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I'm using an old version of python on an embedded platform ( Python 1.5.2+ on Telit platform ). The problem that I have is my function for converting a string to hex. It is very slow. Here is the function:

def StringToHexString(s):
    strHex=''

    for c in s:
        strHex = strHex + hexLoookup[ord(c)]

    return strHex

hexLookup is a lookup table (a python list) containing all the hex representation of each character.

I am willing to try everything (a more compact function, some language tricks I don't know about). To be more clear here are the benchmarks (resolution is 1 second on that platform):

N is the number of input characters to be converted to hex and the time is in seconds.

  • N | Time (seconds)
  • 50 | 1
  • 150 | 3
  • 300 | 4
  • 500 | 8
  • 1000 | 15
  • 1500 | 23
  • 2000 | 31

Yes, I know, it is very slow... but if I could gain something like 1 or 2 seconds it would be a progress.

So any solution is welcomed, especially from people who know about python performance.

Thanks,

Iulian

PS1: (after testing the suggestions offered - keeping the ord call):

def StringToHexString(s):
    hexList=[]
    hexListAppend=hexList.append

    for c in s:
        hexListAppend(hexLoookup[ord(c)])

    return ''.join(hexList)

With this function I obtained the following times: 1/2/3/5/12/19/27 (which is clearly better)

PS2 (can't explain but it's blazingly fast) A BIG thank you Sven Marnach for the idea !!!:

def StringToHexString(s):
    return ''.join( map(lambda param:hexLoookup[param], map(ord,s) ) )

Times:1/1/2/3/6/10/12

Any other ideas/explanations are welcome!

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We're on an embedded platform and performance is a concern, and we're using Python? An older version, no less, presumably because recent ones aren't supported? Somehow doesn't sound like the right tool for the job to me... –  Karl Knechtel Oct 30 '11 at 11:05
    
@Karl Knechtel, python is the only way to code on that platform. Starting from the webpage I have given you can clearly see what I'm talking about. –  INS Oct 30 '11 at 14:23
1  
Try also caching ord to avoid that look-up as well (looking up built-ins is even slower than globals). Another alternative avoiding the repeated look-up of ord is for c in map(ord, s): .... –  Sven Marnach Oct 30 '11 at 17:07
    
@Sven Marnach Your idea rocks. I put everything in one line and it seems to work like a charm. Don't really know why but it seems to be fast fast fast (almost 3 times faster). Thanks! –  INS Oct 30 '11 at 19:15
2  
In a modern Python, you'd use a list comprehension; it avoids the overhead of a for loop – I guess on your hardware that's pretty expensive. map() is the next best thing... One more thing is to try hexLookup.__getitem__ instead of the lambda (hopefully 1.5 has that). –  Petr Viktorin Oct 30 '11 at 20:23
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5 Answers 5

Make your hexLoookup a dictionary indexed by the characters themselves, so you don't have to call ord each time.

Also, don't concatenate to build strings – that used to be slow. Use join on a list instead.

from string import join
def StringToHexString(s):
    strHex = []

    for c in s:
        strHex.append(hexLoookup[c])

    return join(strHex, '')
share|improve this answer
    
+1: will test and let you know about the results –  INS Oct 30 '11 at 14:24
    
First test (keeping the ord call): 1/2/3/5/12/19/27 which seems to be a fair improvement! Will continue tests! –  INS Oct 30 '11 at 15:25
    
check my latest test and if you can explain, please do cause all I can say is: I'm amazed. Is python working faster if less code is involved? (at least on that ancient version - 1.5.2+ ) –  INS Oct 30 '11 at 19:19
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Building on Petr Viktorin's answer, you could further improve the performance by avoiding global vairable and attribute look-ups in favour of local variable look-ups. Local variables are optimized to avoid a dictionary look-up on each access. (They haven't always been, by I just double-checked this optimization was already in place in 1.5.2, released in 1999.)

from string import join
def StringToHexString(s):
    strHex = []
    strHexappend = strHex.append
    _hexLookup = hexLoookup
    for c in s:
        strHexappend(_hexLoookup[c])
    return join(strHex, '')
share|improve this answer
    
Thank you! this seems like a very good suggestion. –  INS Oct 30 '11 at 15:14
    
using a dictionary makes things slower –  INS Oct 30 '11 at 16:41
    
look at my latest test (PS2) and if you know a better alternative I am open to suggestions. You are free to explain what is happening there 'cause I really can't explain why that piece of code works THAT fast compared to the one before (PS1). –  INS Oct 30 '11 at 19:20
    
also, using a local variable didn't improve performance. –  INS Oct 30 '11 at 19:31
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Constantly reassigning and adding strings together using the + operator is very slow. I guess that Python 1.5.2 isn't yet optimizing for this. So using string.join() would be preferable.

Try

import string
def StringToHexString(s):
    listhex = []
    for c in s:
        listhex.append(hexLookup[ord(c)])
    return string.join(listhex, '')

and see if that is any faster.

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Try:

from string import join

def StringToHexString(s):
    charlist = []

    for c in s:
        charlist.append(hexLoookup[ord(c)])

    return join(charlist, '')

Each string addition takes time proportional to the length of the string so, while join will also take time proportional to the length of the entire string, but you only have to do it once.

You could also make hexLookup a dict mapping characters to hex values, so you don't have to call ord for every character. It's a micro-optimization, so probably won't be significant.

share|improve this answer
    
actually adding a dictionary makes things slower in my tests –  INS Oct 30 '11 at 16:41
1  
@IulianŞerbănoiu Not really surprising. You're trading a constant-time speedup of removing the ord for the constant time slowdown of a hash and lookup vs. array indexing. –  agf Oct 30 '11 at 17:55
    
Check my latest test (PS2) in my post. If you're willing to explain why are those HUGE differences in performance I would be glad to know. Is python better when less code is written? Thanks a lot! –  INS Oct 30 '11 at 19:24
add comment
up vote 0 down vote accepted
def StringToHexString(s):
    return ''.join( map(lambda param:hexLoookup[param], map(ord,s) ) )

Seems like this is the fastest! Thank you Sven Marnach!

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