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As Joel points out in Stack Overflow podcast #34, in C Programming Language (aka: K & R), there is mention of this property of arrays in C: a[5] == 5[a]

Joel says that it's because of pointer arithmetic but I still don't understand. Why does a[5] == 5[a] ?

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6  
would something like a[+] also work like *( a++) OR *(++a) ? –  Egon May 13 '10 at 16:14
10  
@Egon: That's very creative but unfortunately that's not how compilers work. The compiler interprets a[1] as a series of tokens, not strings: *({integer location of}a {operator}+ {integer}1) is the same as *({integer}1 {operator}+ {integer location of}a) but is not the same as *({integer location of}a {operator}+ {operator}+) –  Dinah May 13 '10 at 17:24
4  
An interesting compound variation on this is illustrated in Illogical array access, where you have char bar[]; int foo[]; and foo[i][bar] is used as an expression. –  Jonathan Leffler Oct 17 '12 at 6:38
1  
@EldritchConundrum, why do you think 'the compiler cannot check that the left part is a pointer'? Yes, it can. It's true that a[b] = *(a + b) for any given a and b, but it was the language designers' free choice for + to be defined commutative for all types. Nothing could prevent them from forbidding i + p while allowing p + i. –  Andrey Chernyakhovskiy Mar 14 at 19:46
2  
@Andrey One usually expects + to be commutative, so maybe the real problem is choosing to make pointer operations resemble arithmetic, instead of designing a separate offset operator. –  Eldritch Conundrum Mar 18 at 10:36

12 Answers 12

up vote 994 down vote accepted

The C standard defines the [] operator as follows:

a[b] == *(a + b)

Therefore a[5] will evaluate to:

*(a + 5)

and 5[a] will evaluate to:

*(5 + a)

and from elementary school math we know those are equal.

This is the direct artifact of arrays behaving as pointers, "a" is a memory address. "a[5]" is the value that's 5 elements further from "a". The address of this element is "a + 5". This is equal to offset "a" from "5" elements at the beginning of the address space (5 + a).

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176  
I wonder if it isn't more like *((5 * sizeof(a)) + a). Great explaination though. –  John MacIntyre Dec 19 '08 at 17:06
72  
John, no the sizeof isn't needed. it's automatically incremented by the sizeof –  Johannes Schaub - litb Dec 19 '08 at 17:12
34  
@Dinah: From a C-compiler perspective, you are right. No sizeof is needed and those expressions I mentioned are THE SAME. However, the compiler will take sizeof into account when producing machine code. If a is an int array, a[5] will compile to sth like mov eax, [ebx+20] instead of [ebx+5] –  Mehrdad Afshari Dec 19 '08 at 17:18
20  
It's done automatically. Since only adding an half element to a pointer (thus pointing in the middle of some element isn't going to make sense anyway. and Treb, no &a[1] - &a[0] is always going to be 1 for all types (not only 4 bytes integers) –  Johannes Schaub - litb Dec 19 '08 at 17:18
22  
@sr105: That's a special case for the + operator, where one of the operands is a pointer and the other an integer. The standard says that the result will be of the type of the pointer. The compiler /has to be/ smart enough. –  aib Dec 23 '08 at 2:08

Because array access is defined in terms of pointers. a[i] is defined to mean *(a + i), which is commutative.

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11  
Arrays are not defined in terms of pointers, but access to them is. –  Lightness Races in Orbit May 12 '11 at 23:20
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I would add "so it is equal to *(i + a), which can be written as i[a]". –  Jim Balter Apr 5 '13 at 22:11

And, of course

 "ABCD"[2] == 2["ABCD"] == 'C'

The main reason for this was that back in the 70's when C was designed, computers didn't have much memory (64KB was a lot), so the C compiler didn't do much syntax checking. Hence "X[Y]" was rather blindly translated into "*(X+Y)"

This also explains the "+=" and "++" syntaxes. Everything in the form "A = B + C" had the same compiled form. But, if B was the same object as A, then an assembly level optimization was available. But the compiler wasn't bright enough to recognize it, so the developer had to (A += C). Similarly, if C was 1, a different assembly level optimization was available, and again the developer had to make it explicit, because the compiler didn't recognize it. (More recently compilers do, so those syntaxes are largely unnecessary these days)

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70  
Actually, that evaluates to false; the first term "ABCD"[2] == 2["ABCD"] evaluates to true, or 1, and 1 != 'C' :D –  Jonathan Leffler Dec 19 '08 at 17:16
3  
@Jonathan: same ambiguity lead to the editing of the original title of this post. Are we the equal marks mathematical equivalency, code syntax, or pseudo-code. I argue mathematical equivalency but since we're talking about code, we can't escape that we're viewing everything in terms of code syntax. –  Dinah Dec 19 '08 at 17:26
12  
Isn't this a myth? I mean that the += and ++ operators were created to simplify for the compiler? Some code gets clearer with them, and it is useful syntax to have, no matter what the compiler does with it. –  Thomas Padron-McCarthy Dec 19 '08 at 17:44
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Heard that += reduces the odds for mistakes as you write variable names two times rather than three... –  Liran Orevi Apr 21 '09 at 8:02
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No - "ABCD"[2] == *("ABCD" + 2) = *("CD") = 'C'. Dereferencing a string gives you a char, not a substring –  MSalters Sep 21 '09 at 10:34

Realistically I'm not going to compete with the accepted answer, but I think something is being missed.

