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I have a list of data from which I am creating dict inside dict, structure it is coming as expected but somewhere it is overwriting, I don't know where

a=['t1_h1','t2_h2']
b=['h1_d1','h1_d2','h2_d3']
c=['d1_dom1','d2_dom2','d3_dom3']
d=['dom1_a','dom1_b','dom2_a','dom2_b','dom3_a','dom3_b']

I tried using this code

for item in a:
f[item.split('_')[0]]={}
for hypercube in b:
    if item.split('_')[1] in hypercube:#h1 in b

        f[item.split('_')[0]][item.split('_')[1]]={}

        for dimension in c:
            if hypercube.split('_')[1] in dimension:#d1 in c 
                f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]]={}
                for domain in d:
                    if dimension.split('_')[1] in domain:#dom1 in d
                        if f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]].has_key(dimension.split('_')[1]):
                            f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]][dimension.split('_')[1]].append(domain.split('_')[1])
                        else:
                            f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]][dimension.split('_')[1]]=[domain.split('_')[1]]

Actually I am trying to print in this format:

{'t1': {'h1': {'d1': {'dom1': ['a', 'b']}, 'd2': {'dom2': ['a', 'b']}}},
     't2': {'h2': {'d3': {'dom3': ['a', 'b']}}}}

But the output I am getting is:

{'t2': {'h2': {'d3': {'dom3': ['a','b']}}}, 't1': {'h1': {'d2': {'dom2': ['a','b']}}}}

but after changing last thing is in 't1' 'd1' value is missing

share|improve this question
5  
f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]]f[item.split(‌​'_')[0]][item.split('_')[1]][hypercube.split('_')[1]] really? No offense, but ... you are doing a mess with all those split and indexing. You can benefit of using a few classes or something, so at least the members will have a name. Or at the very least use tuples instead of strings with _. –  rodrigo Jun 11 '12 at 12:49
1  
Looks like you're try to build a tree data structure. Consider using a recursive solution that will simplify what's going on at each level and be able to handle any number of them -- a tree of any depth. –  martineau Jun 11 '12 at 12:54
    
@-rodrigo actually i am checking a link between each list item so in order to derive a dict like that i am using this..... tuples in the sense how –  user1182090 Jun 11 '12 at 12:55
    
@martineau ya thats what i am constructing from each list item and adding to dict....but its not working –  user1182090 Jun 11 '12 at 12:57

5 Answers 5

up vote 1 down vote accepted

You don't want to nest your for loops, you want to nest the for searches as you process each list a, b, c and d, adding deeper and deeper levels to f. This gives your desired output:

f = {}
for item in a:
    ak1,ak2 = item.split('_')
    f[ak1] = {ak2:{}}
for item in b:
    bk1,bk2 = item.split('_')
    next(f[akey][bk1] 
            for akey in f 
                if bk1 in f[akey])[bk2] = {}
for item in c:
    ck1,ck2 = item.split('_')
    next(f[akey][bkey][ck1] 
            for akey in f 
                for bkey in f[akey] 
                    if ck1 in f[akey][bkey])[ck2] = []
for item in d:
    dk1,dk2 = item.split('_')
    next(f[akey][bkey][ckey][dk1] 
            for akey in f 
                for bkey in f[akey]
                    for ckey in f[akey][bkey]
                        if dk1 in f[akey][bkey][ckey]).append(dk2)

import pprint
pprint.pprint(f)

prints:

{'t1': {'h1': {'d1': {'dom1': ['a', 'b']}, 'd2': {'dom2': ['a', 'b']}}},
 't2': {'h2': {'d3': {'dom3': ['a', 'b']}}}}
share|improve this answer
    
@ paul McGuire whats that next function do, whats the use of it... can u explain ur code.......thanks for helping –  user1182090 Jun 11 '12 at 13:20
    
next is a builtin function that finds the next matching item. The purpose in this case is that it will go through all the for-loops and find the first matching case. The alternative code doing nested for loops to find the leaf node to append/insert to will require keeping a 'found' flag, breaking when the desired leaf node is found, and testing the found flag at each higher level for loop to see if it is necessary to keep looking. –  Paul McGuire Jun 11 '12 at 13:26
    
@PaulMcGuire if explain this one line means enough for me next(f[akey][bk1] for akey in f if bk1 in f[akey])[bk2] = {} the statements within next can u explain.. thanks once again –  user1182090 Jun 11 '12 at 13:36
    
Equivalent to: for akey in f.keys(): if bk1 in f[akey]: f[akey][bk1][bk2] = {}; break. In this particular statement, next doesn't do much, since once a key is found, we create the subdict, break and we're done. But in the deeper for loops, we will be 2 or 3 levels deep within loops, so break has to break out multiple levels, not just one. By using next instead, we in essence find just the first match, and then that's all we want. The issue here is that you are looking for a leaf node in the tree as it has been built so far, so you have to nest your loops as much as the tree is deep. –  Paul McGuire Jun 11 '12 at 14:45

