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I Think this should work but its giving me an error. I have a list that contains objects of class node. I have two different lists

  1. open_list
  2. node_list.( they are not the same lengthwise, ordering wise)

When I find a specific node in the open_list I need to delete it from the node_list. I know that the lists have addresses to the objects stored in them

so when i try to do

removed = open_list.pop(min_index) 
node_list.remove(removed) 

it gives me an error saying

node_list.remove(removed)
ValueError: list.remove(x): x not in list

but the list just contains addresses that act like pointers right? it should match up the same addresses. i printed out the address of removed and the whole node_list (only 10 items for now don't fear) print out: (the last item in node_list matches the address of removed:

removed: <__main__.node instance at 0x0124A440>
node_list: [<__main__.node instance at 0x01246E90>, <__main__.node instance at 0x01246EE0>, <__main__.node instance at 0x0124A300>, <__main__.node instance at 0x0124A328>, <__main__.node instance at 0x0124A350>, <__main__.node instance at 0x0124A378>, <__main__.node instance at 0x0124A3A0>, <__main__.node instance at 0x0124A3C8>, <__main__.node instance at 0x0124A3F0>, <__main__.node instance at 0x0124A418>, <__main__.node instance at 0x0124A440>]

Thanks

follow-up Q

so I want to check if the node i want to remove exists in the node_list. when i looked up some simple list functions on http://docs.python.org/tutorial/datastructures.html

list.index(x) and remove.index(x) both give an error if the element is not in the list. this caused my program to stop running. to bypass this, can i use this statement before the .remove(): node in node_list i think the in checks to see if an element is part of a list and returns a bool. just double checking thanks,

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3 Answers 3

This is happening because what you understand as identifying features of two instances of your Node class, is not how python understands it.

The problem lies here. Suppose you asked python 5==5, python would return True. This is because python knows about ints. However, Node is a custom class that you defined, so you need to tell python when two Node objects are the same. Since you (probably) haven't, python defaults to comparing their locations in memory. Since two separate instances will be in two different memory locations, python will return False. If you are familiar with Java at all, this is like the difference between == and .equals(...)

In order to do this, go into your Node class and define the __eq__(self, other) method, where other is expected to be another instance of Node.

For example, if your nodes have an attribute called name and two nodes that have the same name are considered to be the same, then your __eq__ could look like this:

def __eq__(self, other):
    myName = self.name
    hisName = other.name
    if myName == hisName:
        return True
    else:
        return False

Of course, the more elegant way of writing that same function is:

def __eq__(self, other):
    return self.name == other.name

When this is done, your error should disappear

EDIT 1: In response to DSM's comment

class Node: pass
a = [Node(), Node()]
b = a[:]
b.remove(a.pop(0))

This will work. But upon closer inspection, it becomes evident that a[0] and b[0] are in fact the same object. This can be verified by calling id(a[0]) and comparing it with id(b[[0]) to confirm that they are indeed the same

EDIT 2: In response to the OP's follow up question (added to the original question as edit)

Yes, the object not existing in the list will cause an error which would normally stop program flow. This can be solved in either of the following two ways:

if x in my_list:
    my_list.remove(x)

OR

try:
    my_list.remove(x)
except:
    pass

The second method attempts to remove x from my_list and if that results in an error, ignores the error

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so just one line like __eq__(self, node). hmm.. good to learn that about python. thanks! –  user1521385 Jul 12 '12 at 16:59
    
Nono... not just one line. What I posted was simply the signature of the function. You need to fully define it (see my edited post) –  inspectorG4dget Jul 12 '12 at 17:01
    
ohhh.. okay yea i was reading up on this function in python library and then your example helps. thanks! –  user1521385 Jul 12 '12 at 17:11
    
I'd be slightly surprised if this were the cause. Even without defining __eq__, class Node: pass; a = [Node(), Node()]; b = a[:]; b.remove(a.pop(0)) should work, I think. –  DSM Jul 12 '12 at 17:14
    
btw i have a quick follow up q if you could check it out.. thankss. –  user1521385 Jul 12 '12 at 18:16

If I read the question right, python's default of comparing the memory locations is the behavior he is looking for, but is not getting. Here's a working example where a custom class is defined Node, it show's that there is no need for the __eq__(self, other).

class Node(object):
    pass

open_node_list = []
node_list = []

for i in range(10):
    a_node = Node()
    open_node_list.append(a_node)
    node_list.append(a_node)

removed = open_node_list.pop()
node_list.remove(removed)

I can't be sure, because you did not show where your open_node_list and node_list were defined, but I suspect that the lists themselves reference the same list object. If that's the case, the popping from open_node_list also pops from node_list, therefore the node will no longer exist when you call remove. Here is example in which node_list and open_node_list are really the same list and so changes to one affect the other:

class Node(object):
  pass

open_node_list = []
node_list = open_node_list # <-- This is a reference, not a copy.

open_node_list.append(Node())
print(node_list)

One way you can copy a list is:

node_list = open_node_list[:]
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I don't think i referenced them. they are separate global lists. I usually just append some nodes from node_list to the open list after some conditions are met. they do contain references to the same objects tho. –  user1521385 Jul 12 '12 at 17:44
    
Can you show the code where the lists are created? –  Monkeyer Jul 12 '12 at 17:48
    
open_list = [] closed_list = [] node_list = []. go through a loop to initialize a node list. then do other stuff and append to the open_list if i need to. btw i have a quick follow up q if you could check it out.. thanks. –  user1521385 Jul 12 '12 at 18:11

In response to your followup, yes in will check for membership in a list, so:

if removed in node_list: node_list.remove(removed)

will not give you the error. Alternatively, you could trap the error:

try:
    node_list.remove(removed)
except ValueError:
    pass
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