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If a string like "RL2R'F2LD'" given,What is the most efficient way of splitting this into Strings "R" "L2" "R'" "F2" "L" "D'"? I'v tried few methods like first splitting them into individual chars and then trying to add them to a list and nothing worked correctly.

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1  
A regular expression would work: [FBUDLRfbudlrxyz][2']? –  U2744 SNOWFLAKE Nov 7 '12 at 15:35
    
@minitech can you explain it more please? –  Madushan Nov 7 '12 at 15:37
    
@Madushan: I've updated my answer to explain the regular expression. –  Martijn Pieters Nov 7 '12 at 16:09

4 Answers 4

up vote 5 down vote accepted
def rubikstring(s):
    import string
    cumu = ''
    for c in s:
        if c in string.ascii_letters:
            if cumu: yield cumu
            cumu = ''
        cumu += c
    if cumu: yield cumu

could do your job. With

>>> for i in rubikstring("RL2R'F2LD'"): i
...
'R'
'L2'
"R'"
'F2'
'L'
"D'"

you get your desired result, with

>>> list(rubikstring("RL2R'F2LD'"))
['R', 'L2', "R'", 'F2', 'L', "D'"]

as well.

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I think this is the answer I'm looking for.re is a good way too but it's not telling me how It work :D –  Madushan Nov 7 '12 at 15:52
    
Note that this solution also will return invalid directions, if there are errors in the rubrik directions (e.g. it'll return Q33' just as happily if that's present in the input. –  Martijn Pieters Nov 7 '12 at 16:08

You could use a regular expression:

import re
cubedirs = re.compile(r"[RLFBUDrlfbudxyz][2']?")
cubedirs.findall("RL2R'F2LD'")

This outputs ['R', 'L2', "R'", 'F2', 'L', "D'"].

The regular expression is actually very simple. The [..] character group means: match one character from the set given (so an R, or an L, or an F, etc.).

Then we look for a second character group optionally matching 1 character, namely a 2 or '. The question mark after the second character is what makes it optional; we are specifying that it's also fine if the ' or the 2 character is not there.

The .findall() method simply returns all matches that have been found, so you get a list of all character groups in the input string that match the pattern.

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How about [\d']? –  U2744 SNOWFLAKE Nov 7 '12 at 15:41
    
@minitech: yup, better still. –  Martijn Pieters Nov 7 '12 at 15:45
    
Gr8.Thanx for the explanation! (: –  Madushan Nov 7 '12 at 16:48

You could use a regular expression:

[FBUDLRfbudlrxyz][2']?

Here's a live demo.

import re

s = "RL2R'F2LD'"

for m in re.finditer("[FBUDLRfbudlrxyz][2']?", s):
    print m.group(0)

(Sorry for not explaining how to do it in the comments, I don't really know Python.)

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As commented, a regular expression would be a good way:

>>> import re
>>> re.findall('[A-Z]{1}[0-9]{0,1}', "RL2R'F2LD'")
['R', 'L2', 'R', 'F2', 'L', 'D']
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2  
{1} is superfluous, {0,1} can be replaced by ?, you ignored the '. –  U2744 SNOWFLAKE Nov 7 '12 at 15:39
    
Noticed that in Martjin Pieters answer, thanks! –  Gonzalo Delgado Nov 7 '12 at 15:43

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