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I have a list of letters, L[], and I would like to run through a master list of words and only return words that are composed of the letters in L.

The letters in L can be only repeated some specific number of times (think drawing Scrabble letters), which is to say that...

['a', 'e', 't']
['a', 'e', 'e', 't']
['a', 'e', 'e', 'e', 't']

...are three different, valid lists.

If the operation were given

L = ['a', 'e', 't']

and a dictionary of words to run through, it would match

a
at
ate
eat
tea
ta
...

but would not match

aa
atta
tata
tate
tet
...

I can't use

set(W).issubset(L) 

because of the repeated letters, and I can't use

all(x in L for x in W)

because that will match an unlimited number of repeats.

I thought about either pop()ing every element in L that matches one in W, or numbering subsequent occurrences of a letter, like

    ['a', 'a1', 'a2', 'e', 'e1', 't']

to be able to use sets, but I wondered if there was a simpler way I am missing?

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2 Answers 2

Since subtraction of Counters only keeps positive counts

from collections import Counter
not(Counter(W) - Counter(L))

eg:

>>> not(Counter('a') - Counter('aet'))
True
>>> not(Counter('ate') - Counter('aet'))
True
>>> not(Counter('tea') - Counter('aet'))
True
>>> not(Counter('aa') - Counter('aet'))
False
>>> not(Counter('tata') - Counter('aet'))
False
>>> not(Counter('tet') - Counter('aet'))
False

Of course L can be any sequence of items - list, set, etc.

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1  
Crazy fast. +1. –  aIKid Jan 21 at 3:03
    
This is not correct. Counter('a') <= Counter('bcd') is true although "a" is not a possible word made from the letters "bcd". The less-than operator for Counter only takes account of the number of objects. –  BrenBarn Jan 21 at 3:06
    
@BrenBarn, good spotting. I changed by approach –  gnibbler Jan 21 at 3:11
    
Oh winrar! I am not familiar with Counter, but had seen it referenced in other list questions. I hadn't thought of testing for the failure condition of trying to remove all of L from W. Thanks! –  cshirky Jan 21 at 3:19
    
And I see you've expanded your answer with more explanatory text, many thanks for that as well. (And I just looked at your profile -- ~3K answers! I am in awe.) –  cshirky Jan 21 at 3:25

Use collections.Counter:

def possible(letters, word):
    available = collections.Counter(letters)
    present = collections.Counter(word)
    return all(present[let] <= available[let] for let in present)
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Counter has comparison operators defined. –  Tim Jan 21 at 3:06
    
@Tim: It does, but they don't do what this problem requires, as far as I can see. –  BrenBarn Jan 21 at 3:07
    
You're right, my mistake. –  Tim Jan 21 at 3:08

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