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hi so im using python and i'm trying to create a function that lets me generate words made up of 2 letters. i also want to count how many of the words generated are actually in the dictionary.

this is what i have so far:

alphabet = ('a','b','c','d','e','f','g','h','i','j','k','l','m','n','o',
            'p','q','r','s','t','u','v','w','x','y','z')
count1 = 0
text = " "

def find2LetterWords():
    for letter in alphabet:
        text += letter
        for letter in alphabet:
            text +=letter
    print text

this is the code i have written so far and i know its not right. i was just experimenting. so yea it would be great if u could help me out. thx.

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1  
Using differently named loop control variables would be a good start, as would moving your print statement into the first for loop level and resetting text on each iteration. Otherwise, text will just be aaabacadae... and so on and so forth. –  Edwin Jun 11 '12 at 0:15
4  
instead of that alphabet tuple, you might want to use string.ascii_lowercase –  Junuxx Jun 11 '12 at 0:24
    
@edwin im new to programming so im not sure what a loop control variable is. and yea i'll fix the print statement as well. thx. –  321 Jun 11 '12 at 0:58
    
@321: He means you are using letter in both for loops. –  Junuxx Jun 11 '12 at 0:58
    
@junuxx would that make it easier? id rather not try that as i'm new to this –  321 Jun 11 '12 at 0:59

5 Answers 5

up vote 0 down vote accepted

Answer edited based on comments:

def find2LetterWords():
     #this generates all possible 2-letter combos with a list comprehension
     words = [first + second for second in alphabet for first in alphabet]
     #create a new list with only those words that are in your_dictionary (a list)
     real_words = [word for word in words if word in your_dictionary]
     return real_words

If you want a nice one liner, with no function:

[word for word in [first + second for second in alphabet for first in alphabet] if word in your_dictionary]

Obviously, replace your_dictionary with whatever the name of your dictionary is.

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Well, that depends on what kind of container your dictionary is. Are all the words in a list? –  HodofHod Jun 11 '12 at 1:35
    
thx for ur help. this is great. i realized that part of the problem wast that i wasnt nesting the for loop propely. ok so i have a dictionary. so how exactly would i count the words generated that actually are in the dictionary? Akavall showed me this code: counts = sum(len(k) == 2 for k in my_dict.iterkeys()) but im not using itertool. im not sure how i would do it if i used a loop like urs. –  321 Jun 11 '12 at 1:48
    
hmm im not sure i'll check –  321 Jun 11 '12 at 1:49
    
yes its in a list –  321 Jun 11 '12 at 1:49
1  
ok thx a bunch. this was great. ive chosen ur code as the best answer b/c it was simpler for me to understand. plus, instead of the ascii, the letters need to be in a list. –  321 Jun 11 '12 at 2:33

product from the itertools module is exactly what you need to generate a list of all possible 2-letter words.

from itertools import product

alphabet = ('a','b','c','d','e','f','g','h','i','j','k','l','m','n','o','p','q','r','s','t','u','v','w','x','y','z')

two_letter_words = product(alphabet, alphabet)

for word in two_letter_words:
    print word

To compare which one of those are in the dictionary you will need to get that from somewhere else

share|improve this answer
    
+1, but you can do ''.join(word) so a string is printed instead of a tuple, minor point. –  Akavall Jun 11 '12 at 0:27
    
+1 for mentioning itertools –  Levon Jun 11 '12 at 0:31
2  
good call with itertools. while using it, important to be aware that product will ultimately yield 26^2 entries, so while this will definitely be efficient in terms of memory (as a generator function), it may not be the best algorithm for the problem (esp with longer words). –  Jeff Tratner Jun 11 '12 at 0:42
    
@toote im actually new to python and programming for that matter so i dont know what itertool is. could u explain it to me plz? thx. and i also noticed that u didnt use a function. how would i do this using a function? –  321 Jun 11 '12 at 0:55
    