Yes, p[i] is by definition equivalent to *(p+i), which (because addition is commutative) is equivalent to *(i+p), which (again, by the definition of the [] operator) is equivalent to i[p].

(And in array[i], the array name is implicitly converted to a pointer to the array's first element.)

But the commutativity of addition is not all that obvious in this case.

When both operands are of the same type, or even of different numeric types that are promoted to a common type, commutativity makes perfect sense: x + y == y + x.

But in this case we're talking specifically about pointer arithmetic, where one operand is a pointer and the other is an integer. (Integer + integer is a different operation, and pointer + pointer is nonsense.)

The C standard's description of the + operator (N1570 6.5.6) says:

For addition, either both operands shall have arithmetic type, or one operand shall be a pointer to a complete object type and the other shall have integer type.

It could just as easily have said:

For addition, either both operands shall have arithmetic type, or the left operand shall be a pointer to a complete object type and the right operand shall have integer type.

in which case both i + p and i[p] would be illegal.

In C++ terms, we really have two sets of overloaded + operators, which can be loosely described as:

pointer operator+(pointer p, integer i);

and

pointer operator+(integer i, pointer p);

of which only the first is really necessary.

So why is it this way?

C++ inherited this definition from C, which got it from B (the commutativity of array indexing is explicitly mentioned in the 1972 Users' Reference to B), which got it from BCPL (manual dated 1967), which may well have gotten it from even earlier languages (CPL? Algol?).

So the idea that array indexing is defined in terms of addition, and that addition, even of a pointer and an integer, is commutative, goes back many decades, to C's ancestor languages.

Those languages were much less strongly typed than modern C is. In particular, the distinction between pointers and integers was often ignored. (Early C programmers sometimes used pointers as unsigned integers, before the unsigned keyword was added to the language.) So the idea of making addition non-commutative because the operands are of different types probably wouldn't have occurred to the designers of those languages. If a user wanted to add two "things", whether those "things" are integers, pointers, or something else, it wasn't up to the language to prevent it.

And over the years, any change to that rule would have broken existing code (though the 1989 ANSI C standard might have been a good opportunity).

Changing C and/or C++ to require putting the pointer on the left and the integer on the right might break some existing code, but there would be no loss of real expressive power.

So now we have arr[3] and 3[arr] meaning exactly the same thing, though the latter form should never appear outside the IOCCC.

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Fantastic description of this property. From a high level view, I think 3[arr] is an interesting artifact but should rarely if ever be used. The accepted answer to this question (<stackoverflow.com/q/1390365/356>) which I asked a while back has changed the way I've thought about syntax. Although there's often technically not a right and wrong way to do these things, these kinds of features start you thinking in a way which is separate from the implementation details. There's benefit to this different way of thinking which is in part lost when you fixate on the implementation details. –  Dinah Aug 24 '13 at 1:01
    
Addition is commutative. For the C standard to define it otherwise would be strange. That's why it could not just as easily said "For addition, either both operands shall have arithmetic type, or the left operand shall be a pointer to a complete object type and the right operand shall have integer type." - That wouldn't make sense to most people who add things. –  iheanyi Apr 21 at 17:54
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@iheanyi: Addition is usually commutative -- and it usually takes two operands of the same type. Pointer addition lets you add a pointer and an integer, but not two pointers. IMHO that's already a sufficiently odd special case that requiring the pointer to be the left operand wouldn't be a significant burden. (Some languages use "+" for string concatenation; that's certainly not commutative.) –  Keith Thompson Apr 21 at 18:13
    
True on the string example! In that light, this looks like a language decision that comes from the implementation side of things - rather than design. –  iheanyi Apr 21 at 19:53

One thing no-one seems to have mentioned about Dinah's problem with sizeof:

You can only add an integer to a pointer, you can't add two pointers together. That way when adding a pointer to an integer, or an integer to a pointer, the compiler always knows which bit has a size that needs to be taken into account.

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There's a fairly exhaustive conversation about this in the comments of the accepted answer. I referenced said conversation in the edit to the original question but did not directly address your very valid concern of sizeof. Not sure how to best do this in SO. Should I make another edit to the orig. question? –  Dinah Apr 21 '09 at 13:51

To answer the question literally. It is not always true that x == x

double zero = 0.0;
double a[] = { 0,0,0,0,0, zero/zero}; // NaN
cout << (a[5] == 5[a] ? "true" : "false") << endl;

prints

false
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11  
Actually a "nan" is not equal to itself: cout << (a[5] == a[5] ? "true" : "false") << endl; is false. –  TrueY Apr 23 '13 at 9:34

Nice question/answers.

Just want to point out that C pointers and arrays are not the same, although in this case the difference is not essential.

Consider the following declarations:

int a[10];
int* p = a;

In a.out, the symbol a is at an address that's the beginning of the array, and symbol p is at an address where a pointer is stored, and the value of the pointer at that memory location is the beginning of the array.

