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I am trying to write an image archiver of sorts in python that downloads images from a specific site, and I keep getting an ioerror errno22 invalid mode ('r') or filename error that appears on my beautifulsoup line

soup = BeautifulSoup(open(pahealUrl))

aTagList = soup.findall("a")

for randomTag in aTagList:
  if randomTag.find(text="Image Only"):

print randomTag

the url itself is valid, and I am not seeing what the problem is. any idea as to why its throwing the errno22 invalid mode /filename error?

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You cannot just open URL like that. You need to access the page, for example with urllib2 – Jakub M. Apr 2 '13 at 6:29
so if I had the url of the page I wanted to parse, using BeautifulSoup and urllib2 what would I do? kind of new to python so... – g00ch Apr 2 '13 at 6:49

1 Answer 1

up vote 1 down vote accepted

To get the html of a webpage, use the urllib2 library:

import urllib2
html = urllib2.urlopen(myurl).read()

open() is not used to open web pages but for files. That's why you're getting a filename error.

Then you can BeautifulSoup() the HTML to get your soup.

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this works great, just a couple quick questions. what is <a href='blahblah'>this data called?</a> and how would I check it once I have the links listed? – g00ch Apr 2 '13 at 7:10
<a>'s normally associate with links. i.e, your <a> right there would link to the page blahblah but on the webpage it would display "this data called?". To get the "this data called" you could first find all the <a>'s (using findAll()) and then .text – TerryA Apr 2 '13 at 7:12

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