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I am trying to count the number of times punctuation characters appear in a novel. For example, I want to find the occurrences of question marks and periods along with all the other non alphanumeric characters. Then I want to insert them into a csv file. I am not sure how to do the regex because I don't have that much experience with python. Can someone help me out?

texts=string.punctuation
counts=dict(Counter(w.lower() for w in re.findall(r"\w+", open(cwd+"/"+book).read())))
writer = csv.writer(open("author.csv", 'a'))
writer.writerow([counts.get(fieldname,0) for fieldname in texts])
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Don't do frequency counting with regex. Just loop character by character and filter out letters, digits and spaces, and push the rest into a dict for frequency counting. Or another way is to replace all letters, digits and spaces, then loop through the remaining string (which is cleaner). –  nhahtdh Apr 30 '13 at 4:14
    
You are defeating the purpose of a Counter by down-initialising it into a dictionary and then calling .get(x, 0) when you could have just left it as a counter, which returns 0 for missing items –  jamylak Apr 30 '13 at 4:24
    
you don't need regex at all, just check if the character is in the string module's punctuation string when iterating through the novel –  Ryan Saxe Apr 30 '13 at 4:34

4 Answers 4

up vote 4 down vote accepted
In [1]: from string import punctuation

In [2]: from collections import Counter

In [3]: counts = Counter(open('novel.txt').read())

In [4]: punctuation_counts = {k:v for k, v in counts.iteritems() if k in punctuation}
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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. –  slm Apr 30 '13 at 4:40
1  
The only real problem I have with this is that you load the whole novel into memory at once!!! open('novel.txt').read() I can imagine any averaged sized novel will make this quite a memory intensive operation. –  jamylak Apr 30 '13 at 6:40
    
@jamylak, the entire King James bible is only a few megabytes. (4.4MB when unzipped). –  Sean Harnett Apr 30 '13 at 11:13
from string import punctuation
from collections import Counter

with open('novel.txt') as f: # closes the file for you which is important!
    c = Counter(c for line in f for c in line if c in punctuation)

This also avoids loading the whole novel into memory at once.

Btw this is what string.punctuation looks like:

>>> punctuation
'!"#$%&\'()*+,-./:;<=>?@[\\]^_`{|}~'

You may want to add or detract symbols from here depending on your needs.

Also Counter defines a __missing__ with simply does return 0. So instead of down-initialising it into a dictionary and then calling .get(x, 0). Just leave it as a counter and access it like c[x], if it doesn't exist, its count is 0. I'm not sure why everybody has the sudden urge to downgrade all their Counters into dicts just because of the scary looking Counter([...]) you see when you print one, when in fact Counters are dictionaries too and deserve respect.

writer.writerow([counts.get(c, 0) for c in punctuation])

If you leave your counter you can just do this:

writer.writerow([counts[c] for c in punctuation])

and that was much easier.

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The code you have is very close to what you'd need if you were counting words. If you were trying to count words, the only modification you'd have to make would probably be to change the last line to this:

writer.writerows(counts.items())

Unfortunately, you're not trying to count words here. If you're looking for counts of single characters, I'd avoid using regular expressions and go straight to count. Your code might look like this:

book_text = open(cwd+"/"+book).read()
counts = {}
for character in texts:
    counts[character] = book_text.count(character)
writer.writerows(counts.items())

As you might be able to tell, this makes a dictionary with the characters as keys and the number of times that character appears in the text as the value. Then we write it as we would have done for counting words.

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Using curses:

import curses.ascii
str1 = "real, and? or, and? what."
t = (c for c in str1 if curses.ascii.ispunct(c))
d = dict()
for p in t:
    d[p] = 1 if not p in d else d[p] + 1 for p in t
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There's no need for that for loop; just use d = Counter(t). Furthermore, you could use map rather than that generator expression, although that might not be quite so obvious. –  icktoofay Apr 30 '13 at 4:27
    
Try and avoid using str as a variable name, since you might need to use str(1) later in your program and now you can't –  jamylak Apr 30 '13 at 6:32

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