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I got this code that prints the most common words of a txt file. I want it to print and count words with ' in them. How can I do this?

words = open(input('Enter the name of the file: ')).read().lower().split()
number_of_words = int(input('Enter how many top words you want to see: '))
uniques = []
stop_words = ["a", "an", "and", "in", "is", "the"]
for word in words:
  check_special = False
  if word.isalnum():
    check_special = True
  if word not in uniques and word not in stop_words and check_special:
    uniques.append(word)

counts = []
for unique in uniques:
  count = 0
  for word in words:
    if word == unique:
      count += 1
  counts.append((count, unique))

counts.sort()
counts.reverse()

counts_dict = {count: [] for count, word in counts}
for count, word in counts:
    counts_dict[count].append(word)

count_num_word = 0
for count in counts_dict:
    if count_num_word >= number_of_words:
        break
    print('The following words appeared %d times each: %s' % (count, ', '.join(sorted(counts_dict[count]))))
    count_num_word += 1
3
  • Don't call word.isalnum(), since it will exclude words with punctuation in them.
    – Barmar
    Dec 8, 2022 at 5:25
  • If you want to exclude other punctuation, but allow ', you'll need to add a check that all the non-alphanumeric characters are '.
    – Barmar
    Dec 8, 2022 at 5:26
  • So instead of word.isalnum() what can I use? I'm new with python. Dec 8, 2022 at 5:30

1 Answer 1

2

Write your own function that checks whether every character in a string is alphanumeric or quote, and use that instead of word.isalnum().

def alnum_or_quote(s):
    return all(c == "'" or c.isalnum() for c in s)

Then replace if word.isalnum(): with if alnum_or_quote(word):

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