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In Python, I have a string which is a comma separated list of values. e.g. '5,2,7,8,3,4'

I need to add a new value onto the end and remove the first value,

e.g. '5,22,7,814,3,4' -> '22,7,814,3,4,1'

Currently, I do this as follows:

mystr = '5,22,7,814,3,4'
latestValue='1'
mylist = mystr.split(',')
mystr = ''
for i in range(len(mylist)-1):
   if i==0:
      mystr += mylist[i+1]
   if i>0:
      mystr += ','+mylist[i+1]

mystr += ','+latestValue

This runs millions of times in my code and I've identified it as a bottleneck, so I'm keen to optimize it to make it run faster.

What is the most efficient to do this (in terms of runtime)?

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2  
Why are you storing the list as a string instead of a list? – Brad Mace Nov 6 '10 at 3:20
    
Unfortunately, I have to use a string as I'm fetching the string from a database and then reinserting the new string. – Pete W Nov 6 '10 at 3:23
    
If this is truly your bottleneck then you may have run across the rare application where you really would benefit from rewriting in another language. In any language with mutable strings you could keep appending ,latestValue and offsetting the pointer to the start, only really copying every Nth time (based on how long a string buffer you choose). – Ben Jackson Nov 6 '10 at 6:30
    
Thanks everyone for the solutions! Very impressive! – Pete W Nov 6 '10 at 17:47
up vote 6 down vote accepted
_, sep, rest = mystr.partition(",")
mystr = rest + sep + latestValue

It also works without any changes if mystr is empty or a single item (without comma after it) due to str.partition returns empty sep if there is no sep in mystr.

You could use mystr.rstrip(",") before calling partition() if there might be a trailing comma in the mystr.

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Very nice! If you don't have to handle the degenerate cases, this similar one-liner would work mystr = ','.join([mystr.partition(",")[2],latestValue]). – martineau Nov 6 '10 at 8:48
    
@martineau, ','.join() is much less efficient than mystr.partition(",")[2]+","+latestValue – John La Rooy Nov 6 '10 at 9:56
    
@gnibbler: I don't see any difference in CPython (.join() is slower in jython, pypy) – J.F. Sebastian Nov 6 '10 at 10:15
    
@gnibbler: You're quite right. Somewhere along the line I was brainwashed into almost always avoiding string concatenation via '+' (and especially '+=') in my Python code -- and have fallen into the habit of doing so. Do you know of anything definitive on the subject (other than timeit tests ;-)? – martineau Nov 6 '10 at 10:27
    
@J.F. Sebastian: In timing tests I just ran with CPython 2.7, '+' was faster by nearly an order of magnitude (10x) when comparing 'a'+','+'b' to ','.join(['a','b']). – martineau Nov 6 '10 at 10:36

Use this:

if mystr == '':
    mystr = latestValue
else:
    mystr = mystr[mystr.find(",")+1:] + "," + latestValue

This should be much faster than any solution which splits the list. It only finds the first occurrence of , and "removes" the beginning of the string. Also, if the list is empty, then mystr will be just latestValue (insignificant overhead added by this) -- thanks Paulo Scardine for pointing that out.

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1  
+1. I think this answer has finally sunk the fact that strings have a 'find' method into my skull. – aaronasterling Nov 6 '10 at 3:51
    
The best so far: 1000000 loops, best of 3: 0.625 usec per loop – Paulo Scardine Nov 6 '10 at 3:58
    
Fails if the list is empty. – Paulo Scardine Nov 6 '10 at 4:15
    
@Paulo Scardine no it does not (at least not in my python 2.6). If there is no , in the string, it returns -1. Adding 1 to that results in 0, the beginning of the string. – Gabi Purcaru Nov 6 '10 at 4:18
    
@Gabi Purcaru: the complete solution would be 'mystr=mystr[mystr.find(",")+1:]+","+latestValue', which results ',1' if mystr is empty. – Paulo Scardine Nov 6 '10 at 4:20
mystr = mystr.partition(",")[2]+","+latestValue

improvement suggested by Paulo to work if mystr has < 2 elements.
In the case of 0 elements, it does extend mystr to hold one element.

