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I was asked a question during an C Language interview. the question is:

int *point;
'0x983234' is a address of memory;//I can not remember exactly

how could we assign 20 to that memory? it looks likes a embedded programming question, can anyone explains me?

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This doesn't make any sense. What is point for here? To assign 20 to i, then simply do i = 20;. – Oliver Charlesworth Apr 28 '11 at 17:30
    
What's wrong with i = 20;? – Noufal Ibrahim Apr 28 '11 at 17:30
    
Additional information is required, this question does not seem to be accurate enough for a viable solution. – Mr. White Apr 28 '11 at 17:32

I suspect that it is an embedded programming question, and that you are misremembering it slightly. It was probably something like-

int *point = (int *) 0x983234;
*point = 20;

Embedded programmers do do stuff like that when there is a register that they want to read/write at address 0x983234.

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int *point = (int *) 0x983234 why 0x983234 need to be casted to (int *) the 0x983234 is already a address? – user707549 Apr 28 '11 at 17:40
2  
@ratzip: Because 0x983234 is of type int and so it must be cast to be of type int *. – Jonathan Wood Apr 28 '11 at 17:43
up vote 4 down vote accepted

First you have to set your pointer to the right address (so that it points where you need it to). Then, to write at that address, you dereference the pointer and do assignment. It will look something like this:

int main ()
{
        volatile int *point = (int *)0x983234;
        *point = 20;
        return 0;
}

Please note volatile keyword. It is recommended to use it so that compiler doesn't make any assumptions and optimize it.

If you have larger chunk of data to store, use memcpy or memmove with that address to copy data from/to it, like this:

#include <string.h>

int main ()
{
        const char data[] = "some useful stuff";
        memcpy ((char *)0x983234, data, sizeof (data));
        return 0;
}
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