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I am having trouble looping through a list read by pickle. The Ultimate aim of this code was to loop through each Item and return the id number of each item.

## Opening the file, and loading it into a list##
with open('TEMP_ITEMS.txt', 'rb') as openfile:
    items = pickle.load(openfile)

My attempt at trying to loop through this and find the id numbers was based on some old xml scraping techniques, but for some reason the logic doesn't apply here.

for item in enumerate(items):

    pattern0 = re.compile('ID: (.*?) <br>')
    idnumber = float(re.findall(pattern0, items[0])[0])
    print "ID Number: ",idnumber 

Example of the contents of TEMP_ITEMS.txt

(lp0
S'\n                <item>\n                    <title>Timmy</title>\n                    <link>caturl</link>\n                    <description><![CDATA[\n                                Timmy <br>\n                                ID: 3712 <br>\n                                Age: 10 <br>\n                                Weight: 7lbs <br>\n                                Time: 17:23 <br>\n                                Cat Name: Timmy <br>\n\n                    ]]></description>\n                    <guid isPermaLink="false">04e72b29-065d-4893-a4d2-f16ff30a283e</guid>\n                    <pubDate>Fri, 21 Jun 2013 01:09:05 GMT</pubDate>\n                </item>'
p1
aS'\n                <item>\n                    <title>George</title>\n                    <link>caturl</link>\n                    <description><![CDATA[\n                                George <br>\n                                ID: 4124 <br>\n                                Age: 14 <br>\n                                Weight: 8lbs <br>\n                                Time: 15:41 <br>\n                                Cat Name: George <br>\n\n                    ]]></description>\n                    <guid isPermaLink="false">212f9fbf-564b-470a-a64a-ef51036ff06a</guid>\n                    <pubDate>Fri, 21 Jun 2013 01:28:20 GMT</pubDate>\n                </item>'
p2
a.

Any help or advice on this problem would be greatly appreciated. Kind regards AEA

Code used under recommendations of falsetru, which returns an error

import pickle
import re

with open('TEMP_RSS_ITEMS.txt', 'rb') as temp_rss_items_open4:
    items = pickle.load(temp_rss_items_open4)        
    print items
    for item in enumerate(items):
        pattern0 = re.compile('ID: (.*) <br>')
        for idnumber in re.findall(pattern0, item):
            print idnumber

Error this code it producing:

Traceback (most recent call last):
  File "C:/Sharing/test1.py", line 9, in <module>
    for idnumber in re.findall(pattern0, item):
  File "C:\Python27\lib\re.py", line 177, in findall
    return _compile(pattern, flags).findall(string)
TypeError: expected string or buffer
>>> 
share|improve this question
    
pattern0 = re.compile(...); re.findall(pattern0) no business of item? –  iMom0 Jun 21 '13 at 1:21
    
Hello @iMom0 I am still learning to code, if something seems blazingly obviously wrong then it probably is. –  AEA Jun 21 '13 at 1:23

2 Answers 2

up vote 6 down vote accepted

Try using a non-greedy version of .*:

pattern0 = re.complie(r'ID: (.*?) <br>')

or '+` if ID has only digits:

pattern0 = re.complie(r'ID: (\d+)')

UPDATE

import pickle
import re

pattern0 = re.compile('ID: (.*) <br>')
with open('TEMP_RSS_ITEMS.txt', 'rb') as f:
    items = pickle.load(f)        
    for item in items:
        for idnumber in pattern0.findall(item):
            print idnumber
share|improve this answer
    
Thanks for the answer @falsetru, I have managed to fix the first problem with this code by changing to for item in enumerate(items): the issue now is that the looping script only ever returns the first item in the list, where as I want it to return the id for the first item on the first loop, then the id for the second item in the list and so on.. Any ideas ? –  AEA Jun 21 '13 at 2:44
1  
re.findall(pattern0, item) was my fault. It should be pattern0.findall(item). –  falsetru Jun 21 '13 at 3:27
1  
items[0] in your code always refers to the first item. –  falsetru Jun 21 '13 at 3:28
1  
float is not needed unless you do some arithmetic with id. –  falsetru Jun 21 '13 at 3:29
1  
re.findall(....)[0] return only the first match. It will not be the issue if there is only one match. –  falsetru Jun 21 '13 at 3:29

Try replacing items [0] with item:

for item in enumerate(items):
    pattern0 = re.compile('ID: (.*?) <br>')
    idnumber = float(re.findall(pattern0, item)[0])

If you are iterating over each item, then why not use each item?

share|improve this answer
    
Cheers for answer yeh I did try this it returned this error: TypeError: expected string or buffer –  AEA Jun 21 '13 at 2:53

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