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.

I have a multidictionary:

{'a': {'b': {'c': {'d': '2'}}},
 'b': {'b': {'c': {'d': '7'}}},
 'c': {'b': {'c': {'d': '3'}}},
 'f': {'d': {'c': {'d': '1'}}}}

How can I sort it based on the values '2' '3' '7' '1' so my output will be:

f.d.c.d.1
a.b.c.d.2
c.b.c.d.3
b.b.c.d.7
share|improve this question
3  
Why don't you just use f.d.c.d, a.b.c.d, etc. as keys? What's the point of all this nesting? –  NullUserException Nov 30 '12 at 20:18
2  
What have you tried? (And how did you come by such a convoluted structure?) –  larsmans Nov 30 '12 at 20:19
1  
You need to figure out what you actually need to do. –  kreativitea Nov 30 '12 at 20:20
    
What have you tried?. –  martineau Nov 30 '12 at 20:22

4 Answers 4

You've got a fixed-shape structure, which is pretty simple to sort:

>>> d = {'a': {'b': {'c': {'d': '2'}}}, 'c': {'b': {'c': {'d': '3'}}}, 'b': {'b': {'c': {'d': '7'}}}, 'f': {'d': {'c': {'d': '1'}}}}
>>> sorted(d, key=lambda x: d[x].values()[0].values()[0].values()[0])
['f', 'a', 'c', 'b']
>>> sorted(d.items(), key=lambda x: x[1].values()[0].values()[0].values()[0])
[('f', {'d': {'c': {'d': '1'}}}),
 ('a', {'b': {'c': {'d': '2'}}}),
 ('c', {'b': {'c': {'d': '3'}}}),
 ('b', {'b': {'c': {'d': '7'}}})]

Yes, this is a bit ugly and clumsy, but only because your structure is inherently ugly and clumsy.

In fact, other than the fact that d['f'] has a key 'd' instead of 'b', it's even more straightforward. I suspect that may be a typo, in which case things are even easier:

>>> d = {'a': {'b': {'c': {'d': '2'}}}, 'c': {'b': {'c': {'d': '3'}}}, 'b': {'b': {'c': {'d': '7'}}}, 'f': {'b': {'c': {'d': '1'}}}}
>>> sorted(d.items(), key=lambda x:x[1]['b']['c']['d'])
[('f', {'b': {'c': {'d': '1'}}}),
 ('a', {'b': {'c': {'d': '2'}}}),
 ('c', {'b': {'c': {'d': '3'}}}),
 ('b', {'b': {'c': {'d': '7'}}})]

As others have pointed out, this is almost certainly not the right data structure for whatever it is you're trying to do. But, if it is, this is how to deal with it.

PS, it's confusing to call this a "multidictionary". That term usually means "dictionary with potentially multiple values per key" (a concept which in Python you'd probably implement as a defaultdict with list or set as its default). A single, single-valued dictionary that happens to contain dictionaries is better named a "nested dictionary".

share|improve this answer

In my opinion this kind of design is very hard to read and maintain. Can you consider replacing the internal dictionaries with string-names?

E.g.:

mydict = {
    'a.b.c.d' : 2,
    'b.b.c.d' : 7,
    'c.b.c.d' : 3,
    'f.d.c.d' : 1,
}

This one is much easier to sort and waaaay more readable.

Now, a dictionary is something unsortable due to its nature. Thus, you have to sort an e.g. a list representation of it:

my_sorted_dict_as_list = sorted(mydict.items(), 
                                key=lambda kv_pair: kv_pair[1])
share|improve this answer

you can do it recursively:

d = {'a': {'b': {'c': {'d': '2'}}}, 'c': {'b': {'c': {'d': '3'}}}, 'b': {'b': {'c': {'d': '7'}}}, 'f': {'d': {'c': {'d': '1'}}}}

def nested_to_string(item):

    if hasattr(item, 'items'):
        out = ''
        for key in item.keys():
            out += '%s.' % key + nested_to_string(item[key])
        return out
    else:
        return item + '\n'

print nested_to_string(d)

or

def nested_to_string(item):
    def rec_fun(item, temp, res):
        if hasattr(item, 'items'):
            for key in item.keys():
                temp += '%s.' % key
                rec_fun(item[key], temp, res)
                temp = ''
        else:
            res.append(temp + item)

    res = []
    rec_fun(d, '', res)
    return res

why do you want to do this.

share|improve this answer
    
hi, i tried this but it doesent' work.. unsupported operand type(s) for +: 'dict' and 'str' –  user1841492 Nov 30 '12 at 20:45
    
the code run's here. just copy pasted to another python file –  locojay Nov 30 '12 at 20:51

Your data structure is basically a multi-level tree, so a good way to do what you want is to do what is called a depth-first traversal of it, which can be done recursively, and then massage the intermediate results a bit to sort and format them them into the desired format.

multidict = {'a': {'b': {'c': {'d': '2'}}},
             'b': {'b': {'c': {'d': '7'}}},
             'c': {'b': {'c': {'d': '3'}}},
             'f': {'d': {'c': {'d': '1'}}}}

def nested_dict_to_string(nested_dict):
    chains = []
    for key,value in nested_dict.items():
        chains.append([key] + visit(value))
    chains = ['.'.join(chain) for chain in sorted(chains, key=lambda chain: chain[-1])]
    return '\n'.join(chains)

def visit(node):
    result = []
    try:
        for key,value in node.items():
            result += [key] + visit(value)
    except AttributeError:
        result = [node]
    return result

print nested_dict_to_string(multidict)

Output:

f.d.c.d.1
a.b.c.d.2
c.b.c.d.3
b.b.c.d.7
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.