32

Say you have this string:

ABCDEFGH

And you want to reverse it so that it becomes:

GHEFCDAB

What would be the most efficient / pythonic solution? I've tried a few different things but they all look horrible...

Thanks in advance!

Update:

In case anyone's interested, this wasn't for homework. I had a script that was processing data from a network capture and returning it as a string of hex bytes. The problem was the data was still in network order. Due to the way the app was written, I didn't want to go back through and try to use say socket.htons, I just wanted to reverse the string.

Unfortunately my attempts seemed so hideous, I knew there must be a better way (a more pythonic solution) - hence my question here.

  • 2
    Could we see what you've tried, maybe we can help improve it. – Trufa May 3 '11 at 1:52
  • 5
    Is this homework? – jterrace May 3 '11 at 1:54
  • I'm afraid I don't have it handy (it's at work) but it is truly hideious. At the moment I'm using a very weird loop construct. I would be happy for a simple solution to replace my mess :) – PeterM May 3 '11 at 1:55
  • What's the correct result if the input contains an odd number of characters? – Greg Hewgill May 3 '11 at 1:55
  • 1
    The input will never contain an odd number as they are byte sequences. – PeterM May 3 '11 at 1:59

13 Answers 13

29

A concise way to do this is:

"".join(reversed([a[i:i+2] for i in range(0, len(a), 2)]))

This works by first breaking the string into pairs:

>>> [a[i:i+2] for i in range(0, len(a), 2)]
['AB', 'CD', 'EF', 'GH']

then reversing that, and finally concatenating the result back together.

  • 2
    lol I spent a minute writing about 12 lines out, then I refreshed the page and saw yours. – a sandwhich May 3 '11 at 2:03
14

Lots of fun ways to do this

>>> s="ABCDEFGH"
>>> "".join(map(str.__add__, s[-2::-2] ,s[-1::-2]))
'GHEFCDAB'
  • ohhhh lovely. Yes, as he says, lots of fun ways to do this – Lacrymology May 3 '11 at 2:11
  • +1. This one is pretty neat as it splits and reverses in one go, and doesn't use the length of the string. – Macke May 5 '11 at 9:50
10

If anybody is interested, this is the timing for all* the answers.

EDIT (had got it wrong the first time):

import timeit
import struct

string = "ABCDEFGH"

# Expected resutlt => GHEFCDAB

def rev(a):
    new = ""

    for x in range(-1, -len(a), -2):
        new += a[x-1] + a[x]

    return new

def rev2(a):
    return "".join(reversed([a[i:i+2] for i in range(0, len(a), 2)]))

def rev3(a):
    return "".join(map(str.__add__, a[-2::-2] ,a[-1::-2]))

def rev4(a):
    return "".join(map("".join, reversed(zip(*[iter(a)]*2))))


def rev5(a):
    n = len(a) / 2
    fmt = '%dh' % n
    return struct.pack(fmt, *reversed(struct.unpack(fmt, a)))

def rev6(a):
    return "".join([a[x:x+2] for x in range(0,len(a),2)][::-1])


print "Greg Hewgill %f" %timeit.Timer("rev2(string)", "from __main__ import rev2, string").timeit(100000)
print "gnibbler %f" %timeit.Timer("rev3(string)", "from __main__ import rev3, string").timeit(100000)
print "gnibbler second %f" %timeit.Timer("rev4(string)", "from __main__ import rev4, string").timeit(100000)
print "Alok %f" %timeit.Timer("rev5(string)", "from __main__ import rev5, struct, string").timeit(100000)
print "elliot42 %f" %timeit.Timer("rev6(string)", "from __main__ import rev6, struct, string").timeit(100000)
print "me %f" %timeit.Timer("rev(string)", "from __main__ import rev, string").timeit(100000)

results for string = "ABCDEFGH":

Greg Hewgill 0.853000
gnibbler 0.428000
gnibbler second 0.707000
Alok 0.763000
elliot42 0.237000
me 0.200000

results for string = "ABCDEFGH"*5:

Greg Hewgill 2.246000
gnibbler 0.811000
gnibbler second 1.205000
Alok 0.972000
elliot42 0.594000
me 0.584000

results for string = "ABCDEFGH"*10:

Greg Hewgill 2.058000
gnibbler 1.178000
gnibbler second 1.926000
Alok 1.210000
elliot42 0.935000
me 1.082000

results for string = "ABCDEFGH"*100:

Greg Hewgill 9.762000
gnibbler 9.134000
gnibbler second 14.782000
Alok 5.775000
elliot42 7.351000
me 18.140000

*Sorry @Lacrymology could not make your's work!

