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this is a visual representation of my directory :

enter image description here

here is the code snippet from test1.py

....
def foo():
    f=read("./test1.dat","r")
....

here is the code of test2.py

import imp

TEST1 = imp.load_source('test1', '../test1.py')


def test2():
    TEST1.foo()

running test2.py

cd subdir
python test2.py

got IOERROR: No Such file or directory : "./test1.dat"

my question is :

if I don't change the structure of directory, for example move test2.py to its parent directory, is it possible to make module test1 find the correct file when calling it in module test2?

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..I assume you know which would be the proper way to do the imports, and you're doing this way because you have some strange/custom needs to do so, right? –  redShadow Mar 20 '13 at 18:07
1  
    
@redShadow , Yes,I only can read the parent directory. –  camino Mar 20 '13 at 18:10

1 Answer 1

up vote 0 down vote accepted

This will give you the path to a module that was loaded:

import a_module
print a_module.__file__

To get the directory of the module:

import os, a_module
path = os.path.dirname(a_module.__file__)

Putting it all together, I'd use this approach if you're looking for files relative to another module:

from test1.py

def foo(path):
    f=read(path,"r")

from test2.py

import os, test1
path = os.path.dirname(test1.__file__)
test1.foo(path + "/test1.dat")
share|improve this answer
    
Thanks , but in function foo ,it has no input parameter –  camino Mar 20 '13 at 18:29
    
I think it should be better to replace relative path with file in test1.py. It seems it was not a good idea to use relative path in python module:) –  camino Mar 20 '13 at 18:39

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