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Can we anyhow change the size of the pointer from 2 bytes so it can occupy more than 2 bytes?

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4  
Why would you ever want to change the size of a pointer? –  casablanca Oct 24 '10 at 19:37
    
I dont know why do they ask such questions in the exams. –  Fahad Uddin Oct 24 '10 at 19:40
    
Oh I didn't realize it was an exam question. Well, Peter Torok's answer is what you're looking for then. –  casablanca Oct 24 '10 at 19:45
    
Is the question, "Can the size of a pointer be 2 bytes?" ? –  Arun Oct 24 '10 at 19:52
    
See my answer below, it might help understanding what a pointer is, and why its size is kinda fixed. –  uʍop ǝpısdn Oct 24 '10 at 20:24

4 Answers 4

up vote 10 down vote accepted

Sure, compile for a 32 (or 64) bit platform :-)

The size of pointers is platform specific, it would be 2 bytes only on 16-bit platforms (which have not been widely used for more than a decade - nowadays all mainstream [update](desktop / laptop / server)[/update] platforms are at least 32 bits).

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I was wondering if I should use a far pointer in this regard –  Fahad Uddin Oct 24 '10 at 19:41
10  
@fahad: you'd do best to get off MS DOS and Turbo C. –  Jonathan Leffler Oct 24 '10 at 19:47
    
Nice and simple :-0 –  Student T Oct 25 '10 at 3:48
    
all mainstream desktop platforms :) –  mikecsh Oct 25 '10 at 8:01
    
@mikecsh, why, are there still 16-bit servers out there? :-) Seriously though, I edited my answer to clarify that embedded platforms are not considered here. –  Péter Török Oct 25 '10 at 8:22

If your pointer size is 2 byte that means you're running on a 16-bit system.

The only way to increase the pointer size is to use a 32-bit or 64-bit system instead (which would mean any desktop or laptop computer built in the last 15 years or so).

If you're running on some embedded device that uses 16-bit, your only option would be to switch to another device which uses 32-bits (or just live with your pointers being 16-bit).

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When a processor is said to be "X-bit" (where X is 16, 32, 64, etc), that X refers to the size of the memory address register. Thus a 16-bit system has a memory address register of 2 bytes.

You cannot cast a 4-byte address to anything smaller because it would lose part of where it's pointing to. (A 2-byte memory address register can only point to 2^16=64KB of memory, whereas a 4-byte register can point to 2^32=4GB of memory.)

You can always "step-up" (ie, run a 32-bit software application on a 64-bit computer) because there's no loss in pointer range. But you can never step down, which is why 64-bit programs don't run on 32-bit systems.

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So how come the 16 bit 8086 could address 1Mb and not just 64k? If only 'bit'ness was this easy. Marketing departments have a lot to answer for. –  Skizz Oct 25 '10 at 8:45

Think of a pointer as a number, only instead of an actual value used for computation, it's the number of a 'slot' in the memory map of the system.

A pointer must be able to represent the highest position of the memory map. That is, it must have at least the amount of bytes required to represent the number of the highest position.

In a 16-bit system, the highest possible position is 0xFFFF (a 16-bit number with all the bits set to 1). A pointer must also have 16 bits, so it can reach that number.

Generalizing, in an X-bit system, a pointer will have X bits.

You can store a pointer in a larger variable, the same way you can store the number 1 in a char, in an int, or an unsigned long long if you wanted to; but there's little point to that: think that, the same way a shorter pointer won't be able to reach the highest memory position, a longer pointer would be able to point to things that can't actually exist in memory, so why have it?

Also, you'd have to 'trick' the compiler for that. If you use the pointer notation in your code, the compiler will always use the correct amount of bytes for it. You can instruct the compiler to compile for another platform, though.

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