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When I run this:

import urllib

feed = urllib.urlopen("http://www.yahoo.com")

print feed

I get this output in the interactive window (PythonWin):

<addinfourl at 48213968 whose fp = <socket._fileobject object at 0x02E14070>>

I'm expecting to get the source of the above URL. I know this has worked on other computers (like the ones at school) but this is on my laptop and I'm not sure what the problem is here. Also, I don't understand this error at all. What does it mean? Addinfourl? fp? Please help.

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3 Answers 3

Try this:

print feed.read()

See Python docs here.

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Thanks! That's very helpful! I'm one step closer to finishing this program! The link to the docs is very helpful too! Any idea about the error? Just wondering...trying to gain knowledge about these things. –  Alan Mar 1 '09 at 20:08
    
addinfourl is not an error; it's an object. You haven't done anything wrong. Just replace "print feed" with "print feed.read()" and you have your HTML. –  RexE Mar 1 '09 at 20:10
    
OK, thanks. I'll read up on that some. Just don't quite understand why I got that. Thanks again! –  Alan Mar 1 '09 at 20:20
    
Think of it this way: some variables, like numbers, strings, and lists, have simple ways of being displayed to the user. But what do you expect to see when you print, say, a file object? It just prints <open file "foo.htm", mode "w" at 0x090232...> to let you know "hey, I'm a file object". –  RexE Mar 1 '09 at 20:28
    
Ok, that makes sense. Thanks for taking the time. This is the first step in a larger project to take the data from TourFilter Dallas (specifically tourfilter.com/dallas/rss/by_concert_date), parse for a band, and geocode that band's events on an ArcGIS map. Thanks for the help! –  Alan Mar 1 '09 at 20:46

urllib.urlopen actually returns a file-like object so to retrieve the contents you will need to use:

import urllib

feed = urllib.urlopen("http://www.yahoo.com")

print feed.read()
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Thanks! That's very helpful! I'm one step closer to finishing this program! –  Alan Mar 1 '09 at 20:07

In python 3.0:

import urllib
import urllib.request

fh = urllib.request.urlopen(url)
html = fh.read().decode("iso-8859-1")
fh.close()

print (html)
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thanks, the decode("iso-8859-1") was the critical step that put and end to the "Type str doesn't support the buffer API" error I was seeing! –  JAL Jun 7 '09 at 7:45

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