184

When I try this code to scrape a web page:

#import requests
import urllib.request
from bs4 import BeautifulSoup
#from urllib import urlopen
import re

webpage = urllib.request.urlopen('http://www.cmegroup.com/trading/products/#sortField=oi&sortAsc=false&venues=3&page=1&cleared=1&group=1').read
findrows = re.compile('<tr class="- banding(?:On|Off)>(.*?)</tr>')
findlink = re.compile('<a href =">(.*)</a>')

row_array = re.findall(findrows, webpage)
links = re.finall(findlink, webpate)

print(len(row_array))

iterator = []

I get an error like:

  File "C:\Python33\lib\urllib\request.py", line 160, in urlopen
    return opener.open(url, data, timeout)
  File "C:\Python33\lib\urllib\request.py", line 479, in open
    response = meth(req, response)
  File "C:\Python33\lib\urllib\request.py", line 591, in http_response
    'http', request, response, code, msg, hdrs)
  File "C:\Python33\lib\urllib\request.py", line 517, in error
    return self._call_chain(*args)
  File "C:\Python33\lib\urllib\request.py", line 451, in _call_chain
    result = func(*args)
  File "C:\Python33\lib\urllib\request.py", line 599, in http_error_default
    raise HTTPError(req.full_url, code, msg, hdrs, fp)
urllib.error.HTTPError: HTTP Error 403: Forbidden

Does the website think I'm a bot? How can I fix the problem?

1
  • From the perspective of most web page owners, if you are using a computer program to scrape the site, that is a bot. Feb 24 at 7:29

14 Answers 14

364

This is probably because of mod_security or some similar server security feature which blocks known spider/bot user agents (urllib uses something like python urllib/3.3.0, it's easily detected). Try setting a known browser user agent with:

from urllib.request import Request, urlopen

req = Request(
    url='http://www.cmegroup.com/trading/products/#sortField=oi&sortAsc=false&venues=3&page=1&cleared=1&group=1', 
    headers={'User-Agent': 'Mozilla/5.0'}
)
webpage = urlopen(req).read()

This works for me.

By the way, in your code you are missing the () after .read in the urlopen line, but I think that it's a typo.

TIP: since this is exercise, choose a different, non restrictive site. Maybe they are blocking urllib for some reason...

5
  • I assume it's safe to reuse req for multiple urlopen calls.
    – Asclepius
    Feb 2, 2019 at 0:28
  • 2
    It might be little late, but I already have User-Agent in my code, still it gives me Error 404: Access denied
    – TechSavy
    Jul 24, 2019 at 4:23
  • This works but I feel like they must have a good reason to block bots and I'm violating their terms of service
    – xjcl
    Oct 11, 2019 at 7:19
  • 2
    This unfortunately does not work for some sites. There's a requests solution stackoverflow.com/questions/45086383/… though.
    – NelsonGon
    Jul 21, 2021 at 10:55
  • 2
    Some sites block 'Mozilla/5.0' as well. You may want to try 'Mozilla/6.0' or other headers.
    – Qin Heyang
    Feb 11, 2022 at 0:21
56

Definitely it's blocking because of your use of urllib based on the user agent. This same thing is happening to me with OfferUp. You can create a new class called AppURLopener which overrides the user-agent with Mozilla.

import urllib.request

class AppURLopener(urllib.request.FancyURLopener):
    version = "Mozilla/5.0"

opener = AppURLopener()
response = opener.open('http://httpbin.org/user-agent')

Source

9
  • 3
    The top answer didn't work for me, while yours did. Thanks a lot!
    – Tarun Uday
    Mar 31, 2016 at 19:32
  • 1
    This works just fine but I need to attach the ssl configuration to this. How do I do this? Before I just added it as a second parameter (urlopen(request,context=ctx))
    – Hauke
    Apr 25, 2017 at 17:40
  • 4
    looks like it did open but it says 'ValueError: read of closed file' May 11, 2017 at 15:37
  • 2
    This works but producing warning DeprecationWarning: AppURLopener style of invoking requests is deprecated. Use newer urlopen functions/methods in python 3.7
    – kjsr7
    Dec 30, 2020 at 9:45
  • 1
    main__:1: DeprecationWarning: AppURLopener style of invoking requests is deprecated. Use newer urlopen functions/methods after opener = AppURLopener() . However, how to use the response to get a video if the url can download a ts file using chrome?
    – Raii
    May 21, 2022 at 2:54
27

"This is probably because of mod_security or some similar server security feature which blocks known

spider/bot

user agents (urllib uses something like python urllib/3.3.0, it's easily detected)" - as already mentioned by Stefano Sanfilippo

from urllib.request import Request, urlopen
url="https://stackoverflow.com/search?q=html+error+403"
req = Request(url, headers={'User-Agent': 'Mozilla/5.0'})

web_byte = urlopen(req).read()

webpage = web_byte.decode('utf-8')

The web_byte is a byte object returned by the server and the content type present in webpage is mostly utf-8. Therefore you need to decode web_byte using decode method.

