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How would you add a constant number, say 1, to a value in a dictionary if certain conditions are fulfilled.

For example, if I had a dictionary:

dict = {'0':3, '1':3, '2':4, '3':4, '4':4}

If I simply wanted to add the integer 1 to every value in the dictionary so it updates dict as this:

dict = {'0':4, '1':4, '2':5, '3':5, '4':5}

When I used the following code where the Cur_FID is the first one in the dictionary '0', it gave me a value of 5? It should have given me 4. ??

for lucodes in gridList2:   # a list of the values [3,3,4,4,4] -- have to separate out because it's part of a larger nested list
    if lucodes > 1:
        if lucodes < 5:
            FID_GC_dict[Cur_FID] = lucodes + 1

print FID_GC_dict[Cur_FID]   #returned 5??? weird

I want to add 1 to all the values, but stopped here when the first dictionary update did something weird.

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1  
You can write your comparison as if 1 < lucodes < 5: –  katrielalex Mar 8 '12 at 19:50
    
Thanks...I will shorten it up. –  Linda Mar 8 '12 at 19:57
    
I think that you need to post code concerning where you set/change Cur_FID. I have a feeling that it's being used twice for updates in FID_GC_dict –  inspectorG4dget Mar 8 '12 at 20:17
    
Ok, I'm going to repost the whole code so it makes a little more sense. –  Linda Mar 8 '12 at 20:24

3 Answers 3

up vote 3 down vote accepted

One simple way to do this is to use a collections.Counter object, which you can use in every way like a normal dictionary in most ways but it is optimized for keeping a count of items:

>>> from collections import Counter
>>> d = Counter({'0':3, '1':3, '2':4, '3':4, '4':4})
>>> d
Counter({'3': 4, '2': 4, '4': 4, '1': 3, '0': 3})
>>> d.update(d.keys())
>>> d
Counter({'3': 5, '2': 5, '4': 5, '1': 4, '0': 4})

As for only doing it when certain conditions are fulfilled, just use a comprehension or generator to only pass the list of the keys you want to increment to d.update():

>>> d = Counter({'3': 4, '2': 4, '4': 4, '1': 3, '0': 3})
>>> d.update((k for k, v in d.items() if v == 4))
>>> d
Counter({'3': 5, '2': 5, '4': 5, '1': 3, '0': 3})
share|improve this answer
    
Clever...very good! Thanks for your help. –  Linda Mar 8 '12 at 19:58
    
+1 lovely use of a Counter! –  katrielalex Mar 8 '12 at 19:59
    
But what if the dictionary is huge and I only want to update the key:values for the ones listed in gridList2? How would I handle that? –  Linda Mar 8 '12 at 20:01
    
@Linda - Is gridList2 a list of keys, a list of key/value tuples, or a list of values? –  Andrew Clark Mar 8 '12 at 20:02
    
It's a list of values corresponding to an adjacent neighbors matrix. I have a dictionary (the one I'm trying to update). I also have a nested list of adjacent neighbors. I use the dictionary to populate the nested gridList2 based on nested neighbor list. If certain conditions, apply I want to update the dictionary only corresponding to the nested gridList2. Make sense? –  Linda Mar 8 '12 at 20:07

Another way of doing this would be to use the items() method of dictionary which returns a list of key, value tuples:

def f(dict):
    for entry in dict.items():
        if entry[1] > 1 and entry[1] < 5:
            dict[entry[0]] = entry[1] + 1
    return dict

You can then extend this to take an arbitrary function:

def f(dict, func):
    for entry in dict.items():
        if func(entry[1]):
            dict[entry[0]] = entry[1] + 1
    return dict

This can be provided a function such as:

def is_greater_than_one(x):
    return x > 1

and called in the following way:

f(input_dictionary,is_greater_than_one)
share|improve this answer
    
Thank you very much for your answer. I think I asked it too simply? What if the dictionary is quite large and I only wanted to update the 4 items in the dictionary based on the conditions met when processing gridList2? I don't want to update every single item in the dictionary, just a select few. I know I wasn't clear in asking my initial question. Thanks for any help. –  Linda Mar 8 '12 at 20:21

Your code says the following:

for each value in [3,3,4,4,4]:
    if 1 < value < 5:
        FID_thingy['0'] = value + 1

So it will set FID_thingy['0'] to 4 then 4 then 5 then 5 then 5. Do you see why?

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Because it goes through each value in the list for just the one FID_thingy key. I get it...not sure how to fix it though. –  Linda Mar 8 '12 at 19:55

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