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A specific example of my question is, "How can I get '3210' in this example?"


>>> foo = '0123456'
>>> foo[0:4]
'0123'
>>> foo[::-1]
'6543210'
>>> foo[4:0:-1] # I was shooting for '3210' but made a fencepost error, that's fine, but...
'4321'
>>> foo[3:-1:-1] # How can I get '3210'?
''
>>> foo[3:0:-1]
'321'

It seems strange that I can write foo[4:0:-1], foo[5:1:-1], etc. and get what I would expect, but there's no way to write the slice so that I get '3210'.

A makeshift way of doing this would be foo[0:4][::-1], but this creates two string objects in the process. I will be performing this operation literally billions of times, so every string operation is expensive.

I must be missing something silly and easy. Thanks for your help!

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5 Answers 5

up vote 14 down vote accepted

Simply exclude the end range index...

>>> foo[3::-1]
'3210'

Ironically, about the only option I think you didn't try.

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3  
Or pass None. –  Ignacio Vazquez-Abrams Apr 27 '11 at 1:05
2  
The problem there is that this slice operation is being used in an algorithm that works somewhat like as follows: foo[i:i-4:-1], and starts with a high 'i' and walks down. I can't just remove the 'i'. I suppose I could use an edge case and say "if i-4 < 0, use this other slice". –  eblume Apr 27 '11 at 16:46
1  
I'll set this as 'accept' if it's the only way, but using the edge-case of removing the middle operand for the final 'reverse substring' (and not for any of the other reverse substrings) seems clunky. –  eblume Apr 27 '11 at 16:49
    
well, to be fair you didn't include that condition in your question and even then you can wrap that "clunky" logic in a function and be done with it. –  Andrew White Apr 27 '11 at 17:09
    
Could you explain why exactly foo[len(foo)-1:-1:-1] does not work here? What's the harm in the -1 stop index, and why does it require None? –  Alice Feb 6 at 17:54

If you're looking for something a little more human-readable than extended slice notation:

>>> foo = '0123456'
>>> ''.join(reversed(foo[0:4]))
'3210'
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3  
Thanks, but no, this creates three memory objects. join and reversed are pretty fast, but I think it's safe to assume that extended slice notation will be faster. –  eblume Apr 27 '11 at 16:48
1  
I generally run under the assumption that if you're writing in python, efficiency isn't the most important thing. The only other thing that could be important is readability, so I optimize for that. Extended slice notation, particularly with negative step values, comes across as very opaque. –  Aaron Dufour Apr 27 '11 at 21:03

Omit the end index in your slice notation:

>>> foo = '0123456'
>>> foo[3::-1]
'3210'

If you have to do this many times, create a slice object that you can use over and over

>>> i = slice(3,None,-1)
>>> foo[i]
'3210'
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Wow ! I didn't know slice() . +1 –  eyquem Apr 27 '11 at 10:59
1  
you can go foo[3:None if i<0 else i:-1] also. –  robert king Apr 3 '13 at 3:43

In addition to the above solutions, you can do something like:

foo = '0123456'
foo[-4::-1]

I guess if foo is going to be changing lengths, this may not be the best solution, but if the length is static it would work.

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You can use s[::-1] to reverse the entire string. But if you want to reverse each substring with some fixed length, you can first extract the substring and then reverse the entire substring. For example, let's assume we need to check whether each substring with length 3 of string foo is a palindrome, we can do it like this:

>>> foo = '0102030'
>>> for i in range(len(foo)-3):
...     if foo[i:i+3] == foo[i:i+3][::-1]:
...         print(foo[i:i+3], 'is a palindrome')
...     else:
...         print(foo[i:i+3], 'is not a palindrome')
...
010 is a palindrome
102 is not a palindrome
020 is a palindrome
203 is not a palindrome
030 is a palindrome

If you want to check if a substring is palindrome like this:

if foo[i:i+3] == foo[i+2:i-1:-1]:
    ...

you will not be able to handle the case of i being 0, since you are actually comparing foo[0:3] with foo[2:-1:-1], which is equivalent to foo[2:n-1:-1], which in turn is an empty string.

The only drawback of the first solution is that it uses a little more memory but it's no big deal.

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