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What is faster way to manipulate myInput string in order to have myOutput string?

myInput  = "1,3-5,7"

myOutput = "1,3,4,5,7"
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6  
Faster than what? Please show that you at least tried. –  larsmans Mar 24 '11 at 14:19
    
What does "x-y" mean ? All numbers between x and y ? –  w00t Mar 24 '11 at 14:23
    
this is a near duplicate of stackoverflow.com/questions/1481192/pythonic-format-for-indices whichs answer is for "1,3-5,7" into [1,3,4,5,7] doing ','.join(answer(v)) to that gives the answer for this question –  Dan D. Mar 27 '11 at 11:09

3 Answers 3

up vote 1 down vote accepted
re.sub( 
      "(\d+)-(\d+)" ,        
      lambda x : ",".join( map( str , range( int(x.group(1)) , int( x.group(2) ) +1 ) )) , 
      "1,3-5,7" )

You can get "1,3,4,5,7"

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i remember a question on SO that turned [1,3,4,5,7] into "1,3-5,7" but i don't remember which

this is the opposite problem:

def expand(s): 
    return ','.join(sum([v if len(v)==1 else map(str, apply(lambda a,b: range(a,b+1), map(int, v))) for v in [p.split('-') for p in s.split(',')]],[]))

print expand("1,3-5,7")

prints:

1,3,4,5,7
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>>> def expand(s):
...   for p in s.split(","):
...     r = p.split("-")
...     if len(r) == 1:
...       yield str(r[0])
...     else:
...       for i in range(int(r[0]), int(r[1]) + 1):
...         yield str(i)
... 
>>> ",".join(expand("1,3-5,7"))
'1,3,4,5,7'
>>> ",".join(expand("1-5,8,10,13-19"))
'1,2,3,4,5,8,10,13,14,15,16,17,18,19'

Obviously this will fail in various interesting ways if the input does not conform to the assumptions (letters, reverse sequences, etc.), and it does not work with negative numbers.

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