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I would like to create a delete_node function that deletes the node at the location in the list as a count from the first node. So far this is the code I have:

class node:
    def __init__(self):
        self.data = None # contains the data
        self.next = None # contains the reference to the next node

class linked_list:
    def __init__(self):
        self.cur_node = None

    def add_node(self, data):
        new_node = node() # create a new node
        new_node.data = data
        new_node.next = self.cur_node # link the new node to the 'previous' node.
        self.cur_node = new_node #  set the current node to the new one.

    def list_print(self):
        node = ll.cur_node
        while node:
            print node.data
            node = node.next
    def delete_node(self,location):
        node = ll.cur_node
        count = 0
        while count != location:
            node = node.next
            count+=1
        delete node


ll = linked_list()
ll.add_node(1)
ll.add_node(2)
ll.add_node(3)

ll.list_print()
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1  
Okay, so what's your question? Ask specific questions to StackOverflow - don't just give us some code and say "here's what I want to do." For instance, what problems are you running into? –  Amber Jan 11 '11 at 6:53
    
Well I understand the algorithm for this in C++ and the problem Im having is how do I delete a node object? Basically the opposite of creating a new_node –  lost_with_coding Jan 11 '11 at 6:56
    
@lost_with_coding If you understand the algorithm "in C++", then you don't understand the algorithm. You know how to implement it in C++. If you understood the algorithm, then you would be asking a specific question about python syntax. –  aaronasterling Jan 11 '11 at 7:00
    
@aaronasterling exactly, whats the python syntax for destroying a node –  lost_with_coding Jan 11 '11 at 7:01
1  
@lost_with_coding there is no such idea as destroying an object in Python. The garbage collection process does this automatically where the object is not longer referenced. But the, Python being much higher level language than C++, you don't need to implement thes list yourself. It is already there: list() –  Ber Jan 11 '11 at 7:12

3 Answers 3

up vote 5 down vote accepted

You shouldn't literally delete a node in Python. If nothing points to the node (or more precisely in Python, nothing references it) it will be eventually destroyed by the virtual machine anyway.

If n is a node and it has a .next field, then:

n.next = n.next.next 

Effectively discards n.next, making the .next field of n point to n.next.next instead. If n is the node before the one you want to delete, this amounts to deleting it in Python.

[P.S. the last paragraph may be a bit confusing until you sketch it on paper - it should then become very clear]

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It makes sense. I try this. –  lost_with_coding Jan 11 '11 at 7:24

Here's one way to do it.

def delete_node(self,location):
    if location == 0:
        try:
            self.cur_node = cur_node.next
        except AttributeError:
            # The list is only one element long
            self.cur_node = None
        finally:
            return 

    node = self.cur_node        
    try:
        for _ in xrange(location):
            node = node.next
    except AttributeError:
        # the list isn't long enough
        raise ValueError("List does not have index {0}".format(location))

    try:
        node.next = node.next.next # Taken from Eli Bendersky's answer.
    except AttributeError:
        # The desired node is the last one.
        node.next = None

The reason that you don't really use del (and this tripped me up here until I came back and looked at it again) is that all it does is delete that particular reference that it's called on. It doesn't delete the object. In CPython, an object is deleted as soon as there are no more references to it. What happens here that when

del node

runs, there are (at least) two references to the node: the one named node that we are deleting and the next attribute of the previous node. Because the previous node is still referencing it, the actual object is not deleted and no change occurs to the list at all.

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How do you connect the two halves after this? –  Keith Jan 11 '11 at 7:19
    
@Keith You don't, read what he wrote "I would really call this trim though as it removes all the nodes after it as well." –  lost_with_coding Jan 11 '11 at 7:22
    
@lost But that's not the same thing as deleting a node from a list, which was the original question. Therefore this is not really a working answer. It needs just a little more code. –  Keith Jan 11 '11 at 7:27
    
@Keith, as I said, this is just the algorithm that OP posted. –  aaronasterling Jan 11 '11 at 7:47
    
I must be tired and not paying attention. Sorry. –  Keith Jan 11 '11 at 7:48

Python lists are linked lists.

thelist = [1, 2, 3]
# delete the second
del thelist[2]
share|improve this answer
    
Yes, there is no need to build linked lists in Python. They are already provided in the language core. –  Ber Jan 11 '11 at 7:09
    
Python lists are not linked lists. Specifically, they do not have any way to advance to the next element and are indexable. –  aaronasterling Jan 11 '11 at 7:09
    
i = iter(thelist); i.next(); i.next(); el3 = thelist[3] –  Keith Jan 11 '11 at 7:10
    
@Keith, that's an iterator. A list is an iterable meaning that you can construct an iterator from it. Even with i = iter(list_), its next method is returning elements, not nodes. That is if I can't do e = i.next(); e2 = e.next(). They're two different things. I agree that a linked list is stupid in python but your answer is factually incorrect. –  aaronasterling Jan 11 '11 at 7:16
    
I know but I'm doing this as an exercise, you're are correct though but its not what I need for my current problem. –  lost_with_coding Jan 11 '11 at 7:18

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