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I get the following error when subprocess calls the process newtest.py. The code run as a daemon. When I started the daemon the process was called, it worked fine and did run 8 processes before started giving the error and then the error occurs at every call. The error is

  /opt/local/Library/Frameworks/Python.framework/Versions/2.6/Resources/Python.app/Contents/MacOS/Python: can't open file 'newtest.py': [Errno 2] No such file or directory

the code is below:

for index,row in enumerate(jobs):
            if index <= new_jobs :
                dirs=row[0]
                dirName=os.path.join(homeFolder,dirs)
                logFile=os.path.join(dirName,(dirs+".log"))
                proc=subprocess.Popen(["/opt/local/bin/python2.6","newtest.py",dirs],stdout=open(logFile,'a',0),stderr=open(logFile,'a',0))
                proId= proc.pid

I tried using the full path to newtest.py but it gives the same error. Any suggestions? Many Thanks!

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what is teh exact error message if you provide the full path ??? –  rocksportrocker Sep 7 '11 at 11:59
    
"file 'newtest.py': [Errno 2] No such file or directory" seems really, really clear. What confuses you about this message? The file doesn't exist. What more do you need to know? "tried using the full path to newtest.py"? Please include the actual current working directory and this "full path" information. Use os.getcwd to print the current working directory and os.listdir to prove that the file exists where you claim it does. –  S.Lott Sep 7 '11 at 12:46
    
It is exactly the same with the path before the newtest.py –  shash Sep 7 '11 at 12:46
    
@S.Lott. But the file does exist in the current folder and the code did run intially, so I think that is not the problem. –  shash Sep 7 '11 at 12:48
    
@shash: "exactly the same with the path before the newtest.py". This is neither code, nor evidence. It's just a claim. Please provide evidence. Please print the values of os.getcwd, etc. to prove that the file really exists where you claim it's supposed to exist. –  S.Lott Sep 7 '11 at 12:48

1 Answer 1

Try:

subprocess.Popen(['/opt/local/bin/python2.6','/FULL/PATH/TO/FILE/newtest.py'],stdout=subprocess.PIPE)

Does that work? removed parameters and what not.

Also, can you do a:

f = open('/FULL/PATH/newtest.py')
print f
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