@321: Itertools is a builtin Python module with handy things such as the product function and more. You should accept this answer, it's clearly the best as my comparison shows. –  Junuxx Jun 11 '12 at 1:00

Another way, with a list comprehension:

words = [x+y for x in alphabet for y in alphabet]

Or without typing out the alphabet yourself:

from string import ascii_lowercase as a
words = [x+y for x in a for y in a]

Let's do a comparison of the answers by xvatar, Toote and me:

from itertools import product
from string import ascii_lowercase as a
import timeit

def nestedFor():
    w = []
    for l1 in a:
        for l2 in a:
            word = l1+l2
            w.append(word)
    return w

def nestedForIter():
    w = []
    for l1 in a:
        for l2 in a:
            yield l1+l2

def withProduct():
    return product(a,a)

def listComp():
    return [x+y for x in a for y in a]

def generatorComp():
    return (x+y for x in a for y in a)

# return list
t1 =  timeit.Timer(stmt="nestedFor()",
                   setup = "from __main__ import nestedFor")
t2 = timeit.Timer(stmt="list(withProduct())",
                   setup = "from __main__ import withProduct")
t3 = timeit.Timer(stmt="listComp()",
                   setup = "from __main__ import listComp")

# return iterator
t4 = timeit.Timer(stmt="nestedForIter()",
                   setup = "from __main__ import nestedForIter")
t5 = timeit.Timer(stmt="withProduct()",
                   setup = "from __main__ import withProduct")
t6 = timeit.Timer(stmt="generatorComp()",
                   setup = "from __main__ import generatorComp")

n = 100000

print 'Methods returning lists:'
print "Nested for loops:   %.3f" % t1.timeit(n)
print "list(product):      %.3f" % t2.timeit(n)
print "List comprehension: %.3f\n" % t3.timeit(n)

print 'Methods returning iterators:'
print "Nested for iterator:     %.3f" % t4.timeit(n)
print "itertools.product:       %.3f" % t5.timeit(n)
print "Generator comprehension: %.3f\n" % t6.timeit(n)

Results:

Methods returning lists:
Nested for loops: 13.362
list(product): 4.578
List comprehension: 7.231

Methods returning generators:
Nested for iterator: 0.045
itertools.product: 0.212
Generator comprehension: 0.066

In other words, definitely use itertools.product if you really need a full list. However, a generator is faster and requires less memory, and will probably suffice.

The relative slowness of itertools.product as an iterator is unexpected, considering that the documentation says that it is equivalent to nested for-loops in a generator expression. It seems there is some overhead.

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For nestedFor() try returning a generator. It actually performs better than itertools.product on my machine. Thanks for doing the timings. –  Akavall Jun 11 '12 at 1:05
    
thx. ur way actually is much simpler but the down side is that my code needs to be a function. –  321 Jun 11 '12 at 1:10
    
@Akavall: Good suggestion, I'll add it to the comparison. –  Junuxx Jun 11 '12 at 1:22
    
@321: See listComp in the comparison code for my approach in the form of a function. –  Junuxx Jun 11 '12 at 1:23
    
@Akavall: Note that the generator comprehension also outperforms itertools.product –  Junuxx Jun 11 '12 at 1:28
def find2LetterWords():
    words = []
    for first in alphabet:
        for second in alphabet:
            new_word = first + second
            words.append(new_word)
    print words
    return words
share|improve this answer

The first part of the question is already well answered, but here is the second.

i also want to count how many of the words generated are actually in the dictionary.

Actually this is very easy. You know that you list of words has all possible combinations in it. And you know that dictionary keys are unique; therefore, key that is two characters long must be in the word list. All you need to do is count number of keys that have length 2.

counts = sum(len(k) == 2 for k in my_dict.iterkeys())
share|improve this answer
    
ahh i see. thx. so i just import a dictionary and do this in the for loop, right? makes sense. –  321 Jun 11 '12 at 1:07
    
I am not sure what you mean "do this in the for loop", all you have to do is use the for loop that is in my code. –  Akavall Jun 11 '12 at 1:15

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