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If this function Func1 is inlined,

inline int Func1 (int* a)
{
    return *a + 1;
}

int main ()
{
    int v = GetIntFromUserInput();   // Assume input value is non-determinable.
    return Func1(&v);
}

Can I expect a smart compiler to eliminate the pointer operations? (&a and *a) As I guess, the function will be transformed into something like this,

int main ()
{
    int v = GetIntFromUserInput();   // Assume input value is non-determinable.
    int* a = &v;
    return *a + 1;
}

and finally,

int main ()
{
    int v = GetIntFromUserInput();   // Assume input value is non-determinable.
    return v + 1;
}

Pointer operations look easily being eliminated. But I heard that pointer operation is something special and cannot be optimized.

share|improve this question
    
Did you look at the output from your compiler? Your question seems to be an exact duplicate of stackoverflow.com/questions/2021141/…. –  Carl Norum Mar 12 '11 at 6:49
    
@Carl Norum: While the question itself might be similar the answers here seem very very useful. –  the_drow Mar 12 '11 at 8:04
1  
Sorry, but to me, the time spent wondering if this would work would be more than the time to write #define Func1(a)(*(a)+1) which you can be sure would be optimized. –  Mike Dunlavey Mar 12 '11 at 14:52
1  
@Mike I did thought about it, however macros are not visible to compiler and debugger, it's too hard to debug. And inline functions can be not inlined easily by compiler options. So I have decided to evade using macros to replace functions which are important semantically. (macros only for textual replacement) However I'm feeling your opinion is pretty attractive and considerable. –  Eonil Mar 14 '11 at 2:49
    
For a macro this size, seems to me it's a non-issue. OTOH sometimes I've written some pretty big multi-line macros (which save a lot of code and can't be made into functions). Then, if I need to debug, I instantiate the macro by hand and step through it, fix it, and put the macro back. I know that's dirty, but nobody said software is always clean. –  Mike Dunlavey Mar 14 '11 at 21:31

2 Answers 2

up vote 4 down vote accepted

It is reasonable that it might occur. For example, gcc -O3 does so:

.globl main
        .type   main, @function
main:
        pushl   %ebp
        movl    %esp, %ebp
        andl    $-16, %esp
        call    GetIntFromUserInput
        movl    %ebp, %esp
        popl    %ebp
        addl    $1, %eax
        ret

Notice that it takes the return value from the function, adds one, and returns.

Interestingly, it also compiled a Func1, probably since inline seems like it should have the meaning of static, but an external function (like GetIntFromUserInput) ought to be able to call it. If I add static (and leave inline), it does remove the function's code.

share|improve this answer
    
Thanks. I checked result with otool. Can I know the what your tool is? Print result looks differently a little. –  Eonil Mar 12 '11 at 7:36
    
I used gcc -S -O3 t.c and examined t.s, the generated assembly language. -S requests compilation to assembly language only—it does not assemble or link. This was from gcc (GCC) 4.4.4 20100630 (Red Hat 4.4.4-10) targeting x86. –  wallyk Mar 12 '11 at 21:19
    
Thanks for info! –  Eonil Mar 13 '11 at 1:56
    
Note that removing inline makes no difference in the code that gcc produces. inline is ignored and the compiler produces the best code it can according to constraints imposed by visibility. –  wallyk Mar 13 '11 at 19:46

Yes the compiler, as said by Wallyk, is able to remove useless operations in this case.

However you must remember that when you specify a function signature something is lost in the translation from your problem domain to C. Consider the following function:

void transform(const double *xyz, // Source point
               double *txyz,      // Transformed points
               const double *m,   // 4x3 transformation matrix
               int n)             // Number of points to transform
{
    for (int i=0; i<n; i++)
    {
        txyz[0] = xyz[0]*m[0] + xyz[1]*m[3] + xyz[2]*m[6] + m[9];
        txyz[1] = xyz[0]*m[1] + xyz[1]*m[4] + xyz[2]*m[7] + m[10];
        txyz[2] = xyz[0]*m[2] + xyz[1]*m[5] + xyz[2]*m[8] + m[11];
        txyz += 3; xyz += 3;
    }
}

I think that the intent is clear, however the compiler must be paranoid and consider that the generated code must behave exactly as described by the C semantic even in cases that are of course not part of the original problem of transforming an array of points like:

  • txyz and xyz are point to the same memory address, or may be they are pointing to adjacent doubles in memory
  • m is pointing inside the txyz area

This means that for the above function the C compiler is forced to assume that after each write to txyz any of xyz or m could change and so those values cannot be loaded in free order. The resulting code consequently will not be able to take advantage of parallel execution for example of the computations of the tree coordinates even if the CPU would allow to do so.

This case of aliasing was so common that C99 introduced a specific keyword to be able to tell the compiler that nothing that strange was intended. Putting the restict keyword in the declaration of txyz and mat reassures the compiler that the pointed-to memory is not accessible using other ways and the compiler is then allowed to generate better code.

