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so I've asked many questions regarding this one subject, and I'm sorry. But this is it.

So I have this code:

import urllib
import urllib.request
from bs4 import BeautifulSoup
import sys
from collections import defaultdict

m_num=int(input('Enter number of monsters to look up: '))
for x in range(m_num):
    name=input("Enter a monster's name: ")
    url_name=name.replace(' ','_')
    url=('http://yugioh.wikia.com/wiki/Card_Tips:{}'.format(url_name))
    page = urllib.request.urlopen(url)
    soup = BeautifulSoup(page.read())
    content = soup.find('div',id='mw-content-text')
    links = content.findAll('a')
    link_lists = defaultdict(list)
    for link in links:
        link_lists[x].append(link.get('title'))
all_lists = list(link_lists.values())
common_links = set(all_lists[0]).intersection(*all_lists[1:])
print('common links: ',common_links)

What I'm trying to do is for how many number of monsters the user specifies is how many lists are creatd. Each list is then filled with all the links from that specific site. And then in the ned all the lists are compared to see if they have similar strings inside of them. (Hopefully that makes sense).

So the problem I'm having is that when I run it and it gets to the print('common links:',common_links) part it only prints out the last list. It doesn't compare the lists nor does it even recognize that the other lists were created.

Can anyone lend a helping hand? I've been troubleshooting this and I'm just stuck.

share|improve this question
    
No need to determine a priori how many lists you need. Instead create a new list for each monster using a loop. –  bernie May 9 '13 at 20:06
    
Would I need to use something like this to do that? locals()['list{}'.format(str(i))]=[] –  user1985351 May 9 '13 at 21:41

1 Answer 1

up vote 1 down vote accepted

link_lists refers to a new dictionary on each iteration. You could exclude it: put all_lists = [] before the for x in range(m_num) loop. And replace the last 3 line in the loop with: all_lists.append([link.get("title") for link in links]) Note: you don't need to know m_num in this case:

all_lists = []
for name in iter(lambda: input("monster name"), ""): # loop until empty name
    # ...
    titles = [link["title"] for link in content.findAll('a', title=True)]
    all_lists.append(titles)
share|improve this answer
    
This just adds all the content into one list. I'm trying to compare multiple lists, not create one massive list with everything in it. But the for name in iter... part worked well. –  user1985351 May 9 '13 at 21:40
    
@user1985351: no. all_lists is a list of lists. If you don't need it; then move common_links inside the loop. –  J.F. Sebastian May 9 '13 at 21:41

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