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Why doesn't this work?

# to reverse a part of the string in place 
a = [1,2,3,4,5]
a[2:4] = reversed(a[2:4])  # This works!
a[2:4] = [0,0]             # This works too.
a[2:4].reverse()           # But this doesn't work
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3 Answers 3

up vote 14 down vote accepted

a[2:4] creates a copy of the selected sublist, and this copy is reversed by a[2:4].reverse(). This does not change the original list. Slicing Python lists always creates copies -- you can use

b = a[:]

to copy the whole list.

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+1 for concise and clear. good answer. –  jaydel Jan 10 '11 at 13:39
1  
@İsmail: I don't see a connection between mutability and the fact that slicing creates copies. Slicing NumPy arrays does not create copies, and they are mutable as well. These are independent design decisions. –  Sven Marnach Jan 10 '11 at 13:53
    
@İsmail: I don't seem to understand what you are after. If Python lists were immutable, you couldn't tell if a copy is created or not, because you can't alter it anyway. –  Sven Marnach Jan 10 '11 at 14:50
    
Nit: "Slicing Python lists always creates copies"—except when they are assigned to, as in a[2:4] = reversed(a[2:4]) in the OP's example. People may be led to think that x = reversed(x) and x.reverse() both modify x, but they are fundamentally different operations in Python, and their results differ when x is not a variable, as shown here. –  musiphil Jul 8 at 19:19

a[2:4] is a copy of the list a that is built using the 2,3,4 items in list a. The first two work because you are assigning the changes into those spots in the original list. The last one doesn't work because you are not affecting the original list.

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Another way you might consider is to use a reversed slice:

a[2:4] = a[3:1:-1]
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1  
Should be a[3:1:-1]. –  Nikolay Vyahhi May 22 '13 at 20:40

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