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I am trying to split a string in python before a specific word. For example, I would like to split the following string before "path:".

  • split string before "path:"
  • input: "path:bte00250 Alanine, aspartate and glutamate metabolism path:bte00330 Arginine and proline metabolism"
  • output: ['path:bte00250 Alanine, aspartate and glutamate metabolism', 'path:bte00330 Arginine and proline metabolism']

I have tried

rx = re.compile("(:?[^:]+)")
rx.findall(line)

This does not split the string anywhere. The trouble is that the values after "path:" will never be known to specify the whole word. Does anyone know how to do this?

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3 Answers 3

using a regular expression to split your string seems a bit overkill: the string split() method may be just what you need.

anyway, if you really need to match a regular expression in order to split your string, you should use the re.split() method, which splits a string upon a regular expression match.

also, use a correct regular expression for splitting:

>>> line = 'path:bte00250 Alanine, aspartate and glutamate metabolism path:bte00330 Arginine and proline metabolism'
>>> re.split(' (?=path:)', line)
['path:bte00250 Alanine, aspartate and glutamate metabolism', 'path:bte00330 Arginine and proline metabolism']

the (?=...) group is a lookahead assertion: the expression matches a space (note the space at the start of the expression) which is followed by the string 'path:', without consuming what follows the space.

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1  
I didn't get why the whitespace is needed in the regex. Luckily, I got a good answer to my doubts here. I suspect some people can have the same doubt so I post the link here. –  brandizzi Jul 15 '11 at 21:02

You could do ["path:"+s for s in line.split("path:")[1:]] instead of using a regex. (note that we skip first match, that has no "path:" prefix.

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in_str = "path:bte00250 Alanine, aspartate and glutamate metabolism path:bte00330 Arginine and proline metabolism"
in_list = in_str.split('path:')
print ",path:".join(in_list)[1:]
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