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I understand that somelist[len(somelist)] cannot access an index that is outside of the defined list - this makes sense.

But why then does Python allow you to do somelist[len(somelist):]?

I've even read that somelist[len(somelist):] = [1] is equivalent to somelist.append(1)

But why does slice notation change the fact that the index "len(somelist)" is still outside the range of the list?

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3 Answers 3

up vote 4 down vote accepted

Here's something from the documentation. There are specific rules around slicing of any iterable; of particular note is #4, emphasis mine:

The slice of s from i to j is defined as the sequence of items with index k such that i <= k < j. If i or j is greater than len(s), use len(s). If i is omitted or None, use 0. If j is omitted or None, use len(s). If i is greater than or equal to j, the slice is empty.

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Ok, that explains why an empty list is returned (as others have pointed out). But why does somelist[len(somelist):] = [1] allow you to append 1 to somelist? Isn't the equivalent of the previous command just [] = [1]? I apologize, I'm not trying to be dense. –  Alex Krycek Mar 18 '13 at 6:05
    
If i >= j, the slice is empty (has no items currently) but it is not an empty list object; it is still a slice starting at i, and assigning a list to it removes its current items (there aren't any) from the list and inserts the items in the assigned list at position i. –  rakslice Oct 18 '13 at 2:28
    
For example, suppose I set x = range(5), and then assign the slice x[3:2] = [8,7,6], x will now be [0, 1, 2, 8, 7, 6, 3, 4]. That's the same situation; there's nothing special about slice assignment in the i = len(s) case. –  rakslice Oct 18 '13 at 2:40

From the Python docs:

Degenerate slice indices are handled gracefully: an index that is too large is replaced by the string size, an upper bound smaller than the lower bound returns an empty string.

So an index > list size is automatically corrected, and somelist[len(somelist):] returns the elements after the last one, ie nada.

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There's nothing at the index len(somelist) (list indices start at 0 in python). Therefore, trying to access a non-existing element raises an error.

However, list slicing (with the myList[i:] syntax) returns a new list containing the elements including and after i. Since there are no elements in the list at index i (or after), an empty list is returned

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@AlexKrycek: Yes. Assigning to a slice is not the same as just reading the slice. –  BrenBarn Mar 18 '13 at 6:04

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