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I'm trying to interop with C in Python, and I have the following function prototype:

int testout(unsigned char *test, int *size)

The size of the unsigned char is determined by the size parameter. So I need a way to resize the buffer in Python dynamically to adjust to the size returned from the function call. This has been very difficult for me to figure out.

From the Python ctypes manual:

"This is nice and fine, but how would one access the additional elements contained in this array? Since the type still only knows about 4 elements, we get errors accessing other elements:

>>> short_array[:]
[0, 0, 0, 0]
>>> short_array[7]
Traceback (most recent call last):
...
IndexError: invalid index
>>>

Another way to use variable-sized data types with ctypes is to use the dynamic nature of Python, and (re-)define the data type after the required size is already known, on a case by case basis."

Great! I'm getting IndexError:invalid index, just as the example shows. And they decided not to show how to do this properly! :)

Does anyone know how to resize a ctype properly?

Here is my example code that works, except for the resizing:

from ctypes import *

lib = "test.so"
dll = cdll.LoadLibrary(lib)
print "Testing pointer output"
dll.testout.argtypes = [POINTER(c_ubyte), POINTER(c_int)]
sizeout = c_int(0)
mem = (c_ubyte * 20)() 
dll.testout(mem, byref(sizeout))
print "Sizeout = " + str(sizeout.value)
for i in range(0,sizeout.value):
    print "Item " + str(i) + " = " + str(mem[i])
share|improve this question
    
Not really sure what you want. The code you have works when used with the source of your previous question, although if you are passing a buffer into a function the function should probably be told how big the buffer is: sizeout = c_out(20). Are you posting the exact code that gives you an error? –  Mark Tolonen Mar 3 '12 at 18:35
    
Mark, this code does work. But only if size <= 20. That is the issue. How do I resize the data to receive something of unknown size? –  CharlieY Mar 3 '12 at 18:44
    
Since your function doesn't take an unsigned char** it can't return a buffer it allocated itself of arbirtrary size. Your function is passing in a buffer of known size (and should pass the size as well, with size = c_int(20). Then the called function can check that the buffer is big enough to hold the result, and update size with the amount used. –  Mark Tolonen Mar 3 '12 at 18:56
    
Thank you Mark. C, and pointers, are not my strong suit. So the way I'm handling this in my function is just fine. Thank you. –  CharlieY Mar 3 '12 at 18:59
    
You can also say size=xxxxx and mem=(c_ubyte*size)() to allocate buffers of varying sizes. –  Mark Tolonen Mar 3 '12 at 19:00

2 Answers 2

up vote 2 down vote accepted

Here's an example of what we were discussing. This code expects the caller to allocate the buffer.

Test code (Windows)

// IN: test=pre-allocated buffer.
// IN: size=size of pre-allocated buffer.
// RETURNS: 0 and size set to required size.
//          1 and size set to size used.
__declspec(dllexport) int testout(void *pdata, int *psize)
{
    unsigned char * p = (unsigned char *)pdata;

    if (*psize < 5)
    {
        *psize = 5; // set size required
        return 0;  // fail
    }

    p[0] = 123;
    p[1] = 255;
    p[2] = 237;
    p[3] = 12;
    p[4] = 222;
    *psize = 5; // indicate size used

    return 1;  // pass
}

Python

from ctypes import *

test = CDLL('test')
size = c_int(0)
test.testout.argtypes=[c_void_p,POINTER(c_int)]
print "Result of NULL pointer and zero size:",test.testout(None,byref(size))
print "Returned size:",size.value
mem = (c_ubyte * 2)()
size = c_int(sizeof(mem))
print "sizeof(mem):",size.value
print "Result of small buffer:",test.testout(byref(mem),byref(size))
print "Returned size:",size.value
mem = (c_ubyte * size.value)()
print "Result of exact size buffer:",test.testout(byref(mem),byref(size))
print "Returned size:",size.value
for i in range(size.value):
    print mem[i]
mem = (c_ubyte * 20)()
size = c_int(20)
print "Result of bigger buffer:",test.testout(byref(mem),byref(size))
print "Returned size:",size.value
for i in range(size.value):
    print mem[i]

Output

Result of NULL pointer and zero size: 0
Returned size: 5
sizeof(mem): 2
Result of small buffer: 0
Returned size: 5
Result of exact size buffer: 1
Returned size: 5
123
255
237
12
222
Result of bigger buffer: 1
Returned size: 5
123
255
237
12
222
share|improve this answer
    
Great, thank you very much for your help Mark –  CharlieY Mar 4 '12 at 6:53

If you receive a pointer from C, you can index the corresponding ctypes pointer just like a C pointer.

If you need to allocate the array in Python, you can create the ctypes array type of appropriate size dynamically.

share|improve this answer
    
Janne, do you mind modifying this code to show what you mean. This is my 'working code'. Everything is working but dynamic resizing of the array. –  CharlieY Mar 3 '12 at 10:22

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