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is memset more efficient than for loop. so if i have

char x[500];
memset(x,0,sizeof(x));

or

char x[500];
for(int i = 0 ; i < 500 ; i ++) x[i] = 0;

which one is more efficient and why? is there any special instruction in hardware to do block level initialization.

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10  
Yes. No. Maybe. It depends. The only way to get a useful answer is to analyze and profile it in your environment. Which one is faster on my compiler, in my program, on my computer, tells you nothing useful. –  Robᵩ Sep 9 '11 at 21:34
1  
Compile both and benchmark them. The answer depends on what kind of computer you're using, what compiler you use, what standard library you use, the size of the block you're trying to change, the phase of the moon... –  Chris Lutz Sep 9 '11 at 21:34
2  
Why bother investigating? Unless there is data to show otherwise (you are failing your perf goals and investigation points to this section of code), this piece of code is likely not a hotspot, and you should just go for as simple, readable, and maintainable code possible. –  Michael Sep 9 '11 at 21:54
3  
If you have a compiler that doesn't substitute that loop with memset() then you should find another compiler. –  Hans Passant Sep 9 '11 at 22:00
2  
@Chris: Ummmm.... they should probably learn then. I guess I'm a 27 year old dinosaur, but I have a problem with so-called "engineers" who can't read basic assembly... I don't mean to imply that one shouldn't use a profiler, but for such a trivial comparison it should be unnecessary. –  Ed S. Sep 9 '11 at 22:07

7 Answers 7

up vote 11 down vote accepted

Most certainly, memset will be much faster than that loop. Note how you treat one character at a time, but those functions are so optimized that set several bytes at a time, even using, when available, MMX and SSE instructions.

I think the paradigmatic example of these optimizations, that go unnoticed usually, is the GNU C library strlen function. One would think that it has at least O(n) performance, but it actually has O(n/4) or O(n/8) depending on the architecture (yes, I know, in big O() will be the same, but you actually get an eighth of the time). How? Tricky, but nicely: strlen.

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1  
Any optimizing compiler will replace the for loop with an optimal sequence (which may be a call to memset). –  Stephen Canon Sep 9 '11 at 21:42
    
Also, for it to be "much faster" is not guaranteed, even if the compiler emits sub-optimal code for the loop. 500 is not really that high of a number, and if a soft or hard page fault is incurred, that will greatly outweigh the cost of the loop itself. –  Michael Sep 9 '11 at 21:45
1  
@Stephen Canon: Heh. I was compiling a C library with clang/LLVM and it replaced the library's memset for loop with a call to memset. Oops! Deep recursion. –  Richard Pennington Sep 9 '11 at 21:51
1  
@Diego it's not a question of 500/8 assigns being slower or faster than 500 assigns to 0. Micro-benchmarks like this are rarely useful due to other effects in the system. On a modern processor, the difference between only the comparisons will probably be on the order of 62 cycles versus 500 cycles. What I'm suggesting is if you incur a hard page fault on the order of 10 million cycles while running the code, the 438 cycles you saved are just noise. –  Michael Sep 9 '11 at 22:00
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@Richard Pennington: -fno-builtin-memset. –  Stephen Canon Sep 9 '11 at 22:30

Well, why don't we take a look at the generated assembly code, full optimization under VS 2010.

char x[500];
char y[500];
int i;      

memset(x, 0, sizeof(x) );   
  003A1014  push        1F4h  
  003A1019  lea         eax,[ebp-1F8h]  
  003A101F  push        0  
  003A1021  push        eax  
  003A1022  call        memset (3A1844h)  

And your loop...

char x[500];
char y[500];
int i;    

for( i = 0; i < 500; ++i )
{
    x[i] = 0;

      00E81014  push        1F4h  
      00E81019  lea         eax,[ebp-1F8h]  
      00E8101F  push        0  
      00E81021  push        eax  
      00E81022  call        memset (0E81844h)  

      /* note that this is *replacing* the loop, 
         not being called once for each iteration. */
}

So, under this compiler, the generated code is exactly the same. memset is fast, and the compiler is smart enough to know that you are doing the same thing as calling memset once anyway, so it does it for you.

If the compiler actually left the loop as-is then it would likely be slower as you can set more than one byte size block at a time (i.e., you could unroll your loop a bit at a minimum. You can assume that memset will be at least as fast as a naive implementation such as the loop. Try it under a debug build and you will notice that the loop is not replaced.

That said, it depends on what the compiler does for you. Looking at the disassembly is always a good way to know exactly what is going on.

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Interesting, my version did not result in the loop being converted to memset, but that is probably because for my test, the loop operated on a global (otherwise the entire loop was removed as being unnecessary.) –  Michael Sep 9 '11 at 21:53
    
@Michael: I added a couple of calls to printf using x and y to ensure that they weren't completely optimized away as they are unused. It is of course compiler and platform dependent to some degree, but any half way decent optimizing compiler should get rid of the loop with optimizations turned on. –  Ed S. Sep 9 '11 at 22:06

It really depends on the compiler and library. For older compilers or simple compilers, memset may be implemented in a library and would not perform better than a custom loop.

For nearly all compilers that are worth using, memset is an intrinsic function and the compiler will generate optimized, inline code for it.

Others have suggested profiling and comparing, but I wouldn't bother. Just use memset. Code is simple and easy to understand. Don't worry about it until your benchmarks tell you this part of code is a performance hotspot.

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The answer is 'it depends'. memset MAY be more efficient, or it may internally use a for loop. I can't think of a case where memset will be less efficient. In this case, it may turn into a more efficient for loop: your loop iterates 500 times setting a bytes worth of the array to 0 every time. On a 64 bit machine, you could loop through, setting 8 bytes (a long long) at a time, which would be almost 8 times quicker, and just dealing with the remaining 4 bytes (500%8) at the end.

EDIT:

in fact, this is what memset does in glibc:

http://repo.or.cz/w/glibc.git/blob/HEAD:/string/memset.c

As Michael pointed out, in certain cases (where the array length is known at compile time), the C compiler can inline memset, getting rid of the overhead of the function call. Glibc also has assembly optimized versions of memset for most major platforms, like amd64:

http://repo.or.cz/w/glibc.git/blob/HEAD:/sysdeps/x86_64/memset.S

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I can think of a situation where memset will be less efficient: a compiler that can't inline (well). –  nightcracker Sep 9 '11 at 21:53
    
I imagine if both the second two arguments were known at compile time most humans would be hard pressed to equal the compiler generated code. –  Chris Lutz Sep 9 '11 at 21:54

Agree with above. It depends. But, for sure memset is faster or equal to the for-loop. If you are uncertain of your environment or too lazy to test, take the safe route and go with memset.

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Good compilers will recognize the for loop and replace it with either an optimal inline sequence or a call to memset. They will also replace memset with an optimal inline sequence when the buffer size is small.

In practice, with an optimizing compiler the generated code (and therefore performance) will be identical.

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memset() can be bit of a "code smell", because it can be prone to buffer overflows, parameter reversals and has the unfortunate ability of only clearing 'byte-wise'. However it's a safe bet that it will be 'fastest' in all but extreme cases.

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