Portable efficient alternative to PDEP without using BMI2?

妖精的绣舞 提交于 2019-11-28 01:59:13

The second part of the question, about the special case of a 1-bit deposit, requires two steps. In the first step, we need to determine the bit index r of the single 1-bit in val, with a suitable response in case val is zero. This can easily be accomplished via the POSIX function ffs, or if r is known by other means, as alluded to by the asker in comments. In the second step we need to identify bit index i of the r-th 1-bit in mask, if it exists. We can then deposit the r-th bit of val at bit i.

One way of finding the index of the r-th 1-bit in mask is to tally the 1-bits using a classical population count algorithm based on binary partitioning, and record all of the intermediate group-wise bit counts. We then perform a binary search on the recorded bit-count data to identify the position of the desired bit.

The following C-code demonstrates this using 64-bit data. Whether this is actually faster than the iterative method will very much depend on typical values of mask and val.

#include <stdint.h>

/* Find the index of the n-th 1-bit in mask, n >= 0
   The index of the least significant bit is 0 
   Return -1 if there is no such bit
*/
int find_nth_set_bit (uint64_t mask, int n)
{
    int t, i = n, r = 0;
    const uint64_t m1 = 0x5555555555555555ULL; // even bits
    const uint64_t m2 = 0x3333333333333333ULL; // even 2-bit groups
    const uint64_t m4 = 0x0f0f0f0f0f0f0f0fULL; // even nibbles
    const uint64_t m8 = 0x00ff00ff00ff00ffULL; // even bytes
    uint64_t c1 = mask;
    uint64_t c2 = c1 - ((c1 >> 1) & m1);
    uint64_t c4 = ((c2 >> 2) & m2) + (c2 & m2);
    uint64_t c8 = ((c4 >> 4) + c4) & m4;
    uint64_t c16 = ((c8 >> 8) + c8) & m8;
    uint64_t c32 = (c16 >> 16) + c16;
    int c64 = (int)(((c32 >> 32) + c32) & 0x7f);
    t = (c32    ) & 0x3f; if (i >= t) { r += 32; i -= t; }
    t = (c16>> r) & 0x1f; if (i >= t) { r += 16; i -= t; }
    t = (c8 >> r) & 0x0f; if (i >= t) { r +=  8; i -= t; }
    t = (c4 >> r) & 0x07; if (i >= t) { r +=  4; i -= t; }
    t = (c2 >> r) & 0x03; if (i >= t) { r +=  2; i -= t; }
    t = (c1 >> r) & 0x01; if (i >= t) { r +=  1;         }
    if (n >= c64) r = -1;
    return r; 
}

/* val is either zero or has a single 1-bit.
   Return -1 if val is zero, otherwise the index of the 1-bit
   The index of the least significant bit is 0
*/
int find_bit_index (uint64_t val)
{
    return ffsll (val) - 1;
}

uint64_t deposit_single_bit (uint64_t val, uint64_t mask)
{
    uint64_t res = (uint64_t)0;
    int r = find_bit_index (val);
    if (r >= 0) {
        int i = find_nth_set_bit (mask, r);
        if (i >= 0) res = (uint64_t)1 << i;
    } 
    return res;
}
易学教程内所有资源均来自网络或用户发布的内容,如有违反法律规定的内容欢迎反馈
该文章没有解决你所遇到的问题?点击提问,说说你的问题,让更多的人一起探讨吧!