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I have a list of dictionaries as follows:

list = [ { 'a':'1' , 'b':'2' , 'c':'3' }, { 'd':'4' , 'e':'5' , 'f':'6' } ]

How do I convert the values of each dictionary inside the list to int/float?

So it becomes:

list = [ { 'a':1 , 'b':2 , 'c':3 }, { 'd':4 , 'e':5 , 'f':6 } ]

Thanks.

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3  
It is very much discouraged to name variables as builtin types. Hopefully this is just for the purposes of the example, but if not you should avoid this in your code. –  JoshAdel Mar 15 '11 at 19:30
    
Please fix your code from list = [ { 'a':1 , 'b':2 , 'c':3 }}, { 'd':4 , 'e':5 , 'f':6 } ] to list = [ { 'a':1 , 'b':2 , 'c':3 }, { 'd':4 , 'e':5 , 'f':6 } ] –  Guandalino Mar 15 '11 at 19:45
    
@Guandalino: Just wrote the codes on the spot.. sorry abt that. editted. –  siva Mar 17 '11 at 19:27

6 Answers 6

up vote 10 down vote accepted
for sub in the_list:
    for key in sub:
        sub[key] = int(sub[key])

Gives it a casting as an int instead of as a string.

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Doesn't work because the list elements are dictionaries. –  Benjamin Mar 15 '11 at 19:15
    
Haha, I was just changing that around, but yeah Jochen got it correctly, the whole naming your dictionary a list, confused me for a second. –  Jim Mar 15 '11 at 19:21

Gotta love list comprehentions.

[dict([a, int(x)] for a, x in b.iteritems()) for b in list]
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Pretty impressive. –  Guandalino Mar 15 '11 at 21:26
    
pretty hard to digest though agreed impressive! How to deal with: ValueError: empty string for float() for floating and ValueError: invalid literal for int() with base 10: '0.6' for 'integering'? –  siva Mar 17 '11 at 19:25
    
eventually i wud like to do stats on the list items. (max, min, average, stdev) –  siva Mar 17 '11 at 19:34
    
You could write a function to replace the int() call in the comprehention to allow for all of the exeptions you desire. –  Powertieke Mar 18 '11 at 7:43
    
ic.. thanks. i thought you could slit in all in one liner .. haha.. –  siva Mar 18 '11 at 9:33

If that's your exact format, you can go through the list and modify the dictionaries.

for item in list_of_dicts:
    for key, value in item.iteritems():
        try:
            item[key] = int(value)
        except ValueError:
            item[key] = float(value)

If you've got something more general, then you'll have to do some kind of recursive update on the dictionary. Check if the element is a dictionary, if it is, use the recursive update. If it's able to be converted into a float or int, convert it and modify the value in the dictionary. There's no built-in function for this and it can be quite ugly (and non-pythonic since it usually requires calling isinstance).

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To handle the possibility of int, float, and empty string values, I'd use a combination of a list comprehension, dictionary comprehension, along with conditional expressions, as shown:

dicts = [{'a': '1' , 'b': '' , 'c': '3.14159'},
         {'d': '4' , 'e': '5' , 'f': '6'}]

print [{k: int(v) if v and '.' not in v else float(v) if v else None
            for k, v in d.iteritems()}
               for d in dicts]

# [{'a': 1, 'c': 3.14159, 'b': None}, {'e': 5, 'd': 4, 'f': 6}]

However dictionary comprehensions weren't added to Python 2 until version 2.7. It can still be done in earlier versions as a single expression, but has to be written using the dict constructor like the following:

# for pre-Python 2.7

print [dict([k, int(v) if v and '.' not in v else float(v) if v else None]
            for k, v in d.iteritems())
                for d in dicts]

# [{'a': 1, 'c': 3.14159, 'b': None}, {'e': 5, 'd': 4, 'f': 6}]

Note that either way this creates a new dictionary of lists, instead of modifying the original one in-place (which would need to be done differently).

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could I edit the "v" on the spot if v='' , i.e. empty items? would try and see. thanks. helpful. –  siva Mar 18 '11 at 9:36
    
gives a syntax error at '... for k...' –  siva Mar 18 '11 at 12:30
    
Regarding your question about handling empty "v" items: you could rewrite the if expression to deal with them as I've shown in my revised answer. –  martineau Mar 18 '11 at 16:49
    
As to your second question about getting a syntax error at ... for k..., dictionary comprehensions require Python 2.7+ or 3.1+, so using earlier versions could be causing the problem. –  martineau Mar 18 '11 at 16:54
    
Follow up to my last comment: You could replace the int(x) in @Powertieke's answer with the conditional expression similar to what is in mine to get rid of the dictionary comprehension and result in something to use in earlier versions of Python. –  martineau Mar 18 '11 at 17:07

If you'd decide for a solution acting "in place" you could take a look at this one:

>>> d = [ { 'a':'1' , 'b':'2' , 'c':'3' }, { 'd':'4' , 'e':'5' , 'f':'6' } ]
>>> [dt.update({k: int(v)}) for dt in d for k, v in dt.iteritems()]
[None, None, None, None, None, None]
>>> d
[{'a': 1, 'c': 3, 'b': 2}, {'e': 5, 'd': 4, 'f': 6}]

Btw, key order is not preserved because that's the way standard dictionaries work, ie without the concept of order.

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  newlist=[]                       #make an empty list
  for i in list:                   # loop to hv a dict in list  
     s={}                          # make an empty dict to store new dict data 
     for k in i.keys():            # to get keys in the dict of the list 
         s[k]=int(i[k])        # change the values from string to int by int func
     newlist.append(s)             # to add the new dict with integer to the list
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