3

I am getting the following error with Python 3.1.4 which used to work well in Python 2.7.2.

TypeError: Can't convert 'list' object to str implicitly. I get the error on the if statement. Please let me know how to fix this. Thanks!

In

for word in keywords: # Iterate through keywords
    if re.search(r"\b"+word+r"\b",line1):           #Search kewords in the input line

Update1:

I am trying to create a list from keywords which is in a file. Each line has one keyword. Am I reading the file properly?

keyword_file=r"KEYWORDS.txt"
f0=open(keyword_file,'r')
keywords = map(lambda a: a.split('\n'),map(str.lower, f0.readlines()))

keyword file contains:

Keyword1
Keyword2
.
.
.
Keywordn

I want a list called keywords = ['Keyword1','Keyword2',...,'Keywordn']

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  • 2
    either word or line1 seems to be list instead of a string, like you expect. Which of those it is I can't tell, you'd have to provide more code. – Niklas B. Feb 6 '12 at 18:48
  • What is the list here? line1? re.search() takes the pattern and the string to search in, not a list. – Sid Feb 6 '12 at 18:49
  • @NiklasB. You are correct. Word is a list. Please see my edit question for more information. I am having trouble importing the list in the right format. – Zenvega Feb 6 '12 at 18:53
  • @Pradeep: I don't see any update.. – Niklas B. Feb 6 '12 at 18:55
3

You split the lines although they have already been split by readlines(). This should work:

# actually no need for readline() here, the file object can be
# directly used to iterate over the lines
keywords = (line.strip().lower() for line in f0)
# ...
for word in keywords:
  if re.search(r"\b"+word+r"\b",line1):

What's used here is a generator expression. You should learn about those, they are quite handy, as well as about list comprehensions which can often be used to replace map and filter.

Note that it might be more performant to create the regular expression before the loop, like this:

keywords = (line.strip() for line in f0)
# use re.escape here in case the keyword contains a special regex character
regex = r'\b({0})\b'.format('|'.join(map(re.escape, keywords)))
# pre-compile the regex (build up the state machine)
regex = re.compile(regex, re.IGNORECASE)

# inside the loop over the lines
if regex.search(line1)
  print "ok"
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  • Thanks Niklas. the keywords list is not in the expect format. I am unable to view it because it is a generator object. Can it be made to look like keywords = ['Keyword1','Keyword2',...,'Keywordn'] – Zenvega Feb 6 '12 at 19:17
  • yes, by using a list comprehension instead: keywords = [x.strip().lower() for x in f0.readlines()] – Niklas B. Feb 6 '12 at 19:18
  • drop .readlines(). You don't need to create a list of lines here. – jfs Feb 6 '12 at 21:38
  • If keywords may overlap then the longer keywords should go before the shorter one (if you'd like to extract the match). – jfs Feb 6 '12 at 21:39
  • @J.F.Sebastian: You are right about the first suggestion, I edited this (must have missed it when copying the original code). I don't quite get your second point, though: Why should longer keywords be preferred? We use \b to match the word boundary as well. – Niklas B. Feb 6 '12 at 21:41
1

It means that your keyword object contains lists.

# this is valid:
import re
keywords=["a","b","c"]

for word in keywords: # Iterate through keywords
    if re.search(r"\b"+word+r"\b",line1):
        print "ok"

# this is not valid. This is the kind of error you get:    
keywords=[["a","b"],"c"]

for word in keywords: # Iterate through keywords
    if re.search(r"\b"+word+r"\b",line1):
        print "ok"

You should print word to make sure you understand what it is. It's possible but not likely that you would like to use "".join(word) instead of word in your regular expression.

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