However this "paranoic" behavior is still necessary for all operations to ensure correctness and so for example if you write code like

 char *s = malloc(...);
 char *t = malloc(...);
 ... use s and t ...

the compiler has no way to know that the two memory areas will be non-overlapping or, to say it better, there is no way to define a signature in the C language to express the concept that returned values from malloc are "non overlapping". This means that the paranoid compiler will think in the subsequent code any write to something pointed by s will possibily overwrite data pointed by t (even when you're not getting past the size passed to malloc I mean ;-) ).

In your example case even a paranoid compiler is allowed to assume that

  1. no one will know the address of a local variable unless getting it as a parameter
  2. no unknown external code is executed between the reading and computation of addition

if both those points are lost then the compiler must think to strange possibilities; for example

int a = malloc(sizeof(int));
*a = 1;
printf("Hello, world.\n");
// Here *a could have been changed

This crazy thought is necessary because malloc knows the address of a; so it could have passed this information to printf that after printing the string could use that address to change the content of the location. This seems clearly absurd and may be the library function declaration could contain some special unportable trick, but it's necessary for correctness in general (imagine malloc and printf being two user defined functions instead of library ones).

What does all this blurb mean? That yes, in your case the compiler is allowed to optimize, but it's very easy to remove this possibility; for example

inline int Func1 (int* a)
{
    printf("pointed value is %i\n", *a);
    return *a + 1;
}

int main ()
{
    int v = GetIntFromUserInput();   // Assume input value is non-determinable.
    printf("Address of v is %p\n", &v);
    return Func1(&v);
}

is a simple variation of your code, but in this case the compiler cannot avoid assuming that the second printf call could have changed the pointed memory even if it's passed just the pointed value and not the address (because the first call to printf was passed the address and so the compiler must assume that potentially that function could have stored the address to use it later to alter the variable).

A very common misconception in C and C++ is that liberal use of the keyword const with pointers or (in C++) references will help the optimizer generating better code. This is completely false:

  1. In the declaration const char *s the nothing is said about that the pointed character is going to be constant; it's simply said that it is an error to change the pointed character using that pointer. In other words const in this case simply means that the pointer is "readonly" but doesn't tell that, for example, other pointers could be used to changed the very same memory pointed to by s.
  2. It is legal in C (and C++) to "cast away" const-ness from a pointer (or reference) to constant. So the paranoid compiler must assume that even a function has been only handed a const int * the function could store that pointer and later can use it to change the memory pointed to.

The const keyword with pointers (and C++ references) is only meant as an aid for the programmer to avoid unintentional writing use of a pointer that was thought as being used only for reading. Once this check is performed then this const keyword is simply forgotten by the optimizer because it has no implications in the semantic of the language.

Sometimes you may find another silly use of the const keyword with parameters that tells that the value of the parameter cannot be changed; for example void foo(const int x). This kind of use has no real philosophical meaning for the signature and simply puts some little annoyance on the implementation of the called function: a parameter is a copy of a value and caller shouldn't care if the called function is going to change that copy or not... the called function can still make a copy of the parameter and change that copy so nothing is gained anyway.

To recap... when the compiler sees

void foo(const int * const x);

must still assume that foo will potentially store away a copy of the passed pointer and that can use this copy to change the memory pointed to by x immediately or later when you call any other unknown function.

This level of paranoia is required because of how the language semantic is defined.

It is very important to understand this "aliasing" problem (there can be different ways to alter the same writable area of memory), especially with C++ where there is a common anti-pattern of passing around const references instead of values even when logically the function should accept a value. See this answer if you are also using C++.

All these are the reasons for which when dealing with pointers or references the optimizer has much less freedom than with local copies.

share|improve this answer
    
Wow! Thanks for details. It's far more complicated than I thought... How do you think about if the function printf was accept single argument int const * const a? –  Eonil Mar 13 '11 at 2:30
1  
@Eonil: It makes no difference. I extended the answer with a section discussing const-ness of pointers. –  6502 Mar 13 '11 at 7:48
    
Thanks for answer. I stopped depending on optimization assumption :) –  Eonil Mar 13 '11 at 8:07
    
The gcc malloc attribute allow the compiler to assume that malloc's returned memory is not aliased by printf, another malloc, or anything else. –  Edward Brey Mar 6 '12 at 17:40
    
@EdwardBrey: That's why I wrote <<"the compiler has no way to know that the two memory areas will be non-overlapping or, to say it better, there is no way to define a signature in the C language to express the concept that returned values from malloc are "non overlapping">> and why I also added that compilers can use unportable tricks to do that <<...and may be the library function declaration could contain some special unportable trick>>. Things like that or the type checking done at compile time on printf format strings are very useful, but non-standard. –  6502 Mar 6 '12 at 18:46

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