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Ok, so on a test I had this question asked:

int* ptrA;    // assigned memory address 100
int a = 1;    // assigned memory address 600
ptrA = &a;

What is the memory address of ptrA + 2?

I thought it was 606 (int is 4 bytes + the address of a which is 600 + 2 = 606 but apparently the answer was 608, what am I missing to make this true?

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closed as not a real question by Paul R, BЈовић, H.Muster, Toon Krijthe, hims056 Oct 10 '12 at 8:53

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

6  
If that's how the test question was phrased, the test sucks. –  therefromhere Oct 10 '12 at 4:42
3  
I doubt very much that this is what was actually asked on the test ... at the very least there would be PtrA = &a somewhere. –  Jim Balter Oct 10 '12 at 4:46
    
@Jim: unless the question was deliberately checking that such an error was noticed by the student.... –  Tony D Oct 10 '12 at 5:00
    
@TonyD That's silly, and would make the test question far worse than it is already. See the OP's edit. –  Jim Balter Oct 10 '12 at 5:01
    
The answer should be 100 + (2*sizeof(int)). God knows where 608 is coming from if there is no PtrA = &a statement –  auny Oct 10 '12 at 5:02

6 Answers 6

up vote 5 down vote accepted

It's undefined behavior, the expression PtrA + 2 is illegal. You can only do pointer arithmetic on pointers you own and can't add or substract to/from pointers outside the range of an array you own or one beyond the range.

We can still analyze this however (although useless, because of UB). You assume the address of a is 600 + 2, but it's not, since probably sizeof(int*) is also 4, so this becomes 600 + 4. So you get 600 + 4 + 4 = 608.

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I'm a little confused how +2 turned into +4. So for example - if the question was ptrA + 10 would it be 600+4+10 = 614? –  Howdy_McGee Oct 10 '12 at 4:44
2  
@Howdy_McGee This may feel counterintuitive, but adding 2 to an int* moves the address two ints, not two bytes. Because an int is 4 bytes wide, you're actually adding 8 bytes to the original address. –  Jeff Bowman Oct 10 '12 at 4:47
    
UB aside, are there any real-world architectures where pointer arithmetic with invalid pointers doesn't work? (assuming you never dereference the invalid pointers, of course) –  Jeremy Friesner Oct 10 '12 at 4:48
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hey @Howdy_McGee: for your query it will be 600 + (4)*10 = 640 . See my Comment Below .. Thanks –  Neelam Verma Oct 10 '12 at 4:50
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@KirillKobelev RTFStandard ... you're wrong. Only the address of the element 1 beyond the end of an object can be taken ... going beyond that is UB. –  Jim Balter Oct 10 '12 at 4:55

Actually Arithmetic operations on Pointers are different. They Increase depends on the size of data type so if one address is given say x and u have to ask for x+ 2.. (given x is a integer Pointer) then ..

x+ 2 means ---- x + (sizeof(int))*2

if x is given as char pointer then

x+2 means ---- x + (sizeof(char))*2

Thanks.

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y are u saying that it would be sizeof(int*) or sizeof(char*). Both these sizes are the same. It is sizeof(int) or sizeof(char) –  auny Oct 10 '12 at 5:00
    
@auny: yeah u r correct.. edited now.. thanks –  Neelam Verma Oct 10 '12 at 5:09
    
Good Answer................:) –  vikky Oct 10 '12 at 7:20

In C, x + y where x is a pointer is equivalent to &x[y]. Suppose that you had

int abc[3] = {1,2,3}; 
int* ptr = &abc[0];

&ptr[2] (ptr + 2) is the address of the 3, which is clearly 8 more than the address of the 1.

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"is clearly 8 more ..." No it isn't until you don't say anything about the sizeof(int) –  Emilio Garavaglia Oct 10 '12 at 6:27
    
@EmilioGaravaglia The OP wrote "int is 4 bytes"; other answers, including the accepted answer, are based on this understanding. –  Jim Balter Oct 10 '12 at 17:47
int* PtrA;    // assigned memory address 100
int a = 1;    // assigned memory address 600

What is the memory address of ptrA + 2? 

The question is ambiguous.

If the question is "What is (the memory address of ptrA) + 2?", then you've said ptrA is at memory address 100 (ignoring PtrA != ptrA), and adding 2 to a pointer in C and C++ increments things in multiples of the pointed-to type's size, so if int is 32 bits then the final result is 100 + 2 * 4 = 108.

If the question is "What is the memory address of (ptrA + 2)?", meaning the result of adding the value in the ptrA variable and 2, then that is undefined as no initialisation of ptrA is shown and it's undefined behaviour to try to read from uninitialised memory.

Your expectations and the supposed answer suggest the intended code had...

ptrA = &a;

...sometime before the ptrA + 2 was to be evaluated. If that were true, then the answer would be 600 + 2 * sizeof(int), which is very likely to be 608.

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+1 for the clean descrptition of the ambiguity in the question, that reveals the illiteracy of the author of the test. The purpose of tests should be to prove knowledge, not to issue traps asking thing impossible to be understood to cheat about wrong answers (especially where any answer can be true of false by reverting the meaning of the questions!) –  Emilio Garavaglia Oct 10 '12 at 6:25

In C/C++ the pointer arithmetic uses the size of the object that the pointer is pointing at. Ex:

int* PtrA = (int*)600;

The value of PtrA+2 will be 608 provided that the size of integer is 4.

Standard allows to do pointer arithmetic only inside arrays or "right after the array". This means that certain care should be taken.

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I think, it is not true that address will always be more. It can be less as well. What is sure is that say ptr is pointer to base address of an array a of integers, then ptr+2 will point to 3rd element of the array. So if base address of array is 600, then address can be 600+2*(sizeofIint)) or it may be 600-2*sizeof(int); But in anycase, it will point to 3rd element of that array. So, I believe that even in cases of arrays, we should not rely on direct addresses. and should not make any assumptions about whether ptr+2 will point to 608 or something else.

Thanks & Regards, Saurabh

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