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I have an "unsigned int *" value, and I need to convert it to a simple "unsigned int", so I could transfer it to a function. But, unfortunately, when I try to do a simple cast, the value gets changed:

Code:

unsigned int * addr;

...

fprintf(stdout, "=== addr: %08x ===\n", addr); fflush(stdout);
fprintf(stdout, "=== casted addr: %08x ===\n", (unsigned int)addr);


Output:

=== addr: fc880000 ===
=== casted addr: 400eff20 ===

Please tell me, how to convert this value properly, so it doesn't change during the conversion?

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3  
...There is no C/C++ which one are you using? –  Mike Feb 18 '13 at 14:10
1  
You are printing two different variables: addr and address! –  MD.Unicorn Feb 18 '13 at 14:12
    
@Mike C, but a C++ solution would be interesting as well. –  Jake Badlands Feb 18 '13 at 14:12
1  
Why would you want to typecast the pointer? Pointers can be passed to functions like any other variable. –  Joachim Pileborg Feb 18 '13 at 14:21
1  
Also remember that the size of a pointer and the size of an unsigned int doesn't have to be the same. –  Joachim Pileborg Feb 18 '13 at 14:22

4 Answers 4

up vote 4 down vote accepted

Simply use *addr. This is valid and should always work. In case you need to get the value of the pointer instead of the value pointed to by the pointer, you will need a larger type. Typically the value of an unsigned int* is 64 bit, while unsigned int is only 32 bit.

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Thank you very much! It seems that I needed a larger type.The cast (long unsigned int) is working perfectly! –  Jake Badlands Feb 18 '13 at 14:26
    
I would not say the size of int is typically 32. Especially nowadays with lots of 64 bit systems around. –  Loki Astari Feb 18 '13 at 14:47
    
@JakeBadlands There are two standard integer types that are explicitly made for holding a pointer value: intptr_t and uintptr_t, depending on whether you want the integer value to be signed or unsigned. Anything else is not guaranteed to be the right size depending on the platform specifics. –  syam Feb 18 '13 at 14:56
1  
@LokiAstari: int is 32 bits on just about any 32 or 64 bit platform you're likely to encounter, so it's fair to call that "typical". –  Mike Seymour Feb 18 '13 at 17:08

When you declare a pointer, like

unsigned int * addr;

The value of that pointer will be the address of the unsigned int it points to.

When you want to get the value of the unsigned int it points to you use the dereference operator *:

unsigned int value = *addr;

So what you see in the second output line is the contents of what addr points to.

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If you have a pointer of some type, and you need to convert it to just the type, you just need to deference the pointer.

void foo(unsigned int some_value);

...

int main()
{

    unsigned int * addr = 0x12345678; // some address holding an unsigned int
    foo(*addr);  // some function taking a unsigned int

No need to typecast anything here because you're not changing the type. Note in your code the "value" doesn't change:

// prints the address
fprintf(stdout, "=== addr: %08x ===\n", addr); 

// prints the value at that address
fprintf(stdout, "=== casted addr: %08x ===\n", *(unsigned int *)addr);
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You are not changing the value. In

fprintf(stdout, "=== addr: %08x ===\n", addr); fflush(stdout); 

You are accessing the address of the pointer.

In

fprintf(stdout, "=== casted addr: %08x ===\n", *(unsigned int *)address);

you are accessing the value pointed to.

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Sorry I included the wrong sample of code. Fixed now –  Jake Badlands Feb 18 '13 at 14:18
1  
Well, just do as people said and dereference your pointer like fprintf(stdout, "=== casted addr: %08x ===\n", (unsigned int)(*addr)); –  bash.d Feb 18 '13 at 14:22

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