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For reading the 31th bit(MSB) of a 32bit integer one method is as below

int main(int argc, char *argv[]) {
    int b =0x80005000;
    if(b&(1<<31))
        printf("bit is one\n");
    else
        printf("bit is zero\n");
return 0;
}

My question is, is there any other optimum method to do this with less instruction cycles?

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  • Just predefine masks that you need.
    – Long Smith
    Jan 28, 2017 at 7:01
  • @LongSmith - assuming that the compiler isn't too stupid, the mask is predefined Jan 28, 2017 at 7:02
  • Have you compiled the code with maximum optimization and looked at the generated code? Jan 28, 2017 at 7:05
  • @4386427 compiler optimizes very many of things, however it is not a reason for writing inefficient code and relying only on the "smartness" of your compiler.
    – Long Smith
    Jan 28, 2017 at 7:07

1 Answer 1

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In two's complement representation, the MSB is set when the number is negative and clear when the number is non-negative, so this would also work.

int b = 0x80005000;
if (b < 0)
    printf("bit is one\n");
else
    printf("bit is zero\n");

In fact, for the if(b&(1<<31)) code you wrote, GCC does produce assembly that compares to 0 and checks the sign - identical to the output that GCC generates on this code.

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