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I want to create a file from within a python script that is executable.

import os
import stat
os.chmod('somefile', stat.S_IEXEC)

it appears os.chmod doesn't 'add' permissions the way unix chmod does. With the last line commented out, the file has the filemode -rw-r--r--, with it not commented out, the file mode is ---x------. How can I just add the u+x flag while keeping the rest of the modes intact?

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up vote 70 down vote accepted

Use os.stat() to get the current permissions, use | to or the bits together, and use os.chmod() to set the updated permissions.

Example:

import os
import stat

st = os.stat('somefile')
os.chmod('somefile', st.st_mode | stat.S_IEXEC)
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1  
This only makes it executable by the user. The poster was asking about "chmod +x" which makes it executable across the board (user, group, world) – eric.frederich Aug 13 '13 at 14:11
14  
Use the following to make it executable by everyone... stat.S_IXUSR | stat.S_IXGRP | stat.S_IXOTH. Note: that value is the same as octal 0111, so you could just do st.st_mode | 0111 – eric.frederich Aug 13 '13 at 14:18
    
My answer below copies the R bits to X, as one would expect from say, a compiler. – Jonathon Reinhart May 26 '15 at 16:25
    
I would do STAT_OWNER_EXECUTABLE = stat.S_IEXEC, and use the human readable local constant instead of the gibberish one. – ThorSummoner Dec 22 '15 at 21:31

For tools that generate executable files (e.g. scripts), the following code might be helpful:

def make_executable(path):
    mode = os.stat(path).st_mode
    mode |= (mode & 0o444) >> 2    # copy R bits to X
    os.chmod(path, mode)

This makes it (more or less) respect the umask that was in effect when the file was created: Executable is only set for those that can read.

Usage:

path = 'foo.sh'
with open(path, 'w') as f:           # umask in effect when file is created
    f.write('#!/bin/sh\n')
    f.write('echo "hello world"\n')

make_executable(path)
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Octal literals changed in Python 3. Instead of 0444, you'd use 0o444. Or, if you want to support both, just write 292. – Kevin Jun 7 '15 at 19:37
    
@Kevin It looks like the new syntax has been supported by Python 2.6, so it seems reasonable to use that. (For a compatibility reference point, CentOS 6 ships with Python 2.6). – Jonathon Reinhart Jun 8 '15 at 0:33
    
I was under the impression that the new octal literals hadn't been backported; I guess I learned something new. Thank you for clarifying that. – Kevin Jun 8 '15 at 1:18
    
I was unaware that Python 3 had remove the traditional octal literals. So thank you for that. – Jonathon Reinhart Jun 8 '15 at 1:37

os.system(cmd) lets you execute cmd as a command on the command line from the current working directory.

So, os.chdir(myDir) and os.system(chmod +x …) will get you where you need to go.

EDIT:

It is true that this opens you up to a lot of vulnerabilities as you would be injecting the equivalent of user input (either from the end user or from yourself) into os.system. Since this essentially gives a lot of access to the command line, it may not be the safest of practices. I only suggested it because it is the "simplest" way, meaning the way that requires you to learn the least amount of new modules and functionalities. Indeed, for a more robust solution, os.stat is the way to go

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4  
Its unnecessary to call out to a subprocess to achieve this, but even if it was, it would probably be better to use the subprocess module than os.system - especially if the filename comes from user input, which can lead to shell injection vulnerabilities. – lvc Oct 9 '12 at 2:35
1  
@lvc: fair enough. I've edited my answer to reflect my choice – inspectorG4dget Oct 9 '12 at 3:33
    
To make subprocess easier, use shlex. For instance command=shlex.split("chmod -R 0777 'my File.txt'") subprocess.call(command). Shlex is part of the standard library. It allows for some complicated input. – Shule Sep 3 '14 at 5:04
    
Programmers who aspire to "learn the least amount of new modules" and invoke external processes instead of performing two simple system calls are why modern software is so bloated. – Jonathon Reinhart May 29 '15 at 22:15

You can also do this

>>> import os
>>> st = os.stat("hello.txt")

Current listing of file

$ ls -l hello.txt
-rw-r--r--  1 morrison  staff  17 Jan 13  2014 hello.txt

Now do this.

>>> os.chmod("hello.txt", st.st_mode | 0o111)

and you will see this in the terminal.

ls -l hello.txt    
-rwxr-xr-x  1 morrison  staff  17 Jan 13  2014 hello.txt

You can bitwise or with 0o111 to make all executable, 0o222 to make all writable, and 0o444 to make all readable.

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