Likely and unlikely
这是C++中用于进行branch prediction,关于branch prediction,参见工程hardware的CPU\Execution-of-instruction\Speculative\Branch-predictor
章节。
cppreference C++ attribute: likely, unlikely (since C++20)
int f(int i)
{
if (i < 0) [[unlikely]] {
return 0;
}
return 1;
}
stackoverflow How do the likely/unlikely macros in the Linux kernel work and what is their benefit?
I've been digging through some parts of the Linux kernel, and found calls like this:
if (unlikely(fd < 0))
{
/* Do something */
}
or
if (likely(!err))
{
/* Do something */
}
I've found the definition of them:
#define likely(x) __builtin_expect((x),1)
#define unlikely(x) __builtin_expect((x),0)
I know that they are for optimization, but how do they work? And how much performance/size decrease can be expected from using them? And is it worth the hassle (and losing the portability probably) at least in bottleneck code (in userspace, of course).
COMMENTS:
1 The paper What every Programmer should know about Memory (p. 57) contains an in-depth explanation. – Torsten Marek Sep 20 '08 at 23:15
A
They are hint to the compiler to emit instructions that will cause branch prediction to favour the "likely" side of a jump instruction. This can be a big win, if the prediction is correct it means that the jump instruction is basically free and will take zero cycles. On the other hand if the prediction is wrong, then it means the processor pipeline needs to be flushed and it can cost several cycles. So long as the prediction is correct most of the time, this will tend to be good for performance.
Like all such performance optimisations you should only do it after extensive profiling to ensure the code really is in a bottleneck, and probably given the micro nature, that it is being run in a tight loop. Generally the Linux developers are pretty experienced so I would imagine they would have done that. They don't really care too much about portability as they only target gcc, and they have a very close idea of the assembly they want it to generate.
NOTE: compiler的optimization原则
A
Let's decompile to see what GCC 4.8 does with it
Without __builtin_expect
#include "stdio.h"
#include "time.h"
int main() {
/* Use time to prevent it from being optimized away. */
int i = !time(NULL);
if (i)
printf("%d\n", i);
puts("a");
return 0;
}
Compile and decompile with GCC 4.8.2 x86_64 Linux:
gcc -c -O3 -std=gnu11 main.c
objdump -dr main.o
Output:
0000000000000000 <main>:
0: 48 83 ec 08 sub $0x8,%rsp
4: 31 ff xor %edi,%edi
6: e8 00 00 00 00 callq b <main+0xb>
7: R_X86_64_PC32 time-0x4
b: 48 85 c0 test %rax,%rax
e: 75 14 jne 24 <main+0x24>
10: ba 01 00 00 00 mov $0x1,%edx
15: be 00 00 00 00 mov $0x0,%esi
16: R_X86_64_32 .rodata.str1.1
1a: bf 01 00 00 00 mov $0x1,%edi
1f: e8 00 00 00 00 callq 24 <main+0x24>
20: R_X86_64_PC32 __printf_chk-0x4
24: bf 00 00 00 00 mov $0x0,%edi
25: R_X86_64_32 .rodata.str1.1+0x4
29: e8 00 00 00 00 callq 2e <main+0x2e>
2a: R_X86_64_PC32 puts-0x4
2e: 31 c0 xor %eax,%eax
30: 48 83 c4 08 add $0x8,%rsp
34: c3 retq
The instruction order in memory was unchanged: first the printf
and then puts
and the retq
return.
With __builtin_expect
Now replace if (i)
with:
if (__builtin_expect(i, 0))
and we get:
0000000000000000 <main>:
0: 48 83 ec 08 sub $0x8,%rsp
4: 31 ff xor %edi,%edi
6: e8 00 00 00 00 callq b <main+0xb>
7: R_X86_64_PC32 time-0x4
b: 48 85 c0 test %rax,%rax
e: 74 11 je 21 <main+0x21>
10: bf 00 00 00 00 mov $0x0,%edi
11: R_X86_64_32 .rodata.str1.1+0x4
15: e8 00 00 00 00 callq 1a <main+0x1a>
16: R_X86_64_PC32 puts-0x4
1a: 31 c0 xor %eax,%eax
1c: 48 83 c4 08 add $0x8,%rsp
20: c3 retq
21: ba 01 00 00 00 mov $0x1,%edx
26: be 00 00 00 00 mov $0x0,%esi
27: R_X86_64_32 .rodata.str1.1
2b: bf 01 00 00 00 mov $0x1,%edi
30: e8 00 00 00 00 callq 35 <main+0x35>
31: R_X86_64_PC32 __printf_chk-0x4
35: eb d9 jmp 10 <main+0x10>
The printf
(compiled to __printf_chk
) was moved to the very end of the function, after puts
and the return to improve branch prediction as mentioned by other answers.
So it is basically the same as:
int main() {
int i = !time(NULL);
if (i)
goto printf;
puts:
puts("a");
return 0;
printf:
printf("%d\n", i);
goto puts;
}
This optimization was not done with -O0
.
But good luck on writing an example that runs faster with __builtin_expect
than without, CPUs are really smart these days. My naive attempts are here.
C++20 [[likely]]
and [[unlikely]]
C++20 has standardized those C++ built-ins: How to use C++20's likely/unlikely attribute in if-else statement They will likely (a pun!) do the same thing.
cnblogs C/C++ 分支预测(likely unlikely)
TODO
stackoverflow What is the advantage of GCC's __builtin_expect in if else statements?