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I have the following code:

import re
from bs4 import BeautifulSoup

f = open('AIDNIndustrySearchAll.txt', 'r')
g = open('AIDNurl.txt', 'w')
t = f.read()
soup = BeautifulSoup(t)

list = []
counter = 0

for link in soup.find_all("a"):
    a = link.get('href')
    if re.search("V", a) != None:
        list.append(a)
        counter = counter + 1

new_list = ['http://www.aidn.org.au/{0}'.format(i) for i in list]
output = "\n".join(i for i in new_list)

g.write(output)

print output
print counter

f.close()
g.close()

It is basically going through a saved HTML page and pulling the links I am interested in. I am new to Python, so I am sure the code is terrible but it is (almost) working ;)

The current issue is that it is returning two copies of each link, not one. I am sure it has something to do with the way the loop is set up but am a bit stuck.

I welcome any help on this question (I can provide more details if required - such as HTML and more information on links I am looking for) as well as any general code improvements so I can learn as much as possible.

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4  
Are you sure that those links aren't duplicated in the input file? –  promanow Nov 14 '12 at 10:34
2  
Please post the HTML somewhere. It seems that the links occur twice. –  Fabian Nov 14 '12 at 10:35
3  
(unrelated) if re.search("V", a) != None can be simplified to if "V" in a. –  Shawn Chin Nov 14 '12 at 10:35
3  
And there is no need to use a generator expression in that "\n".join() call, just do "\n".join(new_list). –  Martijn Pieters Nov 14 '12 at 10:36
2  
And yet another unrelated improvement: the "counter" variable is not needed. Use len(list) for that. Also, don't name your variables like builtins, avoid list = [] as it may even break stuff... –  promanow Nov 14 '12 at 10:38

3 Answers 3

up vote 2 down vote accepted

As others have pointed out in comments, your loop looks OK so the repetition is likely to be in the HTML itself. If you can share a link to the HTML file perhaps we could be of more assistance.

As for general code improvements, here's how I might approach this:

from bs4 import BeautifulSoup
soup = BeautifulSoup(open('AIDNIndustrySearchAll.txt', 'r'))

# create a generator that returns actual href entries
links = (x.get('href') for x in soup.find_all('a'))

# filter the links to only those that contain "V" and store it as a 
# set to remove duplicates
selected = set(a for a in links if "V" in a)

# build output string using selected links
output = "\n".join('http://www.aidn.org.au/{0}'.format(a) for a in selected)

# write the string to file
with open('AIDNurl.txt', 'w') as f:
  f.write(output)

print output
print len(selected)  # print number of selected links
share|improve this answer
1  
Really tight code - thank you. Have marked this as the 'correct' answer as it helped most with the unrelated question I had with optimization. Turns out the html had multiple same hrefs so my bad there ;) –  Fusilli Jerry Nov 14 '12 at 14:47
    
Quick question @ShawnChin how do I amend the code to only find the first link (to get around the code returning multiple links)? I tried links = (x.get('href') for x in soup.find('a')) but I get the error 'NavigableString' object has no attribute 'get''. I thought soup.find was a valid method for finding only the first object? Thanks :) –  Fusilli Jerry Nov 14 '12 at 15:20
1  
soup.find('a').get('href') should be sufficient. soup.find returns an object not a list of objects so you can't iterate through it using for x in .... –  Shawn Chin Nov 14 '12 at 16:14
1  
Yes, soup.find('a') only returns the first match which I assumed was what you wanted. To get a list of ALL links with no duplications you can indeed use set. Try selected = set(a for a in links if "V" in a) to get a set of links (instead of a list). Sets can be iterated just as easy as lists. See updated answer. –  Shawn Chin Nov 15 '12 at 9:46
1  
The (x for x in iterable) construct is a generator expression. It's similar to list comprehension but produces a generator rather than a list, the advantage being that it does not need to store all results in memory and so is more efficient than building a temporary list. –  Shawn Chin Nov 15 '12 at 9:52

Find_all returns a list of all elements. If you just want the first one you could do this: for link in soup.find_all("a")[:1]: . It's not quite clear why the list is a copy of links. You can use print statements to get a better insight into the code. Print the list and the length of the list, etc. Or you can use pdb

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Since you've asked for code optimations too, I will post my suggestions as an answer. Feel free!

from bs4 import BeautifulSoup

f = open('AIDNIndustrySearchAll.txt', 'r')
t = f.read()
f.close()

soup = BeautifulSoup(t)
results = []   ## 'list' is a built-in type and shouldn't be used as variable name

for link in soup.find_all('a'):
    a = link.get('href')
    if 'V' not in a:
        results.append(a)

formatted_results = ['http://www.aidn.org.au/{0}'.format(i) for i in results]
output = "\n".join(formatted_results)

g = open('AIDNurl.txt', 'w')
g.write(output)
g.close()

print output
print len(results)

This still doesn't fix your original problem, see my and other peoples question comments.

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