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Error message:

Failed to open output_file_path/**.txt

Code:

cmd = 'showTxt "%s" > "%s"' % (file_path, output_file_path)
LoggerInstance.log('[cmd] '+cmd)

#os.system(cmd)
splited_cmd=shlex.split(cmd)

p = subprocess.Popen(splited_cmd, stderr=subprocess.PIPE)
#p.wait()
output = p.stderr.read()
print output

LoggerInstance.log('[console std error]'+ output)

How to redirect stdout to a file in a cmd?

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What is the value of output_file_path? –  BasicWolf Oct 12 '12 at 8:16
1  
Popen(splited_cmd, stdout=open(output_file_path, "w"), stderr=subprocess.PIPE) –  Antoine Pelisse Oct 12 '12 at 8:17
1  
As far as I know, you can't use pipes in the commands you call, you have to create two subprocesses and use the stout of one as stdin for the other. Too complicated! Either you save the stout into the file using python or you put your command into a shell script and call that file with subprocess. –  Sebastian Blask Oct 12 '12 at 8:19
    
@AntoinePelisse thanks antoine it works, can u make it as an answer? –  Scott 混合理论 Oct 12 '12 at 8:58

1 Answer 1

up vote 2 down vote accepted

You can provide a file-handler as stdout parameter to Popen, i.e:

p = subprocess.Popen(splited_cmd,
                     stderr=subprocess.PIPE,
                     stdout=open(output_file_path, "w"))

Of course, be ready to catch the exception that it can throw.

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