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I am trying to get the path of my python script.

I know 'sys.argv[0] gives me the path and the name of my python script.

how can I just get the path?

I tried:

 print sys.argv[0]
    path = sys.argv[0].split("/")
    scriptpath = "".join(path[0:-1])

But it does not add back the path separator.

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change "".join(path[0:-1]) to "/".join(path[0:-1]) if you had to have that specific solution for whatever reason :) –  Jason Sperske Nov 21 '12 at 23:19

4 Answers 4

up vote 3 down vote accepted

Prefer to use __file__, like this:

os.path.dirname(os.path.realpath(__file__))

Note: using sys.argv[0] may not work if you call the script via another script from another directory.

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you're looking for os.path.dirname(), in case you might have a relative pathame, you need os.path.abspath() too

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Don't try string operations on paths, use the os.path module instead. E.g.:

scriptpath = os.path.dirname(sys.argv[0])
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From another Stackoverflow thread

import sys, os

print 'sys.argv[0] =', sys.argv[0]             
pathname = os.path.dirname(sys.argv[0])        
print 'path =', pathname
print 'full path =', os.path.abspath(pathname)
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