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In my Python (2.7.3) code, I'm trying to use an ioctl call, accepting a long int (64 bit) as an argument. I'm on a 64-bit system, so a 64-bit int is the same size as a pointer.

My problem is that Python doesn't seem to accept a 64-bit int as the argument for a fcntl.ioctl() call. It happily accepts a 32-bit int or a 64-bit pointer - but what I need is to pass a 64-bit int.

Here's my ioctl handler:

static long trivial_driver_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
{
    long err = 0;

    switch (cmd)
    {
        case 1234:
            printk("=== (%u) Driver got arg %lx; arg<<32 is %lx\n", cmd, arg, arg<<32);
            break;
        case 5678:
            printk("=== (%u) Driver got arg %lx\n", cmd, arg);
            break;
        default:
            printk("=== OH NOES!!! %u %lu\n", cmd, arg);
            err = -EINVAL;
    }

    return err;
}

In existing C code, I use the call like this:

static int trivial_ioctl_test(){
    int ret;
    int fd = open(DEV_NAME, O_RDWR);

    unsigned long arg = 0xffff;

    ret = ioctl(fd, 1234, arg); // ===(1234) Driver got arg ffff; arg<<32 is ffff00000000
    arg = arg<<32;
    ret = ioctl(fd, 5678, arg); // === (5678) Driver got arg ffff00000000
    close(fd);

}

In python, I open the device file, and then I get the following results:

>>> from fcntl import ioctl
>>> import os
>>> fd = os.open (DEV_NAME, os.O_RDWR, 0666)
>>> ioctl(fd, 1234, 0xffff)
0
>>> arg = 0xffff<<32
>>> # Kernel log: === (1234) Driver got arg ffff; arg<<32 is ffff00000000
>>> # This demonstrates that ioctl() happily accepts a 32-bit int as an argument.
>>> import struct
>>> ioctl(fd, 5678, struct.pack("L",arg))
'\x00\x00\x00\x00\xff\xff\x00\x00'
>>> # Kernel log: === (5678) Driver got arg 7fff9eb1fcb0
>>> # This demonstrates that ioctl() happily accepts a 64-bit pointer as an argument.
>>> ioctl(fd, 5678, arg)

Traceback (most recent call last):
  File "<pyshell#10>", line 1, in <module>
    ioctl(fd, 5678, arg)
OverflowError: signed integer is greater than maximum
>>> # Kernel log: (no change - OverflowError is within python)
>>> # Oh no! Can't pass a 64-bit int!
>>> 

Is there any way Python can pass my 64-bit argument to ioctl()?

share|improve this question
    
Would help to provide a reproducible example, if possible. Given that ioctl() calls are device-specific, substituting IOC_GET_VAL for the actual request code you're using makes this difficult to test. –  Aya Jun 23 '13 at 18:48
    
@Aya: Thanks for the comment. I'm new to device drivers, and having a bit of trouble constructing a trivial-yet-functional example. But I'll see what I can do. :) –  Ziv Jun 23 '13 at 19:01
    
In the meantime, I've posted a ctypes-based solution. –  Aya Jun 23 '13 at 19:37
    
OK, I got around to posting a clearer example! I'll puzzle over the answers now... –  Ziv Jun 26 '13 at 18:09
1  
I found a simpler way to test, using strace(1), and after having re-checked Python's source code, it's probably impossible using the fcntl module. See also my updated answer. –  Aya Jun 28 '13 at 16:02

2 Answers 2

up vote 2 down vote accepted
+50

Whether or not this is possible using Python's fcntl.ioctl() will be system-dependent. Tracing through the source code, the error message is coming from the following test on line 658 of getargs.c...

else if (ival > INT_MAX) {
    PyErr_SetString(PyExc_OverflowError,
    "signed integer is greater than maximum");
    RETURN_ERR_OCCURRED;
}

...and on my system, /usr/include/limits.h tells me...

#  define INT_MAX   2147483647

...which is (presumably) (2 ** ((sizeof(int) * 8) - 1)) - 1.

So, unless you're working on a system where sizeof(int) is at least 8, you'll have to call the underlying C function directly using the ctypes module, but it's platform-specific.

Assuming Linux, something like this ought to work...

from ctypes import *

libc = CDLL('libc.so.6')

fd = os.open (DEV_NAME, os.O_RDWR, 0666)
value = c_uint64(0xffff<<32)
libc.ioctl(fd, 5678, value)
share|improve this answer
    
Yes! This works :) I'm surprised there's no built-in support inside fcntl.ioctl(), but this is a perfectly reasonable workaround. –  Ziv Jun 26 '13 at 18:27
    
cf. stackoverflow.com/questions/9257065/… . –  Ziv Jun 28 '13 at 16:18
    
Great answer. Thanks muchly :D –  Ziv Jun 28 '13 at 16:20
    
@Ziv Yeah. I was under the impression (for some reason) that an int was supposed to be the same size as a CPU register, but it's not. –  Aya Jun 28 '13 at 16:23

Notation of 'arg' in Python's ioctl is different from what of C.

In python (again according to 1) it either python integer (without specifying 32 or 64 bit), or a some sort of buffer object (like a string). You do not really have "pointers" in Python (so all underlaying architecture details - like 32 or 64 bit addresses are completely hidden).

If I understood correctly what you need is actually need for a SET_VAL is struct.pack(your 64-bit integer) into the string first and pass this string to ioctl, instead of passing of integer directly.

Like this:

struct.pack('>Q',1<<32)

For a GET_VAL you need a 'Q' type again (not a 'L') to unpack 64-bit integer value properly.

share|improve this answer
    
I'm sorry, this isn't correct. (Sorry if my original post wasn't clear enough.) As far as I can tell, any use of struct.pack() translates (within the c driver) into a pointer to binary data being sent to c's ioctl argument. I don't want a pointer; I want to directly control the 64-bit value being passed. –  Ziv Jun 26 '13 at 18:16
    
But strictly speaking, you can not really pass any 64 bit value via 32-bit arguments (being it a pointer or a 'value'). And type of parameter in ioctl call will be a 32bit in 32-bit architecture. On 64-bit systems everything became 64bit, so theoretically you can pass 64-bit values to IOCTL in C*. –  Georgiy Jul 1 '13 at 4:31
    
Python in other hand tries to hide any of these platform specifics, so it does no expose any pointers-API. Idea is you must never care what architecture is. In fact Python's integers can be arbitrary big (i.e. not limited by 64bit or whatever...) So to remain Pythonic (and platform-independent) it is probably better to pass buffer-objects even for little things like a 64-bit integers... –  Georgiy Jul 1 '13 at 4:40
    
Yes, but that's not how this particular, existing ioctl call is implemented. ioctl's argument can be treated as a pointer or as an integer; that's why python gives the option of passing an integer to begin with. –  Ziv Jul 1 '13 at 7:36

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