  • I like your empiricism =) =) – elliot42 May 3 '11 at 4:07
  • @elliot42: Thats because you were the fastest! :P – Trufa May 3 '11 at 4:09
  • You should use string without it being surrounded by single quotes (and import the name string in your setup statement as well). Otherwise you're checking the time for running on the constant string 'string'. BTW, my method is the fastest for long strings (~50 characters or more on my computer). But I am not sure if I will write the function this way if it was production code :-). – Alok Singhal May 3 '11 at 4:23
  • @Alok: fixed and did some more testing... – Trufa May 3 '11 at 5:11
  • Interesting how they scale. Did *1 and *100 tests with my own variant: def rev7(a): a=array.array('H',a) a.reverse() return a.tostring() Comparison to the fastest contenders: *1 Trufa 0.437, Yann 0.223. *100 Alok 5.19, Yann 2.38. – Yann Vernier May 3 '11 at 16:04
6
>>> import array
>>> s="abcdef"
>>> a=array.array('H',s)
>>> a.byteswap()
>>> a.tostring()
'badcfe'

Finish up by using a.reverse() instead of a.byteswap() if you wanted to swap element order rather than byte order.

I took the liberty of editing Trufa's benchmark script a bit. The modified script generated a graphical plot showing approximately linear scaling for all functions.

  • Neat module find! Wasn't familiar with that one. – elliot42 May 5 '11 at 9:53
4

Here is a general form. The size of the grouping can easily be changed to a different number of characters at a time. The string length should be an exact multiple of the grouping size

>>> "".join(map("".join, reversed(zip(*[iter("ABCDEFGH")]*2))))
'GHEFCDAB'

(this is Python 2, it won't work in 3)

  • 1
    Love use of zip & map. I'm not familiar with this asterisk notation, could you explain pls. – laher May 3 '11 at 2:11
  • 1
    @amir75 docs.python.org/tutorial/… – John La Rooy May 3 '11 at 2:15
  • Could you explain this solution a little further? As in what is going on? – Senthil Kumaran May 3 '11 at 2:17
  • @gnibbler. Good man, thanks – laher May 3 '11 at 2:19
  • Curiously obscure code. From the inside out: an iterator is created for the data, then duplicated as both arguments to zip (*2 to duplicate, * to apply list as arguments); effectively causing zip to pair up adjacent items (in order, but I'm not sure that's meant to be guaranteed) as it's the same iterator. The list of pairs is then reversed, and both pairs and the list of pairs are joined into a single string. – Yann Vernier May 3 '11 at 17:35
3

You can use this, but don't tell anyone I wrote this code :-)

import struct

def pair_reverse(s):
    n = len(s) / 2
    fmt = '%dh' % n
    return struct.pack(fmt, *reversed(struct.unpack(fmt, s)))

pair_reverse('ABCDEFGH')
3
st = "ABCDEFGH"
"".join([st[x:x+2] for x in range(0,len(st),2)][::-1])

EDIT: Curses, apparently 27 minutes slower than another poster. But I like the reverse slice notation better.

Some more information on the reverse slice here: "".join(reversed(val)) vs val[::-1]...which is pythonic?

  • Seems the most pythonic to me too, and fast. List slicing is very well optimised, although I rarely see it used in place of reverse() =/. – TyrantWave May 3 '11 at 9:18
1

My friend Rob pointed out a beautiful recursive solution:

def f(s):
    return "" if not s else f(s[2:]) + s[:2]
0

just a shot

st = "ABCDEFGH"
s = [st[2*n:2*n+1] for n in range(len(st)/2)]
return s[::-1].join('')

this assumes that len(st) is even, otherwise change that to range(len(st)/2+1) and I'm even sure there's a better way to do that split into twos.

If your python complains about s[::-1] you can use reversed(s)

0

And yet another way:

a = "ABCDEFGH"
new = ""

for x in range(-1, -len(a), -2):
    new += a[x-1] + a[x]

print new
0

This looks like homework. So here's a very unorthodox approach that you might find interesting:

>>> s = "ABCDEFGH"
>>> ''.join([s[::2][::-1][i]+s[::-2][i] for i in range(len(s[::2]))])
'GHEFCDAB'

Good Luck!

0

and another gets on...

>>> rev = "ABCDEFGH"[::-1]
>>> ''.join([''.join(el) for el in zip(rev[1::2], rev[0::2])])
'GHEFCDAB'
0

I like this solution the most as it's the simplest and the neatest:

import struct
hex = struct.pack('<I', 0x41424344) #ABCD
print(hex) # BCDA

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