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I have a list of dictionaries. I am trying to implement a 'fuzzy' search of said dictionary values and have the full dictionary returned.

Therefore, if I have a list of dicts as follows:

[
{"Name":"Arnold", "Age":"52", "Height":"160"}, 
{"Name":"Donald", "Age":"52", "Height":"161"}, 
{"Name":"Trevor", "Age":"22", "Height":"150"}
]

A search term of "nol" should return

{"Name":"Arnold", "Age":"52", "Height":"160"} 

While a search term of "52" should return:

{"Name":"Arnold", "Age":"52", "Height":"160"} 
{"Name":"Donald", "Age":"52", "Height":"161"}

I understand that I can search for values at a particular key using iteritems, I'm just not clear on how to search across all key/values in a dictionary (without knowing the keyname), and then return said dictionary if there is a match in any. Is this possible in python?

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3 Answers 3

up vote 1 down vote accepted

Here is my version, which doesn't save all the results at the same time in a list, but instead generates them as needed.

import itertools

database = [
    {"Name":"Arnold", "Age":"52", "Height":"160"}, 
    {"Name":"Donald", "Age":"52", "Height":"161"}, 
    {"Name":"Trevor", "Age":"22", "Height":"150"},
]

def search(s):
    s = s.lower() # it is a nice feature to ignore case
    for item in database:
        if any(s in v.lower() for v in item.values()): # if any value contains s
            yield item # spit out the item — this is a generator function

# iterate over at most 5 first results
for result in itertools.islice(search("52"), 5):   
    print(result)
{'Height': '160', 'Age': '52', 'Name': 'Arnold'}
{'Height': '161', 'Age': '52', 'Name': 'Donald'}
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Awesome dude - that generator function is saving a lot of computational overhead! –  user714852 Aug 20 '13 at 17:45
1  
@user714852 You can also just put ()s around the comprehension to produce a generator... (d for d in l if any("nol" in v for v in d.values())). You don't need to define a new function. –  arshajii Aug 20 '13 at 17:51

You can use something like

>>> l = [
... {"Name":"Arnold", "Age":"52", "Height":"160"}, 
... {"Name":"Donald", "Age":"52", "Height":"161"}, 
... {"Name":"Trevor", "Age":"22", "Height":"150"}
... ]
>>>
>>> [d for d in l if any("nol" in v for v in d.values())]
[{'Age': '52', 'Name': 'Arnold', 'Height': '160'}]
>>>
>>> [d for d in l if any("52" in v for v in d.values())]
[{'Age': '52', 'Name': 'Arnold', 'Height': '160'}, {'Age': '52', 'Name': 'Donald', 'Height': '161'}]
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1  
Dude that is amazing! Simple and it works! Any thoughts on how I could restrict the number of results returned? So the last query only spat out 1 result? –  user714852 Aug 20 '13 at 15:05
    
@user714852 You could slice the returned list: returned_list[0:1]. –  arshajii Aug 20 '13 at 15:15
1  
@user714852 next(d for d in l if any("52" in v for v in d.values())) returns the first result without generating the rest, unlike list slicing (but raises StopIteration if there are 0 results, which is not a problem). –  Oleh Prypin Aug 20 '13 at 15:40
    
@OlehPrypin I like the idea of stopping the iteration. The list of dicts I have is quite large and ideally I'd only like retrieve a few results (e.g. 5) before returning them. –  user714852 Aug 20 '13 at 15:48

Another slightly different option:

searchTerm = "nol"
unusedCharacter = "\n"  # This should be a character that will never appear in your search string.
# Changed this to a generator to avoid searching the whole dict all at once:
results = (d for d in l if searchTerm in unusedCharacter.join(d.values()))

# Produce a limited number of results:
limitedResults = []
maxResults = 5
for k, result in enumerate(results):
    if k == maxResults:
        break
    limitedResults.append(result)
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1  
Maybe join it with '\ufff0' or something, not '', so you don't get unexisting matches like "21" in "52160Arnold" –  Oleh Prypin Aug 20 '13 at 15:39
    
@Oleh Mm, good point - didn't think of that case. I chose a newline, because unicode frightens me. The OP can decide what character is least likely to appear in the text. –  Brionius Aug 20 '13 at 15:47
    
@Brionius thanks for your input - I love the idea of speed as these lists are quite long. I'll have to think closely as to the least likely character - as the dictionaries contain quite a lot of information - names, emails, numbers, etc. Any idea on the limiting of the output to say 5 results? –  user714852 Aug 20 '13 at 16:11
    
@user714852 In order to limit the results in a time-efficient way, I changed the list comprehension to a generator comprehension, then builds a list of at most the desired size from the results. –  Brionius Aug 20 '13 at 18:12

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