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I'm trying to create a file that is only user-readable and -writable (0600).

Is the only way to do so by using os.open() as follows?

import os
fd = os.open('/path/to/file', os.O_WRONLY, int("0600", 8))
myFileObject = os.fdopen(fd)
myFileObject.write(...)
myFileObject.close()

Ideally, I'd like to be able to use the with keyword so I can close the object automatically. Is there a better way to do what I'm doing above?

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3 Answers 3

up vote 9 down vote accepted

What's the problem? file.close() will close the file even though it was open with os.open().

with os.fdopen(os.open('/path/to/file', os.O_WRONLY | os.O_CREAT, 0600), 'w') as handle:
  handle.write(...)     
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I consider this answer better than mine, but it is not "what is the problem": you present a new factor the OP was notaware of -that is the convertion of a file handler into a Python File object –  jsbueno Apr 11 '11 at 16:55
    
@jsbueno: I've just combined first two lines together and used with. And in the example in the question the file being closed via myFileObject.close() anyway. –  vartec Apr 11 '11 at 16:59
    
This doesn't work for me. os.open with these flags expects the file to already exist.>>> f = os.open('test.txt', os.O_WRONLY, 0600) Traceback (most recent call last): File "<stdin>", line 1, in <module> OSError: [Errno 2] No such file or directory: 'test.txt' –  stair314 Aug 30 '12 at 20:49
    
@stair314, that's probably because you didn't specify O_CREAT. See current version of answer. –  A-B-B Feb 21 '13 at 23:50
    
@vartec, specifying 0600 is not a good idea anymore, for clarity. Instead, 0o600 can be specified. –  A-B-B Feb 22 '13 at 1:01
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You can use os.chmod instead:

>>> import os
>>> name = "eek.txt"
>>> with open(name, "wt") as myfile:
...   os.chmod(name, 0600)
...   myfile.write("eeek")
...
>>> os.system("ls -lh " + name)
-rw------- 1 gwidion gwidion 4 2011-04-11 13:47 eek.txt
0
>>>

(Note that this is Python 2.x, and 0600 is parsed as an octal number in which probably is the only usecase for this feature)

However, if your security is critical, you probably should resort to creating it with os.open, as you do and use os.fdopen to retrieve a Python File object from the file handler yielded by os.open

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1  
Racy code is bad –  SaveTheRbtz Jun 8 '12 at 1:01
1  
@jsbueno, specifying 0600 is not a good idea anymore, for clarity. Instead, 0o600 can be specified. –  A-B-B Feb 22 '13 at 1:02
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This answer does not use the with statement, but it addresses multiple concerns with the answer by vartec, especially the umask concern.

Firstly, if the desired mode is 0600, it can more clearly be specified as the octal number 0o600. This syntax is valid at least in Python 2.6+. Even better, just use the stat module.

import os, stat

mode = stat.S_IRUSR | stat.S_IWUSR  # This is 0o600 in octal and 384 in decimal.
umask_original = os.umask(0)
try:
    handle = os.fdopen(os.open('/path/to/file', os.O_WRONLY | os.O_CREAT, mode), 'w')
finally:
    os.umask(umask_original) 
handle.write(...)
handle.close()

Failing to first set the umask to 0 can lead to an incorrect mode (permission) being set by os.open. This is because the default umask may not be 0, and it may be applied to the specified mode. For example, if my original umask is 2, and my specified mode is 0o222, if I fail to first set the umask to 0, the resulting file can instead have a mode of mode ^ umask_original, i.e. 0o220, which is not what I wanted. This makes sense, considering mode ^ 0 == mode. Note that ^ means bitwise XOR.

Caution: The umask is restored to its original value as soon as possible. This getting and setting is not thread safe, and a threading.Lock must be used if necessary.

Technically, os.fdopen does not seem necessary in the try...finally block, and can be outside of it. Only os.open seems necessary inside the block.

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