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I'm trying to write a program that allows the user to input a word then find all words of length 4 or greater hidden within that word that are in a word text file. So far my code can detect the words in the user inputted word that aren't jumbled. For example if I type in houses, the output will show house, houses, ho, us, use, uses. It should also recognize hose, hoses, shoe, shoes, hues, etc.

I know itertools is the simplest solution but I want to use a different method using only loops, dictionaries, and lists.

Here is my code so far:

def main():
    filename = open('dictionary.txt').readlines()
    word_list = []
    for line in filename:
        word_list.append(line.strip())

    print 'Lets Play Words within a Word!\n'
    word = raw_input('Enter a word: ')
    words_left = 0
    for words in word_list:
        letters = list(words)
        if words in word:
            print words
            words_left += 1
        else:
            False

The output format I'm trying to create should look like so:

Lets play Words within a Word!

Enter a word: exams #user inputted word

exams ---  6 words are remaining
> same #user types in guess
Found!  # prints 'Found!' if above word is found in the dictionary.txt file

exams ---  5 words are remaining
> exam
Found!

exams ---  4 words are remaining
> mesa
Found!

exams ---  3 words are remaining
> quit() #if they type this command in the game will end

So my question is, after entering the base word (in the ex it's EXAMS), how do I determine the total number of words within that word and if the user inputted word guesses are in the text file? Also print if the word was found.

share|improve this question
    
And what is your question? Try to keep you question focused and do not mix more topics. – Jan Vlcinsky Apr 28 '14 at 1:06
    
Why would it recognize shoes? – A.J. Apr 28 '14 at 1:22

something like this should work...

wordlist=[list of words]
solutionlist=[]
userword=[userword[i] for i in range(len(userword))]
for word in wordlist:
    inword=True
    letters=[word[j] for j in range(len(word))]
    for letter in set(letters):
        if letters.count(letter)>userword.count(letter):
            inword=False
            break
    if inword:
        solutionlist.append(word)

for line in solutionlist:
    print line
share|improve this answer
    
sorry, I missed a part of the question :) deleted my comment. – Erik Allik Apr 28 '14 at 1:18
    
np. Would rather be overinspected than ignored and wrong... – Amazingred Apr 28 '14 at 1:18
    
This is a great foundation to work from. The only issue with I encountered is it prints words that aren't in the text file. – user3521614 Apr 28 '14 at 1:49

This works:

# read from file in actual implementation
all_words = [
    "foo", "bar", "baz", "hose", "hoses", "shoe", "shoes", "hues", "house",
    "houses", "ho", "us", "use", "uses", "shoe", "same", "exam", "mesa", "mass"]

RETAIN_ORDERING = False

def matches(inp, word):
    if inp[0] == word[0]:
        return (
            True if len(word) == 1 else
            False if len(inp) == 1 else
            matches(inp[1:], word[1:]))
    else:
        return matches(inp[1:], word) if len(inp) >= 2 else False

# with sorting enabled, "houses" will also match "shoe"; otherwise not
def maybe_sort(x):
    return x if RETAIN_ORDERING else ''.join(sorted(x))

inp = raw_input("enter a word: ")

results = [word for word in all_words if matches(maybe_sort(inp), maybe_sort(word))]

print results

Output:

$ python matches.py 
enter a word: houses
['hose', 'hoses', 'shoe', 'shoes', 'hues', 'house', 'houses', 'ho', 'us', 'use', 'uses', 'shoe']
$ python matches.py 
enter a word: exams
['same', 'exam', 'mesa']

If you want to avoid matches like shoe where the ordering of letters is not the same as in the input, just set RETAIN_ORDERING = True.

share|improve this answer
    
How does this help with anything? You just hardcoded the answer into the first line... if you time exams at the input, it returns []... – A.J. Apr 28 '14 at 1:26
    
What are you talking about? I did not hardcode the answer; all_words is simply a sample dataset. I added more strings to the sample dataset and it still prints the same correct output, so you'd believe me. – Erik Allik Apr 28 '14 at 1:27
    
Then why doesn't it print all the correct words if you type in exams? – A.J. Apr 28 '14 at 1:28
    
Which words is it supposed to print for exams in your opinion? I'm using a SAMPLE dataset; if does not have to work with ANY word. If you add "same" to the dataset, it will output it when you enter exams (but not when you enter houses), but not if it's not in the dataset. – Erik Allik Apr 28 '14 at 1:29

A naive implementation (using collections.Counter):

>>> all_words = ['foo', 'bar', 'baz', 'hose', 'hoses', 'shoe', 'shoes', 'hues', 'house', 'houses', 'ho', 'us', 'use', 'uses', 'shoe', 'same', 'exam', 'mesa', 'mass']

>>> def find_hidden(user_input):
        from collections import Counter
        user_word_counts = Counter(user_input)
        for word in all_words:
            isvalid = True
            for letter, count in Counter(word).iteritems():
                if user_word_counts[letter] == 0 or user_word_counts[letter] < count:
                    isvalid = False
                    break
            if isvalid: yield word


>>> list(find_hidden("houses"))
['hose', 'hoses', 'shoe', 'shoes', 'hues', 'house', 'houses', 'ho', 'us', 'use', 'uses', 'shoe']
>>> list(find_hidden("exams"))
['same', 'exam', 'mesa']

Or,

Using permutations:

>>> all_words = ['foo', 'bar', 'baz', 'hose', 'hoses', 'shoe', 'shoes', 'hues', 'house', 'houses', 'ho', 'us', 'use', 'uses', 'shoe', 'same', 'exam', 'mesa', 'mass']
>>> def permutations(s, n): # could use itertools.permutations
        if n == 1:
            for c in s:
                yield c
        for i in range(len(s)):
            for p in permutation(s[:i]+s[i+1:], n-1):
                yield s[i] + p


>>> def find_hidden(input_str):
        for word_len in range(2, len(input_str)+1):
            for word in permutations(input_str, word_len):
                if word in all_words:
                    yield word


>>> set(find_hidden("houses"))
set(['use', 'hose', 'shoes', 'houses', 'house', 'us', 'hues', 'hoses', 'uses', 'ho', 'shoe'])
>>> set(find_hidden("exams"))
set(['mesa', 'exam', 'same'])
share|improve this answer
    
The OP explicitly said he knew itertools is the simplest approach but he doesn't want to use it... – Erik Allik Apr 28 '14 at 1:12

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