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How to extract all the numbers in a string?

For example, consider a string "66,55,66,57". I want to extract each numbers into separate variables and perform integer arithmetic.

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marked as duplicate by Josh Mein, Vitus, iCodez, Patrick Evans, Karmic Coder Aug 23 '13 at 19:39

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
What have you tried so far? What are the results of your research? –  Felix Kling Oct 23 '11 at 16:30
    
Do you need an explicit variable for each number or do you just want to sum every integer? Would an array of numbers be alright (you could reduce over it)? If so, python has a split method on all strings in which you pass a character "," and it will return an array of the values separated by the comma. –  Erik Hinton Oct 23 '11 at 16:31
2  
Define "number". –  Tim Pietzcker Oct 23 '11 at 16:32
    
by number i mean the integer..any ways i got the desired answer,thank u –  jaganath Oct 23 '11 at 16:54
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3 Answers

up vote 8 down vote accepted

You can use a list comprehension along with str.split to break up the string and convert it to integers:

>>> string  = "66,55,66,57"
>>> numbers = [int(x) for x in string.split(",")]

>>> print numbers
[66, 55, 66, 57]

Then you can do whatever you want with that list. For example:

>>> sum(numbers)
244
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The proposal even earlier methods are not suitable if the string contains other delimiters or special characters. I suggest another method:

import re

s = '123 @, 421, 57&as241'

result = re.findall(r'[0-9]+', s)

in result: ['123', '421', '57', '241']

and if you want you can convert string values to int:

result_int = map(int, result)
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Try this:

s = "66,55,66,57"
its = iter(s)
ints = []
while 1:
    try:
        ints.append(int(''.join(takewhile(str.isdigit, its))))
    except ValueError:
        break

Will give you a list of integers in ints.

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