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I'm playing with for loops in Python and trying to get used to the way they handle variables.

Take the following piece for code:


After doing this, the zeroth element of both b and a should be 6. The = sign points a reference at the array, yes?

Now, I take a for loop:

for i in a:

My expectation would be that every element of a is now 6, because I would imagine that i points to the elements in a rather than copying them; however, this doesn't seem to be the case.

Clarification would be appreciated, thanks!

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3 Answers 3

up vote 5 down vote accepted

Everything in python is treated like a reference. What happens when you do b[0] = 6 is that you assign the 6 to an appropriate place defined by LHS of that expression.

In the second example, you assign the references from the array to i, so that i is 1, then 2, then 3, ... but i never is an element of the array. So when you assign 6 to it, you just change the thing i represents. is an interesting read if you want to know more about the details.

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That isn't how it works. The for loop is iterating through the values of a. The variable i actually has no sense of what is in a itself. Basically, what is happening:

# this is basically what the loop is doing:
# beginning of loop:
i = a[0]
i = 6
# next iteration of for loop:
i = a[1]
i = 6
# next iteration of for loop:
i = a[2]
i = 6
# you get the idea.

At no point does the value at the index change, the only thing to change is the value of i.

You're trying to do this:

for i in xrange(len(a)):
    a[i] = 6 # assign the value at index i
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"The variable i actually has no sense of what is in a itself" - This isn't exactly true, i is a reference to the values in a but assignment will change i to be a reference to something else, and integers are immutable so there isn't any way to change the OP's list by modifying i in a for loop. But consider a = [[1], [2]] then for i in a: i[:] = [6]. a will become [[6], [6]]. – Andrew Clark Aug 26 '11 at 17:36
@F.J. That is because the values of a are mutable types in themselves. It has nothing to do with the position in a, rather it has to do with the objects whether they are in a or no. – cwallenpoole Aug 26 '11 at 17:42
No argument there, I just wanted to clarify because a novice reader might interpret your statement as "it is impossible to modify a list by looping over its values", which isn't true when you have mutable values. – Andrew Clark Aug 26 '11 at 17:51

Just as you said, "The = sign points a reference". So your loop just reassigns the 'i' reference to 5 different numbers, each one in turn.

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I read your answer and smacked myself. It was so simple! Is there a way to make the for loop behave in the manner I want? (Definite Upvote - you strike to the heart of the matter.) – Richard Aug 26 '11 at 16:25

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