This solves complete problem while I was having trying to scrape from a website using PyCharm

P.S -> I use python 3.4

10

Based on previous answers this has worked for me with Python 3.7 by increasing the timeout to 10.

from urllib.request import Request, urlopen

req = Request('Url_Link', headers={'User-Agent': 'XYZ/3.0'})
webpage = urlopen(req, timeout=10).read()

print(webpage)
1
  • Tried. Still forbidden. Jul 25, 2023 at 2:09
5

Adding cookie to the request headers worked for me

from urllib.request import Request, urlopen

# Function to get the page content
def get_page_content(url, head):
  """
  Function to get the page content
  """
  req = Request(url, headers=head)
  return urlopen(req)

url = 'https://example.com'
head = {
  'User-Agent': 'Mozilla/5.0 (Macintosh; Intel Mac OS X 10_14_6) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/99.0.4844.84 Safari/537.36',
  'Accept': 'text/html,application/xhtml+xml,application/xml;q=0.9,image/avif,image/webp,image/apng,*/*;q=0.8,application/signed-exchange;v=b3;q=0.9',
  'Accept-Charset': 'ISO-8859-1,utf-8;q=0.7,*;q=0.3',
  'Accept-Encoding': 'none',
  'Accept-Language': 'en-US,en;q=0.8',
  'Connection': 'keep-alive',
  'refere': 'https://example.com',
  'cookie': """your cookie value ( you can get that from your web page) """
}

data = get_page_content(url, head).read()
print(data)
1
  • you saved me. I have met a url that need to add some other things in the header such as 'origin' = 'url1' , 'referrer' = 'url1' to make the request without 403 happen
    – Raii
    May 21, 2022 at 3:24
3

If you feel guilty about faking the user-agent as Mozilla (comment in the top answer from Stefano), it could work with a non-urllib User-Agent as well. This worked for the sites I reference:

    req = urlrequest.Request(link, headers={'User-Agent': 'XYZ/3.0'})
    urlrequest.urlopen(req, timeout=10).read()

My application is to test validity by scraping specific links that I refer to, in my articles. Not a generic scraper.

2

Since the page works in browser and not when calling within python program, it seems that the web app that serves that url recognizes that you request the content not by the browser.

Demonstration:

curl --dump-header r.txt http://www.cmegroup.com/trading/products/#sortField=oi&sortAsc=false&venues=3&page=1&cleared=1&group=1

...
<HTML><HEAD>
<TITLE>Access Denied</TITLE>
</HEAD><BODY>
<H1>Access Denied</H1>
You don't have permission to access ...
</HTML>

and the content in r.txt has status line:

HTTP/1.1 403 Forbidden

Try posting header 'User-Agent' which fakes web client.

NOTE: The page contains Ajax call that creates the table you probably want to parse. You'll need to check the javascript logic of the page or simply using browser debugger (like Firebug / Net tab) to see which url you need to call to get the table's content.

2

you can use urllib's build_opener like this:

opener = urllib.request.build_opener()
opener.addheaders = [('User-Agent', 'Mozilla/5.0 (Windows NT 10.0; Win64; x64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/92.0.4515.159 Safari/537.36'), ('Accept','text/html,application/xhtml+xml,application/xml;q=0.9,image/avif,image/webp,*/*;q=0.8'), ('Accept-Encoding','gzip, deflate, br'),\
    ('Accept-Language','en-US,en;q=0.5' ), ("Connection", "keep-alive"), ("Upgrade-Insecure-Requests",'1')]
urllib.request.install_opener(opener)
urllib.request.urlretrieve(url, "test.xlsx")
1

You can try in two ways. The detail is in this link.

1) Via pip

pip install --upgrade certifi

2) If it doesn't work, try to run a Cerificates.command that comes bundled with Python 3.* for Mac:(Go to your python installation location and double click the file)

open /Applications/Python\ 3.*/Install\ Certificates.command

1

I ran into this same problem and was not able to solve it using the answers above. I ended up getting around the issue by using requests.get() and then using the .text of the result instead of using read():

from requests import get

req = get(link)
result = req.text
1

An easy straight forward approach:

from bs4 import BeautifulSoup
import requests

response = requests.get(url)
web_page = response.text

soup = BeautifulSoup(web_page, "html.parser")
0

I pulled my hair out with this for a while and the answer ended up being pretty simple. I checked the response text and I was getting "URL signature expired" which is a message you wouldn't normally see unless you checked the response text.

This means some URLs just expire, usually for security purposes. Try to get the URL again and update the URL in your script. If there isn't a new URL for the content you're trying to scrape, then unfortunately you can't scrape for it.

0

Open the developer tools and open the network tap. chose among the items u want yo scrap, the expanding details will have the user agent and add it there

0

Sometimes a lot of techniques doesn't work. So the final way is to get the content of the Google Cache.

import requests

# The headers 
headers = {'User-Agent': 'Mozilla/5.0 (Macintosh; Intel Mac OS X 10.15; rv:101.0) Gecko/20100101 Firefox/101.0'}

# The URL you want to scrap
url_2_scrap = 'https://www.my_url.com'

# Full URL to get the content 
url_full = 'https://webcache.googleusercontent.com/search?q=cache:' + url_2_scrap

# Response of the request
response = requests.get(url_full, headers=headers)

# If the status is good,
if response.status_code == 200:
    print("OK! It works fine! ;-)")
# If its not good,
else:
    print("It doesn't work :-(")

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