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I have a list of lists in the format like below.

[[1,3],[2,4],[3,1],[4,0],[5,1],[6,0],[7,1],[8,0],[9,1],[10,0],[11,3],[12,1],[13,0],[14,1],[15,0],[16,1],[17,0],[18,4],[19,1],[20,0],[21,1],[22,0],[23,1],[24,2],[25,0],[26,0],[27,1],[28,0].........]

or in graphically manner my input list is:

[1,3]
    [2,4]
        [3,1]
            [4,0]
        [5,1]
            [6,0]
        [7,1]
            [8,0]
        [9,1]
            [10,0]
    [11,3]
        [12,1]
            [13,0]
        [14,1]
            [15,0]
        [16,1]
            [17,0]
    [18,4]
        [19,1]
            [20,0]
        [21,1]
            [22,0]
        [23,1]
            [24,2]
                [25,0]
                [26,0]
        [27,1]
            [28,0]

In above input, first value(zero position) of list is item sequence( as you can see them in from top to bottom), second value is number of child it has!

I want my output that in third value(2nd position) i want its parent like in example as below.. .

and i want to get output like: [[1,3,0],[2,4,1],[3,1,2],[4,0,3],[5,1,2],[6,0,5],[7,1,2],[8,0,7],[9,1,2],[10,0,9],[11,3,1],[12,1,11],[13,0,12],[14,1,11],[15,0,14],[16,1,11],[17,0,16],[18,4,1],[19,1,18],[20,0,19],[21,1,18],[22,0,21],[23,1,18],[24,2,23],[25,0,24],[26,0,24],[27,1,18],[28,0,27].....]

desired output in graphical way:

[1,3,0]
    [2,4,1]
        [3,1,2]
            [4,0,3]
        [5,1,2]
            [6,0,5]
        [7,1,2]
            [8,0,7]
        [9,1,2]
            [10,0,9]
    [11,3,1]
        [12,1,11]
            [13,0,12]
        [14,1,11]
            [15,0,14]
        [16,1,11]
            [17,0,16]
    [18,4,1]
        [19,1,18]
            [20,0,19]
        [21,1,18]
            [22,0,21]
        [23,1,18]
            [24,2,23]
                [25,0,24]
                [26,0,24]
        [27,1,18]
            [28,0,27]

any idea how it can be solved?

share|improve this question
    
so much text :D – jamylak Apr 6 '12 at 7:00
    
It would be nice if you provided a directly usable example. AFAICT this would be as easy as removing the dots in your example - but I'm not sure. – WolframH Apr 6 '12 at 9:15
up vote 3 down vote accepted

You can do it with an iterator like this:

def add_parent_info(it, parent=0):
    me, num_children = it.next() # For Python 3.x use next(it)
    yield [me, num_children, parent]
    for i in range(num_children):
        for item in add_parent_info(it, me):
            yield item

Usage:

>>> a = [[1,3],[2,4],[3,1],[4,0],[5,1],[6,0],[7,1],[8,0],[9,1],[10,0],[11,3],[12,1],[13,0],[14,1],[15,0],[16,1],[17,0],[18,4],[19,1],[20,0],[21,1],[22,0],[23,1],[24,2],[25,0],[26,0],[27,1],[28,0]]
>>> print list(add_parent_info(iter(a)))
[[1, 3, 0], [2, 4, 1], [3, 1, 2], [4, 0, 3], [5, 1, 2], [6, 0, 5], [7, 1, 2], [8, 0, 7], [9, 1, 2], [10, 0, 9], [11, 3, 1], [12, 1, 11], [13, 0, 12], [14, 1, 11], [15, 0, 14], [16, 1, 11], [17, 0, 16], [18, 4, 1], [19, 1, 18], [20, 0, 19], [21, 1, 18], [22, 0, 21], [23, 1, 18], [24, 2, 23], [25, 0, 24], [26, 0, 24], [27, 1, 18], [28, 0, 27]]
share|improve this answer
    
+1 I was trying to do something like this with iterators but wasn't sure how to go about doing it. Had to clutter my code with returning the current index on items :( – jamylak Apr 6 '12 at 9:21
    
but it shows an error as "list object is not callable"!!! – namit Apr 6 '12 at 9:49
3  
open/restart a new python shell, i think you must have created a list and called it 'list'. eg. list = [1,2,3]. That is never a good idea as you are losing functionality to the list class by replacing it with a variable. – jamylak Apr 6 '12 at 9:52
    
+1, this is the same way I solved it. @user1283171, works fine for me, what version of Python are you using? can you post the traceback? – John La Rooy Apr 6 '12 at 9:54
    
i have python 2.7.2!!!! – namit Apr 6 '12 at 10:01

@WolframH has the best solution using iterators, i'll just leave this here as an inefficient example without using iterators :D

