the file
size exceeds max_size, or until the
file’s fileno() method is called, at
which point the contents are written
to disk and operation proceeds as with
TemporaryFile().
The resulting file has one additional
method, rollover(), which causes the
file to roll over to an on-disk file
regardless of its size.
The returned object is a file-like
object whose _file attribute is either
a StringIO object or a true file
object, depending on whether
rollover() has been called. This
file-like object can be used in a with
statement, just like a normal file.
New in version 2.6.
or if you're lazy and you have a tmpfs-mounted /tmp on Linux, you can just make a file there, but you have to delete it yourself and deal with naming
Adding on to the other answers using requests:
# download from web
import requests
url = 'http://mlg.ucd.ie/files/datasets/bbc.zip'
content = requests.get(url)
# unzip the content
from io import BytesIO
from zipfile import ZipFile
f = ZipFile(BytesIO(content.content))
print(f.namelist())
# outputs ['bbc.classes', 'bbc.docs', 'bbc.mtx', 'bbc.terms']
Use help(f) to get more functions details for e.g. extractall() which extracts the contents in zip file which later can be used with with open.
All of these answers appear too bulky and long. Use requests to shorten the code, e.g.:
import requests, zipfile, io
r = requests.get(zip_file_url)
z = zipfile.ZipFile(io.BytesIO(r.content))
z.extractall("/path/to/directory")
Vishal's example, however great, confuses when it comes to the file name, and I do not see the merit of redefing 'zipfile'.
Here is my example that downloads a zip that contains some files, one of which is a csv file that I subsequently read into a pandas DataFrame:
from StringIO import StringIO
from zipfile import ZipFile
from urllib import urlopen
import pandas
url = urlopen("https://www.federalreserve.gov/apps/mdrm/pdf/MDRM.zip")
zf = ZipFile(StringIO(url.read()))
for item in zf.namelist():
print("File in zip: "+ item)
# find the first matching csv file in the zip:
match = [s for s in zf.namelist() if ".csv" in s][0]
# the first line of the file contains a string - that line shall de ignored, hence skiprows
df = pandas.read_csv(zf.open(match), low_memory=False, skiprows=[0])
(Note, I use Python 2.7.13)
This is the exact solution that worked for me. I just tweaked it a little bit for Python 3 version by removing StringIO and adding IO library
Python 3 Version
from io import BytesIO
from zipfile import ZipFile
import pandas
import requests
url = "https://www.nseindia.com/content/indices/mcwb_jun19.zip"
content = requests.get(url)
zf = ZipFile(BytesIO(content.content))
for item in zf.namelist():
print("File in zip: "+ item)
# find the first matching csv file in the zip:
match = [s for s in zf.namelist() if ".csv" in s][0]
# the first line of the file contains a string - that line shall de ignored, hence skiprows
df = pandas.read_csv(zf.open(match), low_memory=False, skiprows=[0])
It wasn't obvious in Vishal's answer what the file name was supposed to be in cases where there is no file on disk. I've modified his answer to work without modification for most needs.
from StringIO import StringIO
from zipfile import ZipFile
from urllib import urlopen
def unzip_string(zipped_string):
unzipped_string = ''
zipfile = ZipFile(StringIO(zipped_string))
for name in zipfile.namelist():
unzipped_string += zipfile.open(name).read()
return unzipped_string
Use the zipfile module. To extract a file from a URL, you'll need to wrap the result of a urlopen call in a BytesIO object. This is because the result of a web request returned by urlopen doesn't support seeking:
from urllib.request import urlopen
from io import BytesIO
from zipfile import ZipFile
zip_url = 'http://example.com/my_file.zip'
with urlopen(zip_url) as f:
with BytesIO(f.read()) as b, ZipFile(b) as myzipfile:
foofile = myzipfile.open('foo.txt')
print(foofile.read())
If you already have the file downloaded locally, you don't need BytesIO, just open it in binary mode and pass to ZipFile directly:
from zipfile import ZipFile
zip_filename = 'my_file.zip'
with open(zip_filename, 'rb') as f:
with ZipFile(f) as myzipfile:
foofile = myzipfile.open('foo.txt')
print(foofile.read().decode('utf-8'))
Again, note that you have to open the file in binary ('rb') mode, not as text or you'll get a zipfile.BadZipFile: File is not a zip file error.
It's good practice to use all these things as context managers with the with statement, so that they'll be closed properly.
I'm testing some things and i keep getting the error "write() argument must be str, not HTTPResponse" Here's my code:
import requests
image="http://www.casperdenhaan.nl/wp-content/uploads/2020/03/Logo.jpg"
savefile=open("image.png","w+")
savefile.write(requests.get(image).raw)
savefile.close()
I can get the raw data, but I can't write it to a new file. Is there a way i could get around this problem?