_,_,mystr = (mystr+','+latestValue).partition(',')

$ python -m timeit -s "mystr = '5,22,7,814,3,4';latestValue='1'" "mystr[mystr.find(',')+1:]+','+latestValue"
1000000 loops, best of 3: 0.847 usec per loop
$ python -m timeit -s "mystr = '5,22,7,814,3,4';latestValue='1'" "mystr = mystr.partition(',')[2]+','+latestValue"
1000000 loops, best of 3: 0.703 usec per loop
share|improve this answer
    
+1 This is the fastest by a longshot and I did not know about partition. – aaronasterling Nov 6 '10 at 5:46
1  
this code doesn't work for len(mystr.split(",")) < 2 stackoverflow.com/questions/4111711/… – J.F. Sebastian Nov 6 '10 at 9:45
    
Seems to work for len(mystr.split(",")) != 1, and works if you add the last element before: 'mystr+=','+latest; mystr = mystr.partition(",")[2]' – Paulo Scardine Nov 6 '10 at 17:53
    
@Paulo, and it can be made almost as fast by using tuple unpacking instead of indexing. – John La Rooy Nov 6 '10 at 23:02
    
+1: fast, short and clever. – Paulo Scardine Nov 7 '10 at 3:50

best version: gnibbler's answer


Since you need speed (millions of times is a lot), I profiled. This one is about twice as fast as splitting the list:

i = 0
while 1:
    if mystr[i] == ',': break
    i += 1
mystr = mystr[i+1:] + ', ' + latest_value

It assumes that there is one space after each comma. If that's a problem, you can use:

i = 0
while 1:
    if mystr[i] == ',': break
    i += 1
mystr = mystr[i+1:].strip() + ', ' + latest_value

which is only slightly slower than the original but much more robust. It's really up to you to decide how much speed you need to squeeze out of it. They both assume that there will be a comma in the string and will raise an IndexError if one fails to appear. The safe version is:

i = 0
while 1:
    try:
        if mystr[i] == ',': break
    except IndexError:
        i = -1
        break
    i += 1
mystr = mystr[i+1:].strip() + ', ' + latest_value

Again, this is still significantly faster than than splitting the string but does add robustness at the cost of speed.


Here's the timeit results. You can see that the fourth method is noticeably faster than the third (most robust) method, but slightly slower than the first two methods. It's the fastest of the two robust solutions though so unless you are sure that your strings will have commas in them (i.e. it would already be considered an error if they didn't) then I would use it anyway.

$ python -mtimeit -s'from strings import tests, method1' 'method1(tests[0], "10")' 1000000 loops, best of 3: 1.34 usec per loop

$ python -mtimeit -s'from strings import tests, method2' 'method2(tests[0], "10")' 1000000 loops, best of 3: 1.34 usec per loop

$ python -mtimeit -s'from strings import tests, method3' 'method3(tests[0], "10")' 1000000 loops, best of 3: 1.5 usec per loop

$ python -mtimeit -s'from strings import tests, method4' 'method4(tests[0], "10")' 1000000 loops, best of 3: 1.38 usec per loop


$ python -mtimeit -s'from strings import tests, method5' 'method5(tests[0], "10")' 100000 loops, best of 3: 1.18 usec per loop

This is gnibbler's answer

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could you add a test using partition() to your suite? – John La Rooy Nov 6 '10 at 5:19
    
@gnibbler Done. – aaronasterling Nov 6 '10 at 5:46
mylist = mystr.split(',')
mylist.append(latestValue);
mystr = ",".join(mylist[1:])

String concatenation in python isn't very efficient (since strings are immutable). It's easier to work with them as lists (and more efficient). Basically in your code you are copying your string over and over again each time you concatenate to it.

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1  
Don't forget that he also needs to remove the head of the list. What he really needs is a queue: docs.python.org/library/queue.html – Brian Clements Nov 6 '10 at 3:27
    
For further reading about performance of string vs. list concatenation, please take a look at "What is the most efficient string concatenation method in python?". – rsenna Nov 6 '10 at 3:29
1  
I remove the head of the list by using mylist[1:] in the join statement – GWW Nov 6 '10 at 3:39
    
Better than my one-liner... – Paulo Scardine Nov 6 '10 at 3:59
    
I'm actually surprised that there's a difference between them. Perhaps the added step of converting the latestValue to a list before concatenating the lists is slower than a straight up append. – GWW Nov 6 '10 at 4:00

Edited: Not the best, but I love one-liners. :-)

mystr = ','.join(mystr.split(',')[1:]+[latestValue])

Before testing I would bet it would perform better.

> python -m timeit "mystr = '5,22,7,814,3,4'" "latestValue='1'" \
"mylist = mystr.split(',')" "mylist.append(latestValue);" \
"mystr = ','.join(mylist[1:])"
1000000 loops, best of 3: 1.37 usec per loop
> python -m timeit "mystr = '5,22,7,814,3,4'" "latestValue='1'"\
"','.join(mystr.split(',')[1:]+[latestValue])"
1000000 loops, best of 3: 1.5 usec per loop
> python -m timeit "mystr = '5,22,7,814,3,4'" "latestValue='1'"\
'mystr=mystr[mystr.find(",")+1:]+","+latestValue'
1000000 loops, best of 3: 0.625 usec per loop
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