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How can I check how many times 0 1 2 3 4 5 6 7 8 9 appears in the input and put it in a list.

For example after someone inputs 122033, the function should return the following list:

[1,1,2,2] 
  • result[0]=1 means that 0 occurs 1 time
  • result[1]=1 means that 1 occurs 1 time
  • result[2]=2 means that 2 occurs 2 times
  • result[3]=2 means that 3 occurs 2 times

Please help I been stuck on how to do this for a day or two. It says I'm suppose to use result = 10 * [0]

Here is an example of an output

Enter a string of numbers: 4567899678
4 occurs 1 time
5 occurs 1 time
6 occurs 2 times
7 occurs 2 times
8 occurs 2 times
9 occurs 2 times

So far I tried this but I don't think that is how I'm suppose to do it.

def countdigits(aString):
    d = {}
    for i in aString:
        if i in d:
            d[i] = d[i]+1
        else:
            d[i] = 1
    return d
def main():
    aString=input("Enter numbers:")
    print(countdigits(aString))
main()
share|improve this question
    
Please don't use the homework tag, it is being removed from Stack Overflow. –  Martijn Pieters Mar 14 '13 at 9:57
    
Sorry about using the homework tag –  Jett Mar 14 '13 at 9:59
1  
The answers provided are great. They do exactly what you want. If this is homework however, I don't think library solutions will be accepted. You will also not really learn anything. –  msvalkon Mar 14 '13 at 10:01
    
Sorry, I know your answers are correct but I'm not really allowed to use collections yet because we are not that far ahead in our study. I'm suppose to use def countdigits(aString) and def main() .Sorry for the inconvenience. –  Jett Mar 14 '13 at 10:01
1  
If this is Python 2.x you should use raw_input() instead of input(). Otherwise bad things could happen, given malicious user input. –  moooeeeep Mar 14 '13 at 10:20

3 Answers 3

up vote 3 down vote accepted
>>> import collections
>>> a = collections.Counter([1,1,2,2])
>>> a
Counter({1: 2, 2: 2})
>>> a[1]
2 
>>> a[2]
2
>>> 

if you are not supposed to use collections:

def count_digits(s):
    res = [0]*10
    for x in s:
        res[int(x)] += 1
    return res
share|improve this answer
    
This works thank you so much. I have another question if you don't mind. How can I remove the 0s. So that the list comes out [1,1,2,2] instead is coming out as [1, 1, 2, 2, 0, 0, 0, 0, 0, 0] –  Jett Mar 14 '13 at 10:26

remove the zeros :

def count_digits(s):
    res = [0]*10
    for x in s:
        res[int(x)] += 1
    while 0 in res:
        re.remove(0)
    return res
share|improve this answer

Though your task is better solved using e.g. Counter, like other answers suggest, it does not conform to the hint of using result = 10 * [0]. Here's the intended solution:

def digit_count(number):
    # Make sure number is a string
    number = str(number)
    counts = [0] * 10
    for digit in number:
        counts[int(digit)] += 1
    return counts

counts = digit_count(122033)

for digit, count in enumerate(counts):
    if count == 0:
        continue
    print "{0} occurs {1} time{2}".format(
        digit, count, "" if count == 1 else "s")

Note that digit_count only accepts an positive integer or a string of digits. It raises a ValueError if you supply a negative number, a float or a complex number.

share|improve this answer
    
I think this probably fits in the assignment - although I believe the OP was on a better track using a dict if the end result is filtering out empty occurrences anyway... Anyway - breaking is good in this case - as it means it's a non-digit - I would consider that desired behaviour... –  Jon Clements Mar 14 '13 at 10:15

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