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145 lines
4 KiB
C++
145 lines
4 KiB
C++
/*
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Cauchy Prime Field Erasure Coding
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Copyright 2024 Ahmet Inan <inan@aicodix.de>
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*/
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#pragma once
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namespace CODE {
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template <typename PF, typename IO, int MAX_LEN>
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struct CauchyPrimeFieldErasureCoding
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{
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static_assert(MAX_LEN < int(PF::P-1), "Block length must be smaller than largest field value");
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PF temp[MAX_LEN];
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typedef unsigned used_word;
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static constexpr int used_width = 8 * sizeof(used_word);
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static constexpr int used_length = (PF::P + used_width - 1) / used_width;
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used_word used_values[used_length];
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PF row_num, row_den;
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// $a_{ij} = \frac{1}{x_i + y_j}$
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PF cauchy_matrix(int i, int j)
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{
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PF row(i), col(j);
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return rcp(row + col);
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}
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// $b_{ij} = \frac{\prod_{k=1}^{n}{(x_j + y_k)(x_k + y_i)}}{(x_j + y_i)\prod_{k \ne j}^{n}{(x_j - x_k)}\prod_{k \ne i}^{n}{(y_i - y_k)}}$
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PF inverse_cauchy_matrix(const IO *rows, int i, int j, int n)
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{
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#if 0
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PF row_j(rows[j]), col_i(i);
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PF prod_xy(1), prod_x(1), prod_y(1);
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for (int k = 0; k < n; k++) {
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PF row_k(rows[k]), col_k(k);
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prod_xy *= (row_j + col_k) * (row_k + col_i);
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if (k != j)
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prod_x *= (row_j - row_k);
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if (k != i)
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prod_y *= (col_i - col_k);
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}
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return prod_xy / ((row_j + col_i) * prod_x * prod_y);
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#else
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PF row_j(rows[j]), col_i(i);
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if (j == 0) {
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PF num(1), den(1);
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for (int k = 0, r = 2; k < n; k++, --r) {
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PF row_k(rows[k]), col_k(k);
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num = mul(num, add(row_k, col_i));
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if (k != i)
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den = mul(den, sub(col_i, col_k));
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if (!r) {
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r = 3;
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num = reduce(num);
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den = reduce(den);
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}
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}
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row_num = reduce(num);
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row_den = reduce(den);
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}
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PF num(row_num), den(row_den);
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for (int k = 0, r = 2; k < n; k++, --r) {
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PF row_k(rows[k]), col_k(k);
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num = mul(num, add(row_j, col_k));
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if (k != j)
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den = mul(den, sub(row_j, row_k));
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if (!r) {
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r = 3;
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num = reduce(num);
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den = reduce(den);
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}
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}
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num = reduce(num);
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den = reduce(den);
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return num / (add(row_j, col_i) * den);
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#endif
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}
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void mac(const IO *a, PF b, int len, bool first, bool last)
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{
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if (first && last) {
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for (int i = 0; i < len; i++)
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temp[i] = b * PF(a[i]);
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} else if (first) {
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for (int i = 0; i < len; i++)
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temp[i] = mul(b, PF(a[i]));
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} else if (last) {
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for (int i = 0; i < len; i++)
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temp[i] = reduce(add(temp[i], mul(b, PF(a[i]))));
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} else {
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for (int i = 0; i < len; i++)
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temp[i] = add(temp[i], mul(b, PF(a[i])));
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}
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}
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void mac_sub(IO *c, const IO *a, PF b, IO s, int len, bool first, bool last)
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{
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int v = PF::P-1;
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if (first && last) {
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for (int i = 0; i < len; i++)
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c[i] = (b * PF(a[i] == s ? v : a[i]))();
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} else if (first) {
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for (int i = 0; i < len; i++)
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temp[i] = mul(b, PF(a[i] == s ? v : a[i]));
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} else if (last) {
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for (int i = 0; i < len; i++)
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c[i] = reduce(add(temp[i], mul(b, PF(a[i] == s ? v : a[i]))))();
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} else {
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for (int i = 0; i < len; i++)
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temp[i] = add(temp[i], mul(b, PF(a[i] == s ? v : a[i])));
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}
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}
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int find_unused(int block_len)
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{
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for (int i = 0; i < used_length; ++i)
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used_values[i] = 0;
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for (int i = 0; i < block_len; ++i)
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used_values[temp[i]()/used_width] |= 1 << temp[i]()%used_width;
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int s = 0;
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while (used_values[s/used_width] & 1 << s%used_width)
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++s;
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return s;
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}
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int encode(const IO *data, IO *block, int block_id, int block_len, int block_cnt)
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{
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assert(block_id >= block_cnt && block_id < int(PF::P) / 2);
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assert(block_len <= MAX_LEN);
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for (int k = 0; k < block_cnt; k++) {
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PF a_ik = cauchy_matrix(block_id, k);
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mac(data + block_len * k, a_ik, block_len, !k, k == block_cnt - 1);
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}
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int sub = find_unused(block_len);
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for (int i = 0; i < block_len; ++i)
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block[i] = temp[i]() == PF::P-1 ? sub : temp[i]();
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return sub;
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}
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void decode(IO *data, const IO *blocks, const IO *block_subs, const IO *block_ids, int block_idx, int block_len, int block_cnt)
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{
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assert(block_len <= MAX_LEN);
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for (int k = 0; k < block_cnt; k++) {
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PF b_ik = inverse_cauchy_matrix(block_ids, block_idx, k, block_cnt);
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mac_sub(data, blocks + block_len * k, b_ik, block_subs[k], block_len, !k, k == block_cnt - 1);
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}
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}
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};
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}
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