How to get consecutive word count of a string python

Question

I'm trying to make a python script that takes a string and gives the count of consecutive words. Let's say:

string = " i have no idea how to write this script. i have an idea."

output = 
['i', 'have'] 2
['have', 'no'] 1
['no', 'idea'] 1
['idea', 'how'] 1
['how', 'to'] 1
['to', 'write'] 1
...

I'm trying to use python without importing collections, counters from collections. What I have is below. I'm trying to use a re.findall(#whatpatterndoiuse, string) to iterate through the string and compare it but I'm having difficulties figuring out how to.

string2 = re.split('\s+', string. lower())
freq_dict = {} #empty dictionary
for word in word_list:
    word = punctuation.sub("", word)
    freq_dic[word] = freq_dic.get(word,0) + 1

freq_list = freq_dic.items()
freq_list.sort()
for word, freq in freq_list:
    print word, freq

Using counter from collections which I did not want. Also it produce an output in a format that is not the one I stated above.

import re
from collections import Counter
words = re.findall('\w+', open('a.txt').read())
print(Counter(zip(words,words[1:])))

Answer 1

Solving this without zip is fairly simple. Just build tuples of each pair of words and track their count in a dict. There are just a few special cases to watch for - when the input string only has one word, and when you are at the end of the string.

Give this a shot:

def freq(input_string):
    freq = {}
    words = input_string.split()
    if len(words) == 1:
        return freq

    for idx, word in enumerate(words):
        if idx+1 < len(words):
            word_pair = (word, words[idx+1])
            if word_pair in freq:
                freq[word_pair] += 1
            else:
                freq[word_pair] = 1

    return freq

Answer 2

You need to solve three problems:

1. generate all pairs of words (['i', 'have'], ['have', 'no'], ...);
2. count the occurrences of these pair of words;
3. sort the pairs from the most common to the least common.

The second problem can be easily solved by using a Counter. Counter objects also provide a most_common() method to solve the third problem.

The first problem can be solved in many ways. The most compact way is using zip:

>>> import re
>>> s = 'i have no idea how to write this script. i have an idea.'
>>> words = re.findall('\w+', s)
>>> pairs = zip(words, words[1:])
>>> list(pairs)
[('i', 'have'), ('have', 'no'), ('no', 'idea'), ...]

Putting everything together:

import collections
import re

def count_pairs(s):
    """
    Returns a mapping that links each pair of words
    to its number of occurrences.
    """
    words = re.findall('\w+', s.lower())
    pairs = zip(words, words[1:])
    return collections.Counter(pairs)

def print_freqs(s):
    """
    Prints the number of occurrences of word pairs
    from the most common to the least common.
    """
    cnt = count_pairs(s)
    for pair, count in cnt.most_common():
        print list(pair), count

EDIT: I realized just now that I accidentally read "with collections, counters, ..." instead of "with out importing collections, ...". My bad, sorry.

Answer 3

string = "i have no idea how to write this script. i have an idea."
def count_words(string):
    ''' warning, won't work with a leading or trailing space,
    though all you would have to do is check if there is one, and remove it.'''
    x = string.split(' ')
    return len(x)

Answer 4

I figured it out answer is posted below. :). It takes a TXT file, but that can easily be manipulated to take in a string. Simple remove arg1 and insert your own string !!!

script, arg1 = argv #takes 2 arguments
#conditions
try:
        sys.argv[1]
except IndexError:
        print('doesnt work insert 2 arguments\n')
        exit()



with open(arg1, 'r') as content_file: #open file
        textsplit = content_file.read() #read it
        textsplit = textsplit.lower() #lowercase it
word_list = textsplit.split() #split file put into var word_lists

textsplit = re.sub(r"[^\w\s]+", "", textsplit).split() #remove white space

#print textsplit

freq_dic = {} #creates empty dictionary

for i in range( 0, len(textsplit)-1): #counter to itterate
        key = textsplit[i] + ',' + textsplit[i+1] # produces corresponding keys
        try:
                freq_dic[key]+=1 #if
        except:
                freq_dic[key]=1 #if not

for word in freq_dic:

        print [word], freq_dic[word]