_rotl8, _rotl16
Microsoft Specific
Rotate the input values to the left to the most significant bit (MSB) by a specified number of bit positions.
Syntax
unsigned char _rotl8(
unsigned char value,
unsigned char shift
);
unsigned short _rotl16(
unsigned short value,
unsigned char shift
);
Parameters
value
[in] The value to rotate.
shift
[in] The number of bits to rotate.
Return value
The rotated value.
Requirements
Intrinsic | Architecture |
---|---|
_rotl8 |
x86, ARM, x64, ARM64 |
_rotl16 |
x86, ARM, x64, ARM64 |
Header file <intrin.h>
Remarks
Unlike a left-shift operation, when executing a left rotation, the high-order bits that fall off the high end are moved into the least significant bit positions.
Example
// rotl.cpp
#include <stdio.h>
#include <intrin.h>
#pragma intrinsic(_rotl8, _rotl16)
int main()
{
unsigned char c = 'A', c1, c2;
for (int i = 0; i < 8; i++)
{
printf_s("Rotating 0x%x left by %d bits gives 0x%x\n", c,
i, _rotl8(c, i));
}
unsigned short s = 0x12;
int nBit = 10;
printf_s("Rotating unsigned short 0x%x left by %d bits gives 0x%x\n",
s, nBit, _rotl16(s, nBit));
}
Rotating 0x41 left by 0 bits gives 0x41
Rotating 0x41 left by 1 bits gives 0x82
Rotating 0x41 left by 2 bits gives 0x5
Rotating 0x41 left by 3 bits gives 0xa
Rotating 0x41 left by 4 bits gives 0x14
Rotating 0x41 left by 5 bits gives 0x28
Rotating 0x41 left by 6 bits gives 0x50
Rotating 0x41 left by 7 bits gives 0xa0
Rotating unsigned short 0x12 left by 10 bits gives 0x4800
END Microsoft Specific
See also
Phản hồi
https://aka.ms/ContentUserFeedback.
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