When you call .raw on the response object it returns an HTTPResponse object. You need to call .content to get a bytes object.
type(requests.get(image).raw)
urllib3.response.HTTPResponse
type(requests.get(image).content)
bytes
You need to open the file in write binary mode:
open("image.png","wb")
I suggest using a "with" block, this way you don't need to explicitly close the file. Here is a working version of the code:
import requests
url = "http://www.casperdenhaan.nl/wp-content/uploads/2020/03/Logo.jpg"
with open('image.png', 'wb') as f:
f.write(requests.get(url).content)
try this way of doing it
import requests
img_url = "http://www.casperdenhaan.nl/wp-content/uploads/2020/03/Logo.jpg"
img = requests.get(img_url)
with open('image.png', 'wb') as save_file:
save_file.write(img.raw)
This way you don't have to deal with closing the file. Also, the 'wb' opens the file in a writable binary mode.
I'm trying to download a load of text in Python and want it all to save to a single file.
The code I'm currently using creates a separate file for each url. It loops through an archive of urls, requests the data and then saves it to its own file.
filename = archive[i]
urllib.request.urlretrieve(url, path + filename + ".pgn")
I've tried using the same filename for each url but it just overwrites the file.
Is there a way to loop through the archive and, rather than saving the data in its own separate file, add each block of text to a single file? Or do I need to just loop through all the files afterwards and concatenate them together?
Python's urlretrive docs says that
If you wish to retrieve a resource via URL and store it in a temporary location, you can do so via the urlretrieve() function
so if you wish to append the retrieved data in one file you have use urlopen for that
Like this :
import urllib.request
filename = "MY_FILE_PATH"
#-----------inside your i loop-------------
with urllib.request.urlopen(url) as response:
data = response.read()
# change your file type according e.g. "ab" for binary file
with open(filename + ".pgn", "a+") as fp: fp.write(str(data))
Note that urlretrieve might become deprecated at some point in the future. So use urlopen instead.
import urllib.request
import shutil
...
filename = archive[i]
with urllib.request.urlopen(url) as response, open(filename, 'ab') as out_file:
shutil.copyfileobj(response, out_file)
I am doing a data science project.
I am using google notebook for my job
My dataset is residing at here which I want to access directly at python Notebook.
I am using following line of code to get out of it.
df = pd.read_csv('link')
But Command line is throwing an error like below
What should I do?
Its difficult to answer exactly as there lack of data but here you go for this kind of request..
you have to import ZipFile & urlopen in order to get data from url and extract the data from Zip and the use the csv file for pandas processings.
from zipfile import ZipFile
from urllib.request import urlopen
import pandas as pd
import os
URL = 'https://he-s3.s3.amazonaws.com/media/hackathon/hdfc-bank-ml-hiring-challenge/application-scorecard-for-customers/05d2b4ea-c-Dataset.zip'
# open and save the zip file onto computer
url = urlopen(URL)
output = open('05d2b4ea-c-Dataset.zip', 'wb') # note the flag: "wb"
output.write(url.read())
output.close()
# read the zip file as a pandas dataframe
df = pd.read_csv('05d2b4ea-c-Dataset.zip') zip files
# if keeping on disk the zip file is not wanted, then:
os.remove(zipName) # remove the copy of the zipfile on disk
Use urllib module to download into memory the zip file which returns a file-like object that you can read(), pass it to ZipFile(standard package).
Since here there are multiple files like
['test_data/AggregateData_Test.csv', 'test_data/TransactionData_Test.csv', 'train_data/AggregateData_Train.csv', 'train_data/Column_Descriptions.xlsx', 'train_data/sample_submission.csv', 'train_data/TransactionData_Train.csv']
Load it to a dict of dataframes with filename as the key. Altogether the code will be.
from urllib.request import urlopen
from zipfile import ZipFile
from io import BytesIO
zip_in_memory = urlopen("https://he-s3.s3.amazonaws.com/media/hackathon/hdfc-bank-ml-hiring-challenge/application-scorecard-for-customers/05d2b4ea-c-Dataset.zip").read()
z = ZipFile(BytesIO(zip_in_memory))
dict_of_dfs = {file.filename: pd.read_csv(z.open(file.filename))\
for file in z.infolist()\
if file.filename.endswith('.csv')}
Now you can access dataframes of each csv like dict_of_dfs['test_data/AggregateData_Test.csv'].
Ofcourse all of this is unnecessary if you will just download the zip from the link and pass it as a zipfile.