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I have a dictionary that consists of employee-manager as key-value pairs:

{'a': 'b', 'b': 'd', 'c': 'd', 'd': 'f'}

I want to show the relations between employee-manager at all levels (employee's boss, his boss's boss, his boss's boss's boss etc.) using a dictionary. The desired output is:

{'a': [b,d,f], 'b': [d,f], 'c': [d,f], 'd': [f] }

Here is my attempt which only shows the first level:

for key, value in data.items():
    if (value in data.keys()):
        data[key] = [value]
        data[key].append(data[value])

I can do another conditional statement to add the next level but this would be the wrong way to go about it. I'm not very familiar with dictionaries so what would be a better approach?

share|improve this question
    
I'm not very familiar with dictionaries so what would be a better approach? - A Database – IanAuld Feb 25 at 6:14
    
I am not sure if any python function is available for this purpose, but I would use topological sorting to implement this functionality. – qmaruf Feb 25 at 6:19
1  
    
    
Not a duplicate of stackoverflow.com/questions/38987/… – Oxinabox Feb 25 at 15:20
>>> D = {'a': 'b', 'b': 'd', 'c': 'd', 'd': 'f'}
>>> res = {}
>>> for k in D:
...     res[k] = [j] = [D[k]]
...     while j in D:
...         j = D[j]
...         res[k].append(j)
... 
>>> res
{'b': ['d', 'f'], 'c': ['d', 'f'], 'd': ['f'], 'a': ['b', 'd', 'f']}
share|improve this answer
    
That works well - thanks a lot! – user415663 Feb 25 at 6:28
    
I should say this is a well thought answer with minute details. Thanks for such an answer +1. – The6thSense Feb 25 at 6:47
    
What is the [j] syntax and "while j in D"? Looks like I'm newbie. – Czarek Tomczak Feb 29 at 8:29
    
@CzarekTomczak, j is used to traverse from one key to the next. [j] = [D[k]] is just j = D[k] but I wrapped it in a list so that I could also assign it to res[k] in the same line. – John La Rooy Feb 29 at 9:25
    
@JohnLaRooy Thanks, it's clear now. – Czarek Tomczak Feb 29 at 9:52

You may use the concept of recursion as :

def get_linked_list(element, hierarchy, lst):
    if element:
        lst.append(element)
        return get_linked_list(hierarchy.get(element, ""), hierarchy, lst)
    else:
        return lst

And then access the hierarchy as:

>>> d = {'a': 'b', 'b': 'd', 'c': 'd', 'd': 'f'}   
>>> print {elem:get_linked_list(elem, d, [])[1:] for elem in d.keys()}
>>> {'a': ['b', 'd', 'f'], 'c': ['d', 'f'], 'b': ['d', 'f'], 'd': ['f']}

However care must be taken as this may get to an infinite loop if we have an item in the dictionary as "a": "a"

share|improve this answer
x={'a': 'b', 'b': 'd', 'c': 'd', 'd': 'f'}
d={}
l=x.keys()
for i in l:
    d.setdefault(i,[])
    d[i].append(x[i])
    for j in l[l.index(i)+1:]:
        if j==d[i][-1]:
            d[i].append(x[j])

print d

Output:{'a': ['b', 'd', 'f'], 'c': ['d', 'f'], 'b': ['d', 'f'], 'd': ['f']}

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