Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Edited to be contain correct dummy code. -Solved by DSM-

This problem seems simple (in my head), I'm trying to find a way to "update" one dictionaries values based upon another dictionaries k,v pairs.

Dummy text:

>>> dict1 = {'hello':'HELLO', 'bye':'BYE', 'right':'RIGHT', 'left':'LEFT'}
>>> dict2 = {'why':['hello', 'bye'], 'direction': ['left', 'right', 'right', 'right']}

Result I would like: - Simply update dict2 to contain the value of dict1's key if present.

updated_dict = {'why':['HELLO', 'BYE'], 'direction':['LEFT', 'RIGHT', 'RIGHT', 'RIGHT']}

I am trying to do this:

updated_dict = dict()
for v in dict2.values():
    id_list = dict2[v]
    for uniq_id in id_list: 
        new_id = dict1[uniq_id]
        if updated_dict.has_key(uniq_id):
            updated_dict[v].append(uniq_id)
        else:
            updated_dict[v] = list()
            updated_dict[v].append(uniq_id)

This will not work due to the unhashable list. This stumps me, I can't think of a way around this problem, any ideas?

Note This is not a simple lowercase -> uppercase issue, this was simply dummy text created to capture the essence of my problem.

share|improve this question
    
Are all of the different sections that would need to be substituted separated by commas? –  James Apr 22 '13 at 22:51
    
This is more like string replacement than really about updating dict. –  CppLearner Apr 22 '13 at 22:52
    
What happens if dict1 contains 2 value strings that overlap eachother, like {'string1' : 'STRING1', 'string' : 'STRING'}? This is really a hairy problem to try to solve unless you can restrict your data pretty severely. –  Silas Ray Apr 22 '13 at 22:52
    
@ imagine, yes I need to update the dictionary forgot the ' ' brackets around each value –  jon_shep Apr 22 '13 at 22:53
1  
You just made the code invalid. Do you mean to have the values of dict1 be a list or tuple? The current code in the question is invalid syntax. –  Silas Ray Apr 22 '13 at 22:55

2 Answers 2

up vote 4 down vote accepted

Wild guess: are you thinking of something like this?

>>> dict1 = {'hello':'HELLO', 'bye':'BYE', 'right':'RIGHT', 'left':'LEFT'}
>>> dict2 = {'why': ['hello', 'bye'], 
    'direction': ['left', 'right', 'right', 'right'],
    'example': ["don't replace me", "right"]}
>>> new_d = {k: [dict1.get(x,x) for x in v] for k,v in dict2.items()}
>>> new_d
{'direction': ['LEFT', 'RIGHT', 'RIGHT', 'RIGHT'], 
'why': ['HELLO', 'BYE'], 
'example': ["don't replace me", 'RIGHT']}

I've used the get method of dictionaries, which accepts a default value, to allow values that you don't have a replacement for to pass through unchanged.

share|improve this answer
    
where did you get the lists? it was just string in the original example. did u just assume he can break it into a list? i see –  CppLearner Apr 22 '13 at 22:59
2  
@CppLearner: first it was a string, then it became an invalid tuple-like example, now it's a string again even though the OP says "a key with multiple values (a list) behind it". Your guess is as good as mine. :^) –  DSM Apr 22 '13 at 23:00
    
he did say wild guess, and I actually think this will work for me. I hadn't seen the .get. Thanks for giving it a shot DSM –  jon_shep Apr 22 '13 at 23:01
    
hehehe. as wild as Python :p –  CppLearner Apr 22 '13 at 23:01
1  
@DSM but you need to join the list in the final dict, right? OP wants a string as shown in example –  Kent Apr 22 '13 at 23:06

may not the simplest, but work for your example:

>>> m={ x:",".join([dict1[y] for y in dict2[x].split(", ")]) for x in dict2}

or

>>> m={ k:",".join([dict1[y] for y in v.split(", ")]) for k,v in dict2.items()} 

result is same:

>>> m
>>> {'direction': 'LEFT,RIGHT,RIGHT,RIGHT', 'why': 'HELLO,BYE'}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.