0
votes
1answer
14 views

Parsing HTTP Response in Python

I want to manipulate the information at THIS url. I can successfully open it and read its contents. But what I really want to do is throw out all the stuff I don't want, and to manipulate the stuff ...
1
vote
1answer
118 views

Python urlopen error 404 directories

I have this code : from urllib.request import urlopen from bs4 import BeautifulSoup page = urlopen("http://www.doctoralia.com") soup = BeautifulSoup(page) myfile = open('data.txt','w') ...
0
votes
0answers
196 views

Python3: byte array decoding from urlopen

I'm trying to use python to find some words across webpages (just to practice) but I keep running into a problem. This is it: url = 'someWikipage' hdrs = { 'User-Agent': "Mozilla/5.0 (X11; U; Linux ...
1
vote
2answers
2k views

How to pass parameter to Url with Python urlopen

I'm currently new to python programming. My problem is that my python program doesn't seem to pass/encode the parameter properly to the ASP file that I've created. This is my sample code: import ...
0
votes
1answer
414 views

HTTPConnection.request fails but urllib.request.urlopen works?

I've been stuck here for quite a while but can't find anything helpful. I'm trying to connect to a website and get a response json file in Python3. The code looks like below: conn = ...
11
votes
5answers
6k views

Use “byte-like object” from urlopen.read with json?

Just trying to test out very simple Python json commands, but having some trouble. urlopen('http://www.similarsitesearch.com/api/similar/ebay.com').read() should output ...
7
votes
1answer
4k views

Python 3, let json object accept bytes or let urlopen output strings

With Python3 I am requesting from some url a json document. response = urllib.request.urlopen(request) The response object is a file like object with read, readline functions. Normally a json ...
0
votes
1answer
814 views

Urllib raising invalid argument URLError in Python 3, urllib.request.urlopen

New to Python, but I'm trying to...retrieve data from a site: import urllib.request response = urllib.request.urlopen("http://www.python.org") This is the same code I've seen from the Python 3.1 ...