>>> stuff = [[1,3],[2,4],[3,1],[4,0],[5,1],[6,0],[7,1],[8,0],[9,1],[10,0],[11,3],[12,1],[13,0],[14,1],[15,0],[16,1],[17,0],[18,4],[19,1],[20,0],[21,1],[22,0],[23,1],[24,2],[25,0],[26,0],[27,1],[28,0]]
>>> def walk(parent, i, items):
        item_seq, num_children = items[i]
        children = [items[i]+[parent]]
        for _ in range(num_children):
            i,child = walk(item_seq,i+1,items)
            children.extend(child)
        return i, children

>>> walk(0,0,stuff)[1]
[[1, 3, 0], [2, 4, 1], [3, 1, 2], [4, 0, 3], [5, 1, 2], [6, 0, 5], [7, 1, 2], [8, 0, 7], [9, 1, 2], [10, 0, 9], [11, 3, 1], [12, 1, 11], [13, 0, 12], [14, 1, 11], [15, 0, 14], [16, 1, 11], [17, 0, 16], [18, 4, 1], [19, 1, 18], [20, 0, 19], [21, 1, 18], [22, 0, 21], [23, 1, 18], [24, 2, 23], [25, 0, 24], [26, 0, 24], [27, 1, 18], [28, 0, 27]]
share|improve this answer
    
yup its working. . but still we can reduce the code length!!! You effort is appreciable.. Thanks, – namit Apr 6 '12 at 8:54
    
No problem, I'm not sure how to reduce the code length any more, i've removed the x and while loop and changed it into a for loop which has removed two lines from it. – jamylak Apr 6 '12 at 9:08
    
Actually I managed to shorten it more, hope that is good enough I'm not sure if i can shorten it any more now! – jamylak Apr 6 '12 at 9:14
    
from "while" to "for", and now the current one. but let others try and see if anyone else can come up with different and better answer!!! and about your work.. . Great!!!!! – namit Apr 6 '12 at 9:27
    
@WolframH has the best solution – jamylak Apr 6 '12 at 9:35

edit: @WolframH has the best solution for generating the structure. You can combine his elegant solution with the Node object structure by altering __init__ to be:

def __init__(self,value,parent_value,child_value,list_of_children):
    self.value=value
    self.parent_value = parent_value
    self.child_value = child_value
    self.children = list_of_children

Use @WolframH 's method of generating the structure, and walk through all the entries calling the Node constructor on it. That way, you could more readably insert and remove items.


You would need to define a data structure (a tree comes to mind) and store the values in it. I would suggest using a tree, applying the node class down the tree. (you could define a different format called leaf, but wouldn't really make a difference.

class Node(object):
    def __init__(self,val,list_of_children,parent_value)
        self.value = val
        self.children = make_children(list_of_children,val)
        self.parent_value = parent_value

    # in case number of children changes, don't generate middle value
    # until necessary
    def get_list_of_values(self):
        [self.value,len(children),self.parent_value]

    def add_child(self, child):
        self.children.append(child)

    def change_value(self,new_value):
        """update children to reflect changed value"""
        self.value = new_value
        def fn(child):
            child.parent_value = new_value
        map(fn,self.children)


def make_children(list_of_children,parent_value):
    child_list=[]
    # recursive-ish case: there are children
    if list_of_children:
        for child in list_of_children:
            # presuming initially stored as list of lists, e.g. 
            #    [node_value,[node[leaf][leaf]],[node,[node[leaf]],[leaf]]
            #    so child[0] is value, and rest are children
            value = child.pop(0)
            child_list.append(Node(value,child,parent_value)))
        return child_list
    # base case: no children - so return empty set
    else:
        return []
share|improve this answer
    
Note: this assumes there isn't a sorting function for children. If there is, you could define it, make it into a decorator, and decorate make_children with it. – Jeff Tratner Apr 6 '12 at 7:08
    
also, if you want to be able to change parents, it would be simple: just change the self.parent_value over all the children. e.g. map(lambda child: child.parent_value = new_value, list_of_children) – Jeff Tratner Apr 6 '12 at 7:12
    
I am getting error as: "lambda cannot contain assignment"! My python version is 2.7.2 – namit Apr 6 '12 at 7:20
    
A lambda can only contain an expression. Assignment is a statement! So, just define an actual function with def and then pass the name of the function in to map(). – steveha Apr 6 '12 at 7:56
    
I keep forgetting that fact about lambdas, I'm used to Scheme where there's no difference between lambda and named methods (plus it was kinda late when I answered :P) – Jeff Tratner Apr 6 '12 at 12:54

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