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 a = 0
 b = 0
 c = 0
 d = 0

fruit = {
'lemons': [],
'apples': [],
'cherries': [],
'oranges': [],

def count():
    fruit = input("What fruit are you getting at the store? ")
    if fruit == 'lemons':
        fruit['lemons'] = a + 1
    elif fruit == 'apples':
                fruit['apples'] = b + 1
    elif fruit == 'cherries':
                fruit['cherries'] = c + 1

    elif fruit == 'oranges':
                fruit['oranges'] = d + 1
    else: ????

Hey, I'm trying to do two things here: 1) count how many occurrences of a certain word (in this case, certain types of fruit), appear in a document- which I am attempting to simulate here with a simple input function. I know it's not perfect, but I can't figure out how to make each occurrence increase the value for the appropriate key incrementally. For instance, if I call this function twice and type "lemons", the count should be 2, but it remains 1. In other words, my function is a lemon, but I don't know why.

The last thing I am having trouble with is the else function. 2 ) My program will be looking in pre-defined sections of a document, and I would like my else function to create a key: value pair in the dictionary if the existing key does not exist. For instance, if my program encounters the word 'banana', I would like to add the k:v pair { 'banana': [] } to the current dictionary so I can start counting those occurrences. But it seems like this would require me to not only add the k:v pair to the dictionary (which I don't rightly know how to do), but to add a function and variable to count the occurrences like the other k:v pairs.

Does this entire set up make sense for what I'm trying to do? Please help.

share|improve this question
your're calling your dictionary, "fruit" and your input variable "fruit" as well...that's not going to work very well. –  Gerrat Jun 2 '11 at 12:34

2 Answers 2

up vote 4 down vote accepted

You seem to have multiple variables called fruit, that's a bad idea. And if you're just counting, you should start with 0, not []. You can write your code way easier as:

import collections
result = collections.defaultdict(int)
def count():
    fruit = input("What fruit are you getting at the store? ")
    result[fruit] += 1

In Python 3.1+, you should use collections.Counter instead of collections.defaultdict(int). If you don't want to use the collections module at all, you could also write out the defaultdict functionality:

result = {}
def count():
    fruit = input("What fruit are you getting at the store? ")
    if fruit not in result:
        result[fruit] = 0 # Create a new entry in the dictionary. 0 == int()
    result[fruit] += 1
share|improve this answer
that worked perfectly, thank you. –  user26059 Jun 2 '11 at 12:41
r/3.1+/2.7+. ............ –  katrielalex Jun 2 '11 at 14:22
@katrielalex Updated, no-one's using Python 3.0 anyway. –  phihag Jun 2 '11 at 15:06
I meant that Counter is in 2.7... should have said it clearly! My bad. –  katrielalex Jun 3 '11 at 8:42
@katrielalex No, I understood you fine. Counter is in range(2.7, 3) and range(3.1, infinity) (i.e. not in 3.0). –  phihag Jun 3 '11 at 17:33

You might do it by this way:

fruits = {
    'lemons': 0,
    'apples': 0,
    'cherries': 0,
    'oranges': 0,

fruit = input("What fruit are you getting at the store? ")

if fruits.has_key(fruit):
   fruits[fruit] += 1
share|improve this answer
has—key is deprecated, use in instead. –  katrielalex Jun 2 '11 at 14:22

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