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I want to generate all paths from every leaf to root in a tree. I'd like to do that with generators, to save memory (tree can be big). Here's my code:

def paths(self, acc=[]):
    if self.is_leaf():
        yield [self.node]+acc

    for child in self.children:
        child.paths([self.node]+acc)

But it doesn't work. Why? Invoked at root, it traverses the tree from top to bottom, collecting nodes in "acc". "acc" should be returned in every leaf...

is_leaf() is true if self.children is empty.

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2 Answers 2

up vote 5 down vote accepted

This code only yields leaves that are (immediate) children of the root. The other ones get visited, they yield to the upper function, but the upper function does nothing with them. What you need is to yield them from the lower function to the upper one:

def paths(self, acc=[]):
    if self.is_leaf():
        yield [self.node]+acc

    for child in self.children:
        for leaf_path in child.paths([self.node]+acc): # these two
            yield leaf_path                            # lines do that

This should do the trick.

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I've always wondered -- is there a quick "yield all" command, or is the shortest the for loop you've written? –  Owen Aug 20 '11 at 21:21
    
@Own nope, but I find it OK like this, it's just two simple lines... –  Gabi Purcaru Aug 20 '11 at 21:23
4  
In Python 3.3 there will be a yield from statement that will automatically yield items out of another generator, so any for loop with a yield in it you can write as a generator expression can be made into one line. –  agf Aug 20 '11 at 21:37
    
@agf good to know that, thanks! –  Gabi Purcaru Aug 20 '11 at 21:39

At the moment the for loop doesn't yield anything. It should instead yield all the elements that are generated by the recursive call:

for child in self.children:
    for path in child.paths([self.node]+acc):
        yield path
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