I think this is a good case to use defaultdict:

from collections import defaultdict

def new_dict(items):
    items = [i.split('_') for i in items]
    d = defaultdict(list)
    for k, v in items:
        d[k].append(v)
    return dict(d)

def combine(x,y):
    for i in x:
        x[i] = dict((j,y[j]) for j in x[i])
    return x

a, b, c, d = [new_dict(i) for i in [a, b, c, d]]

c=combine(c,d)
b=combine(b,c)
a=combine(a,b)
print a
#Output:
{'t2': {'h2': {'d3': {'dom3': ['a', 'b']}}},
't1': {'h1': {'d2': {'dom2': ['a', 'b']}, 'd1': {'dom1': ['a', 'b']}}}}

new_dict returns a dict by splitting the input strings into keys and values. The cool bit is by using defaultdict we can easily append additional key values to a key, without having to do any checking, ie:

['h1_d1','h1_d2','h2_d3'] becomes: {'h2': ['d3'], 'h1': ['d1', 'd2']} and not {'h2': ['d3'], 'h1': ['d2']}

Then we combine the dicts starting at the innermost and growing outwards. This works by iterating over the keys of an outer dictionary, and replacing each value with a dict keyed by that value, and the value being the key, values pair from the inner dict.

share|improve this answer
    
@ fraxel thanks for the help, but can u explain how its working –  user1182090 Jun 11 '12 at 13:19
    
@user1182090 - just about to have lunch, will add full explaination a little later, but, first we convert each list to a defaultdict where first part of every string is a key and the part after '_' is a value for its key (using defualtdict means no over writes). Then when that is done we combine the dicts starting at the innermost and growing outwards. –  fraxel Jun 11 '12 at 13:23

Maybe you should try to simplify your code? Try this:

def pack_to_tree(*lists):

    split_ = lambda l: (i.split('_',1) for i in l)

    # last level
    result = {}
    for k, v in split_(lists[-1]):
        result.setdefault(k, []).append(v)

    # other levels
    for d in lists[-2::-1]:
        subresult = {}
        for k, v in split_(d):
            subresult.setdefault(k, {})[v] = result[v]
        result = subresult
    return result

a = ['t1_h1', 't2_h2']
b = ['h1_d1', 'h1_d2', 'h2_d3']
c = ['d1_dom1', 'd2_dom2', 'd3_dom3']
d = ['dom1_a', 'dom1_b', 'dom2_a', 'dom2_b', 'dom3_a', 'dom3_b']

print pack_to_tree(a, b, c, d)
share|improve this answer
1  
@ astynax, thanks for the help but {'t2': {'h2': {'d3': {'dom3': ['a', 'b']}}}, 't1': {'h1': {'d2': {'dom2': ['a', 'b']}}}} it print like this... in this 'h1'-> 'd1' link is missing –  user1182090 Jun 11 '12 at 13:14
    
@user1182090, now works fine –  astynax Jun 11 '12 at 13:37

It is rather hard to read that code, but I think that in lines that you create new dictionaries (...={}) and especially the new linked list (...=[]) you should try something like:

if (not  f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]][dimension.split('_')[1]]):
   f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]][dimension.split('_')[1]]=[]
f[item.split('_')[0]][item.split('_')[1]][hypercube.split('_')[1]][dimension.split('_')[1]].append(domain.split('_')[1])

Then you are sure that you are not overwriting something that is already there.

share|improve this answer
    
@-malenkiy_scot actually i am trying to get link between in each list by substring method... i need to come with the dict structure like that.. can u help –  user1182090 Jun 11 '12 at 12:59
    
@-malenkiy another way of representing last line of my code, but it shows some key error –  user1182090 Jun 11 '12 at 13:10
    
@malenkiy_scot: I don't think you're doing the OP a favor encouraging the coding style they were using. –  martineau Jun 11 '12 at 13:20
    
@martineau, you are right about the coding style, but it's 'one at a time' - everybody else already commented on it. –  malenkiy_scot Jun 11 '12 at 13:25

The styles issues were already mentioned, so I concentrate on functionality. The simple bug in the original code is in the last line. Since for the first occurrence of a dictionary key sequence simply an empty list is assigned, the important value of

domain.split('_')[1]

is lost. So there is actually no overwrite, but the missing values were never stored. Filling the empty square brackets wih this term should fix this.

share|improve this answer
    
i not got if u can see i am appending this in last line... if u can show in my code means its very helpfull –  user1182090 Jun 11 '12 at 13:45
    
@guidiot thanks i got my mistake but still one value is missing from dict.. now it prints {'t2': {'h2': {'d3': {'dom3': ['a', 'b']}}}, 't1': {'h1': {'d2': {'dom2': ['a', 'b']}}}}... but still in 'h1'-> 'd1' is missing... can u help it out –  user1182090 Jun 11 '12 at 13:53

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