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Having dictionary with family members how can I create a tree of it?

Dictionary have a structure that looks like this:

{'parent':'Smith', 'children':[
    {'parent':'Connor', 'children':[
            {'parent':'Joe', 'children':[
    {'parent':'Cooper', 'children':[
            {'parent':'Luis', 'children':[]},]},
        {'parent':'Elvis', 'children':[]},
        {'parent':'Steven', 'children':[]}]}]}

After creating family tree, how can I check some dates such as: how to check how many members got entire family or single family of tree.

check how big is entire family tree root or some part of family.

how can I add new members to existing position or to new position inside family tree?


Adding example of tree:


Same style as computer system directory.

share|improve this question
Why do you think the dict is not already a tree? What do you mean by tree? – Ray Toal Dec 2 '12 at 16:21
@RayToal, added example :) – Infinity00 Dec 2 '12 at 16:31
Dude, your dict is already a tree. What do you want in your "tree" that's not already implemented in the dict? – inspectorG4dget Dec 2 '12 at 16:32
Thanks for adding the example, but the example is just a list of (indented) strings. It is not hard to go through the dictionary and print strings, but if your question is how to make a tree data structure, then I still submit you already have it. – Ray Toal Dec 2 '12 at 16:35
I think the OP just wants a visual format. – enginefree Dec 2 '12 at 16:36

2 Answers 2

up vote 2 down vote accepted

This is just inspectorG4dget's answer which was almost there but needs some alterations:

class Person:
    ID = itertools.count()
    def __init__(self, name, parent=None, level=0): = # next(self.__class__.ID) in python 2.6+
        self.parent = parent = name
        self.level = level
        self.children = []

def createTree(d, parent=None, level=0):
    if d:
        member = Person(d['parent'], parent, level)
        level = level + 1
        member.children = [createTree(child, member, level) for child in d['children']]
        return member

t = createTree(my_tree)          # my_tree is the name of your dictionary
def printout(parent, indent=0):
    print '\t'*indent,
    for child in parent.children:
        printout(child, indent+1)        

As per the comment above, you need to import itertools at the beginning of the programme.

EDIT: A function to flatten the tree should serve for everything else you want to do:

def flatten(parent):
    L = [parent]
    for child in parent.children:
        L += flatten(child)
    return L
flattened_tree = flatten(t)
print "All members: ", [ for person in flattened_tree]
print "Number of members:", len(flattened_tree)
print "Number of levels:", max([person.level for person in flattened_tree]) + 1
cooper = flattened_tree[6]
cooper_fl = flatten(cooper)
print "Members below Cooper: ", [ for person in cooper_fl]
print "Number:", len(cooper_fl)
levels = [person.level for person in cooper_fl]
print "Number of levels:", max(levels) - min(levels) + 1
share|improve this answer
they should implement like button like on facebook heh... it working :) what about when I want add new member to family tree? t.count() -> 11 counted all memebers of tree t.root() -> 5 max tree root of full family is 5. t.children()[0].count() -> 5 children in all t.children()[1].root() -> 3 starting from cooper and ending in luis – Infinity00 Dec 2 '12 at 18:26
uh, there is an up arrow to the left that works a lot like 'like' on facebook! Also you can accept the answer. – Stuart Dec 2 '12 at 18:30
ah, I just finished to read rules of this wonderful site, i can choose only 1 correct answer :s ur or inspectorG4dget? could u check and tell me how to add those options to class, please? – Infinity00 Dec 2 '12 at 18:46
not print but function (def) which will give u as result those prints :P that cooper was just an example :) going to accept ur answer and make him +1? – Infinity00 Dec 2 '12 at 19:13
I think you can manage the last steps! – Stuart Dec 2 '12 at 19:37

Untested, but this should do it

class Person:
    ID = itertools.count()
    def __init__(self): = next(self.__class__.ID)
        self.parent = None
        self.children = []

def createTree(familyTreeDict, parent=None):
    if not familyTreeDict:
        return []
        members = []
        for name familyTreeDict:
            members[-1].parent = parent
            for child in familyTreeDict[name]:
                members[-1].children.append(createTree(child, members[-1]))
        return members

Then, if you want to print out a tree structure, given the output from createTree:

def printout(family, indent=0):
    for parent in family:
        print '\t'*indent,
        for child in parent.children:
            printout(child, indent+1)

Hope this helps

share|improve this answer
getting error: ID = itertools.count() NameError: name 'itertools' is not defined and in for name familyTreeDict: you forgot to add in – Infinity00 Dec 2 '12 at 17:39
import itertools....and you should probably read some more docs on if that bit threw you a curveball – Chrismit Dec 2 '12 at 17:55
im beginner in coding world and python is my first scripting leangueg. :( after imported itertool and tried to printout it gives me error printout(d), d is var of all family tree:` print '\t'*indent, AttributeError: 'str' object has no attribute 'name'` – Infinity00 Dec 2 '12 at 18:16

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