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std::rotl

From cppreference.com
< cpp‎ | numeric
 
 
 
Defined in header <bit>
template< class T >
[[nodiscard]] constexpr T rotl( T x, int s ) noexcept;
(since C++20)

Computes the result of bitwise left-rotating the value of x by s positions. This operation is also known as a left circular shift.

Formally, let N be std::numeric_limits<T>::digits, r be s % N.

  • If r is 0, returns x;
  • if r is positive, returns (x << r) | (x >> (N - r));
  • if r is negative, returns std::rotr(x, -r).

This overload participates in overload resolution only if T is an unsigned integer type (that is, unsigned char, unsigned short, unsigned int, unsigned long, unsigned long long, or an extended unsigned integer type).

Contents

[edit] Parameters

x - value of unsigned integer type
s - number of positions to shift

[edit] Return value

The result of bitwise left-rotating x by s positions.

[edit] Notes

Feature-test macro Value Std Feature
__cpp_lib_bitops 201907L (C++20) Bit operations

[edit] Example

#include <bit>
#include <bitset>
#include <cstdint>
#include <iostream>
 
int main()
{
    const std::uint8_t i = 0b00011101;
    std::cout << "i          = " << std::bitset<8>(i) << '\n';
    std::cout << "rotl(i,0)  = " << std::bitset<8>(std::rotl(i, 0)) << '\n';
    std::cout << "rotl(i,1)  = " << std::bitset<8>(std::rotl(i, 1)) << '\n';
    std::cout << "rotl(i,4)  = " << std::bitset<8>(std::rotl(i, 4)) << '\n';
    std::cout << "rotl(i,9)  = " << std::bitset<8>(std::rotl(i, 9)) << '\n';
    std::cout << "rotl(i,-1) = " << std::bitset<8>(std::rotl(i, -1)) << '\n';
}

Output:

i          = 00011101
rotl(i,0)  = 00011101
rotl(i,1)  = 00111010
rotl(i,4)  = 11010001
rotl(i,9)  = 00111010
rotl(i,-1) = 10001110

[edit] See also

(C++20)
computes the result of bitwise right-rotation
(function template) [edit]
performs binary shift left and shift right
(public member function of std::bitset<N>) [edit]