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I am with a python script. I want to open a file to retrieve data inside. I add the right path to sys.path:

 sys.path.append('F:\WORK\SIMILITUDE\ALGOCODE')
 sys.path.append('F:\WORK\SIMILITUDE\ALGOCODE\DTW')

More precisely, the file file.txt I will open is in DTW folder, and I also add upper folder ALGOCODE. Then, I have command

inputASTM170512 = open("file.txt","r")

I have this present:

Traceback (most recent call last):
   File "<pyshell#24>", line 1, in <module>
   inputASTM170512 = open("ASTM-170512.txt","r")
IOError: [Errno 2] No such file or directory: 'ASTM-170512.txt'

Why? Do you have any idea?

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2  
As the answers point out, sys.path isn't used for opening arbitrary files. But you also should escape the backslashes in directory paths on Windows: F:\\WORK\\SIMILITUDE\\ALGOCODE; the backslash is an escape character itself. –  Martijn Pieters Jun 25 '12 at 13:52

2 Answers 2

up vote 6 down vote accepted

open() checks only the current working directory and does not traverse your system path looking for the file. Only import works with that mechanism.

You will either need to change your working directory before you open the file, with os.chdir(PATH) or to include the entire path when trying to open it.

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When you try to open file with open, for example:

open("ASTM-170512.txt","r")

you will try to open a file in the current directory.

It does not depend on sys.path. The sys.path variable is used when you try to import modules, but not when you open files.

You need to specify the full path to file in the open or change the current directory to the correspondent place (I think that the former is better).

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