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I have seen many examples of this in books and Embedded system related sites.. As per my understanding , Its for accessing a data that is stored in that fixed memory address . Here is the example i got in some book;

unsigned char *p=(unsigned char *)0x41E;

What is the use of the type cast (unsigned char *) , there we could have used directly like

unsigned char *p=0x41E;

Please explain in detail, What's the use of type cast there, and are we storing the address 0x41E itself to the pointer p or something else is stored in that?

I am totally confused. Please help.

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up vote 4 down vote accepted

What is the use of the type cast.. (unsigned char *) , there we could have used directly like unsigned char *p=0x41E

0x41E is a hexadecimal number and it doesn't mean that it is of type unsigned char *. You should have to tell the compiler, by casting it to unsigned char *, that it is an address (of type unsigned char *).

are we storing the address "0x41E" itself to the pointer p, or something else is stored in that.

Yes, we storing the address 0x41E to the pointer p. By doing unsigned char *p = (unsigned char *)0x41E, you are informing the compiler that p is pointing to the memory location 0x41E and by dereferencing p it will get the content stored at memory location 0x41E.
Just check it out by running this code:

#include <stdio.h>
int main()
{
    unsigned char *p=(unsigned char *)0x41E;
    printf("%p\n",p);
}   

Output:

0000041E  //output is not 0x41E because '0x' is used as prefix to inform the compiler that it is a hexadecimal number
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The cast is mainly to keep the compiler happy, but there may be certain architectures where a pointer address has to be converted to some format other than just the plain bits of a number. In segmented architectures, for example, there might be an actual conversion involved in the cast. As far the final result, though, (char *)0x41E just means "interpret the number 0x41E as a pointer address", a dereferencing it grabs the char at that address.

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actually, it is wrong: you should do unsigned char *p; <new line> "p = address" – graziano governatori Oct 7 '13 at 12:26
    
@grazianogovernatori: What do you assert is wrong, and why is it wrong? – Eric Postpischil Oct 7 '13 at 13:28
    
@Lee "The cast is mainly to keep the compiler happy": this is not correct, it is an error to assign an unsigned char an integer (*p is actually a char...) – graziano governatori Oct 7 '13 at 14:13
    
@grazianogovernator It's not the destination which is being modified, but the address. – Chris Stratton Oct 7 '13 at 14:42
    
@Lee: you're right, I did a mistake with assignment! Thanks! – graziano governatori Oct 7 '13 at 15:02

The value 0x41e is not a pointer, so the compiler would have complained about it. That's why it has to be type-casted as a pointer type.

And pointers are normal variables whose contents (value) is the address the pointer points to. It's treated specially by the compiler, to access what the pointer points to when dereferencing the pointer.

As for "fixed address variable", many embedded platforms have data and/or registers at special fixed addresses. To access this data or these registers, you often use pointers that are initialized to those addresses.

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char type is a type of portability in C. As each memory area is allowed to get aliased by a char * since c99. So if you don't know what type will be expected, or you even had to use different types, you are on the safe side if you use the type of char * to alias the types.

And if you use some fixed addresses, You are probably working on a lower level machine where char type is best to work with as the standard gives for char that it shall be 1 Byte.

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OP didn't ask about char type. – kotlomoy Oct 7 '13 at 16:25
    
Nope but he asked for explanation, and thats what I gave. But nvm. If thats enough for downvoting in our eyes... – Zaibis Oct 7 '13 at 16:41
    
I didn't downvote. You answer isn't wrong but irrelevant. – kotlomoy Oct 7 '13 at 17:49

Consider that, in many compilers for embedded world, you have ways to specify a specific address, (e.g. IAR compiler)

const unsigned char test_var @0x41E = 'a';

Hope this helps

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2  
This is not helpful, as it is based on your misunderstanding of the intent of the code in question. – Chris Stratton Oct 7 '13 at 14:43
    
"Hope this helps" -definitivly not! This is even incorrect syntax. And absolutly wrong what you are saying! – Zaibis Oct 7 '13 at 14:59
    
Corrected: I removed first part of my answer (erroneous, from my side). – graziano governatori Oct 7 '13 at 15:10
    
about syntax: it is not ansi C, but, since we're talking about embedded, I reported a possibility you have in embedded compilers. – graziano governatori Oct 7 '13 at 15:11
    
@Zabis: please, specify what you find "incorrect syntax" – graziano governatori Oct 7 '13 at 15:22

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