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2  
No, technically they are not the same. If you define some b as int*const and make it point to an array, it is still a pointer, meaning that in the symbol table, b refers to a memory location that stores an address, which in turn points to where the array is. –  PolyThinker Dec 22 '08 at 5:42
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Very good point. I remember having a very nasty bug when I defined a global symbol as char s[100] in one module, declare it as extern char *s; in another module. After linking it all together the program behaved very strangely. Because the module using the extern declaration was using the initial bytes of the array as a pointer to char. –  Giorgio May 2 '12 at 18:15
    
Originally, in C's grandparent BCPL, an array was a pointer. That is, what you got when you wrote (I have transliterated to C) int a[10] was a pointer called 'a', which pointed to enough store for 10 integers, elsewhere. Thus a+i and j+i had the same form: add the contents of a couple of memory locations. In fact, I think BCPL was typeless, so they were identical. And the sizeof-type scaling did not apply, since BCPL was purely word-oriented (on word-addressed machines also). –  dave May 3 '12 at 2:33
    
I think the best way to understand the difference is to compare int*p = a; to int b = 5; In the latter, "b" and "5" are both integers, but "b" is a variable, while "5" is a fixed value. Similarly, "p" & "a" are both addresses of a character, but "a" is a fixed value. –  James Curran Mar 12 '13 at 16:34

For pointers in C, we have

a[5] == *(a + 5)

and also

5[a] == *(5 + a)

Hence it is true that a[5] == 5[a].

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I just find out this ugly syntax could be "useful", or at least very fun to play with when you want to deal with an array of indexes which refer to positions into the same array. It can replace nested square brackets and make the code more readable !

int a[] = { 2 , 3 , 3 , 2 , 4 };
int s = sizeof a / sizeof *a;  //  s == 5

for(int i = 0 ; i < s ; ++i) {  

           cout << a[a[a[i]]] << endl;
           // ... is equivalent to ... 
           cout << i[a][a][a] << endl;  // but I prefer this one, it's easier to increase the level of indirection (without loop)

}

Of course, I'm quite sure that there is no use case for that in real code, but I found it interesting anyway :)

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Oh God!!! how can somebody say that prefers that notation!!! It hurts my eyes!!! –  Luis Colorado 2 days ago

Not an answer, but just some food for thought. If class is having overloaded index/subscript operator, the 0[x] will not work:

class Sub
{
public:
    int operator [](size_t nIndex)
    {
        return 0;
    }   
};

int main()
{
    Sub s;
    s[0];
    0[s]; // ERROR 
}

Since we dont have access to int class, this cannot be done:

class int
{
   int operator[](const Sub&);
};
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1  
class Sub { public: int operator[](size_t nIndex) const { return 0; } friend int operator[](size_t nIndex, const Sub& This) { return 0; } }; –  Ben Voigt Apr 5 '13 at 17:23
    
Have you actually tried compiling it? There are set of operators that cannot be implemented outside class (i.e. as non-static functions)! –  Ajay Apr 5 '13 at 21:10
    
oops, you're right. "operator[] shall be a non-static member function with exactly one parameter." I was familiar with that restriction on operator=, didn't think it applied to []. –  Ben Voigt Apr 5 '13 at 21:21
    
Of course, if you change the definition of [] operator, it would never be equivalent again... if a[b] is equal to *(a + b) and you change this, you'll have to overload also int::operator[](const Sub&); and int is not a class... –  Luis Colorado 2 days ago

It has very good explanation in A TUTORIAL ON POINTERS AND ARRAYS IN C by Ted Jensen


Ted Jensen explained it as:


In fact, this is true, i.e wherever one writes a[i] it can be replaced with *(a + i) without any problems. In fact, the compiler will create the same code in either case. Thus we see that pointer arithmetic is the same thing as array indexing. Either syntax produces the same result.

This is NOT saying that pointers and arrays are the same thing, they are not. We are only saying that to identify a given element of an array we have the choice of two syntaxes, one using array indexing and the other using pointer arithmetic, which yield identical results.

Now, looking at this last expression, part of it.. (a + i), is a simple addition using the + operator and the rules of C state that such an expression is commutative. That is (a + i) is identical to (i + a). Thus we could write *(i + a) just as easily as *(a + i).

But *(i + a) could have come from i[a] ! From all of this comes the curious truth that if:

char a[20];
writing
a[3] = 'x';
is the same as writing
3[a] = 'x';

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Only if you came 5 years earlier! –  chouaib Jul 18 at 2:05
    
@chouaib yes thats why I asked this question :) –  A.s. Bhullar Jul 18 at 9:03

In C arrays, arr[3] and 3[arr] are the same, and their equivalent pointer notations are *(arr + 3) to *(3 + arr). But on the contrary [arr]3 or [3]arr is not correct and will result into syntax error, as (arr + 3)* and (3 + arr)* are not valid expressions. The reason is dereference operator should be placed before the address yielded by the expression, not after the address.

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C'mon dude! it's been answered 5 years ago :) –  chouaib Jul 18 at 2:04

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