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# include <stdio.h>
# include <stdlib.h>
int main(int argc, char *argv[])
{
int a[5][10][2];
int *p;
p = (int(*)[10][2])p;//Gives error!
return EXIT_SUCCESS;
}

I want to type cast p to type so that it can act as a pointer to the given 3-d array?Is there a way to do so.I am applyindg the idea that the type of a variable is everything except variable name.

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closed as off-topic by H2CO3, Tom Leese, Nishith Jain M R, jcern, MysticMagicϡ Dec 24 '13 at 5:37

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2 Answers 2

Why are you trying to "typecast" anything? Why would you expect a value "typecasted" to (int(*)[10][2]) to be compatible with an int * pointer? And why does your original code assigns p to p, completely ignoring a?

This is what you can do

int a[5][10][2];
int (*p)[10][2] = a;

Now p is a pointer that can be used to access a, i.e. p[i][j][k] is equivalent to a[i][j][k]. No typecasting necessary.

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"Why would you expect that a value "typecasted" to (int(*)[10][2]) can be placed into an int * pointer?"why not ?arent both of them will have the same size? –  user2688772 Dec 23 '13 at 18:49
1  
@user2688772: The language does not care about "size". "Size" does not matter. What does matter is the rules of type compatibility described in the language specification. And these rules say that int(*)[10][2] and int * are two completely different, incompatible pointer types. –  AnT Dec 23 '13 at 18:52
    
The dimensions seem messed up; shouldn't it be int (*)[5][10]? I am not 100% sure. –  anatolyg Dec 23 '13 at 20:44
    
@anatolyg: No. The first dimesion is always the only one that is "flexible" and can be omitted. –  AnT Dec 23 '13 at 22:02

If you write p = (int(*)[10][2])a; it won't give you any errors, may be a warning. You are thinking that p will be converted to pointer to a 3-D array, which is wrong. Try this statement after assigning a to p.

printf("addresses %u   %u",p,p+1);

According to you, output should be something similar to this(lets say) "addresses 9990000 99940000", because you are thinking p is pointing to 3-D array. However you will get similar to "addresses 9990000 9990004", proving that p is a pointer to an integer.

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