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class Node(object):
    def __init__(self, lst):
        if type(lst) == list:
            self.value = lst[0]
            self.children = lst[1:]
        else:
            self.value = lst
            self.children = []
    @property
    def ChildElements(self):
        return [Node(a) for a in self.children]

    @property
    def GetValue(self):
        return self.value

def node_recurse_generator(node):
    yield node.value
    for n in node.ChildElements:
        node_recurse_generator(n)

Node is a simple tree like data structure. The list's first element is always the value of the Node, further elements will be children. If the Node is initiated with something other than a list, that value will be that, and children will be [], an empty list.

a = Node([1,[10,20,30],[100,200,300]])
>>> list(node_recurse_generator(a))
[1]

Now, it would be great to have a recursive iterator over all the elements, but my generator only yields the first element. Why is this happening?

share|improve this question
    
Be warned however that your way of constructing a tree is prone to errors: the following code demonstrates this: b = [1,2,3] a = [0,b] n = Node(a) print(list(node_recurse_generator(n))) a[0] = 7 # does not affect n b[2] = 4 # affects n print(list(node_recurse_generator(n))) b = [100,200,300] # from here on, changes in b no longer affect n print(list(node_recurse_generator(n)) ) –  slartibartfast Oct 3 '11 at 12:16

1 Answer 1

up vote 9 down vote accepted

Simply calling node_recurse_generator recursively isn't enough - you have to yield its results:

def node_recurse_generator(node):
    yield node.value
    for n in node.ChildElements:
        for rn in node_recurse_generator(n):
            yield rn
share|improve this answer
    
As a side note, this is what the yield from expression (slated for inclusion in Python 3.3) is going to help with. See PEP 380: python.org/dev/peps/pep-0380 –  yak Oct 3 '11 at 13:21

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