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bcachefs: Optimize eytzinger0_sort() with bottom-up heapsort
This optimization reduces the average number of comparisons required
from 2*n*log2(n) - 3*n + o(n) to n*log2(n) + 0.37*n + o(n). When n is
sufficiently large, it results in approximately 50% fewer comparisons.
Currently, eytzinger0_sort employs the textbook version of heapsort,
where during the heapify process, each level requires two comparisons
to determine the maximum among three elements. In contrast, the
bottom-up heapsort, during heapify, only compares two children at each
level until reaching a leaf node. Then, it backtracks from the leaf
node to find the correct position. Since heapify typically continues
until very close to the leaf node, the standard heapify requires about
2*log2(n) comparisons, while the bottom-up variant only needs log2(n)
comparisons.
The experimental data presented below is based on an array generated
by get_random_u32().
| N | comparisons(old) | comparisons(new) | time(old) | time(new) |
|-------|------------------|------------------|-----------|-----------|
| 10000 | 235381 | 136615 | 25545 us | 20366 us |
| 20000 | 510694 | 293425 | 31336 us | 18312 us |
| 30000 | 800384 | 457412 | 35042 us | 27386 us |
| 40000 | 1101617 | 626831 | 48779 us | 38253 us |
| 50000 | 1409762 | 799637 | 62238 us | 46950 us |
| 60000 | 1721191 | 974521 | 75588 us | 58367 us |
| 70000 | 2038536 | 1152171 | 90823 us | 68778 us |
| 80000 | 2362958 | 1333472 | 104165 us | 78625 us |
| 90000 | 2690900 | 1516065 | 116111 us | 89573 us |
| 100000| 3019413 | 1699879
| 133638 us | 100998 us |
Refs:
BOTTOM-UP-HEAPSORT, a new variant of HEAPSORT beating, on an average,
QUICKSORT (if n is not very small)
Ingo Wegener
Theoretical Computer Science, 118(1); Pages 81-98, 13 September 1993
https://doi.org/10.1016/0304-3975(93)90364-Y
Signed-off-by: Kuan-Wei Chiu <visitorckw@gmail.com>
Signed-off-by: Kent Overstreet <kent.overstreet@linux.dev>
This commit is contained in:
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@ -171,7 +171,7 @@ void eytzinger0_sort_r(void *base, size_t n, size_t size,
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swap_r_func_t swap_func,
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const void *priv)
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{
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int i, c, r;
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int i, j, k;
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/* called from 'sort' without swap function, let's pick the default */
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if (swap_func == SWAP_WRAPPER && !((struct wrapper *)priv)->swap_func)
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@ -188,17 +188,22 @@ void eytzinger0_sort_r(void *base, size_t n, size_t size,
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/* heapify */
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for (i = n / 2 - 1; i >= 0; --i) {
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for (r = i; r * 2 + 1 < n; r = c) {
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c = r * 2 + 1;
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/* Find the sift-down path all the way to the leaves. */
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for (j = i; k = j * 2 + 1, k + 1 < n;)
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j = eytzinger0_do_cmp(base, n, size, cmp_func, priv, k, k + 1) > 0 ? k : k + 1;
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if (c + 1 < n &&
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eytzinger0_do_cmp(base, n, size, cmp_func, priv, c, c + 1) < 0)
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c++;
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/* Special case for the last leaf with no sibling. */
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if (j * 2 + 2 == n)
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j = j * 2 + 1;
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if (eytzinger0_do_cmp(base, n, size, cmp_func, priv, r, c) >= 0)
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break;
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/* Backtrack to the correct location. */
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while (j != i && eytzinger0_do_cmp(base, n, size, cmp_func, priv, i, j) >= 0)
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j = (j - 1) / 2;
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eytzinger0_do_swap(base, n, size, swap_func, priv, r, c);
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/* Shift the element into its correct place. */
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for (k = j; j != i;) {
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j = (j - 1) / 2;
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eytzinger0_do_swap(base, n, size, swap_func, priv, j, k);
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}
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}
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@ -206,17 +211,22 @@ void eytzinger0_sort_r(void *base, size_t n, size_t size,
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for (i = n - 1; i > 0; --i) {
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eytzinger0_do_swap(base, n, size, swap_func, priv, 0, i);
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for (r = 0; r * 2 + 1 < i; r = c) {
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c = r * 2 + 1;
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/* Find the sift-down path all the way to the leaves. */
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for (j = 0; k = j * 2 + 1, k + 1 < i;)
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j = eytzinger0_do_cmp(base, n, size, cmp_func, priv, k, k + 1) > 0 ? k : k + 1;
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if (c + 1 < i &&
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eytzinger0_do_cmp(base, n, size, cmp_func, priv, c, c + 1) < 0)
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c++;
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/* Special case for the last leaf with no sibling. */
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if (j * 2 + 2 == i)
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j = j * 2 + 1;
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if (eytzinger0_do_cmp(base, n, size, cmp_func, priv, r, c) >= 0)
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break;
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/* Backtrack to the correct location. */
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while (j && eytzinger0_do_cmp(base, n, size, cmp_func, priv, 0, j) >= 0)
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j = (j - 1) / 2;
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eytzinger0_do_swap(base, n, size, swap_func, priv, r, c);
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/* Shift the element into its correct place. */
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for (k = j; j;) {
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j = (j - 1) / 2;
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eytzinger0_do_swap(base, n, size, swap_func, priv, j, k);
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}
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}
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}
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@ -232,3 +242,64 @@ void eytzinger0_sort(void *base, size_t n, size_t size,
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return eytzinger0_sort_r(base, n, size, _CMP_WRAPPER, SWAP_WRAPPER, &w);
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}
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#if 0
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#include <linux/slab.h>
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#include <linux/random.h>
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#include <linux/ktime.h>
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static u64 cmp_count;
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static int mycmp(const void *a, const void *b)
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{
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u32 _a = *(u32 *)a;
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u32 _b = *(u32 *)b;
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cmp_count++;
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if (_a < _b)
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return -1;
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else if (_a > _b)
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return 1;
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else
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return 0;
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}
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static int test(void)
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{
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size_t N, i;
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ktime_t start, end;
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s64 delta;
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u32 *arr;
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for (N = 10000; N <= 100000; N += 10000) {
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arr = kmalloc_array(N, sizeof(u32), GFP_KERNEL);
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cmp_count = 0;
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for (i = 0; i < N; i++)
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arr[i] = get_random_u32();
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start = ktime_get();
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eytzinger0_sort(arr, N, sizeof(u32), mycmp, NULL);
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end = ktime_get();
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delta = ktime_us_delta(end, start);
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printk(KERN_INFO "time: %lld\n", delta);
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printk(KERN_INFO "comparisons: %lld\n", cmp_count);
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u32 prev = 0;
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eytzinger0_for_each(i, N) {
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if (prev > arr[i])
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goto err;
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prev = arr[i];
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}
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kfree(arr);
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}
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return 0;
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err:
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kfree(arr);
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return -1;
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}
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#endif
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