feat(furc/SSA): compute dominance tree
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#ifndef FURC_MIDDLE_SSA_HPP
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#define FURC_MIDDLE_SSA_HPP
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#include "furc/middle/ir.hpp"
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namespace furc {
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class ssa {
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ssa() = delete;
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public:
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static void process(ir_module& mod);
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static void destruct(ir_module& mod);
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};
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} // namespace furc
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#endif // FURC_MIDDLE_SSA_HPP
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/**
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* Sources:
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* - Practical Improvements to the Construction and Deconstruction of Static Single Assignment Form:
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* https://web.archive.org/web/20100607003509/http://www.cs.rice.edu/~harv/my_papers/ssa.pdf
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* - A Simple, Fast Dominance Algorithm:
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* https://www.researchgate.net/publication/2569680_A_Simple_Fast_Dominance_Algorithm
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*/
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#include "furc/middle/ssa.hpp"
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#include "furc/middle/ir.hpp"
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#include <algorithm>
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#include <cstddef>
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#include <stdexcept>
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#include <unordered_set>
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#include <vector>
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namespace furc {
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namespace {
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struct block_info {
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std::size_t order = 0;
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std::unordered_set<std::size_t> preds;
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std::unordered_set<std::size_t> sucs;
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std::size_t idom = 0;
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};
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void rpo_dfs(std::unordered_set<std::size_t>& visited,
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std::vector<std::size_t>& order,
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std::size_t block,
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std::vector<block_info>& blocks) {
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visited.insert(block);
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for (auto succ : blocks[block].sucs) {
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if (visited.find(succ) != visited.end()) continue;
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rpo_dfs(visited, order, succ, blocks);
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}
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order.push_back(block);
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}
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void compute_rpo(std::vector<block_info>& blocks, std::vector<std::size_t>& order) {
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std::unordered_set<std::size_t> visited;
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if (!blocks.empty()) rpo_dfs(visited, order, 0, blocks);
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std::reverse(order.begin(), order.begin());
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for (std::size_t i = 0; i < order.size(); ++i) {
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blocks[order[i]].order = i;
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}
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}
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std::size_t intersect(std::vector<block_info>& blocks, std::size_t b1, std::size_t b2) {
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std::size_t finger1 = b1;
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std::size_t finger2 = b2;
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while (finger1 != finger2) {
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while (finger1 < finger2)
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finger1 = blocks[finger1].idom;
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while (finger2 < finger1)
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finger2 = blocks[finger2].idom;
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}
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return finger1;
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}
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void process_function(ir_function& func) {
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std::vector<block_info> blocks(func.blocks.size());
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// 1. Compute CFG
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for (std::size_t i = 0; i < func.blocks.size(); ++i) {
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const auto& block = func.blocks[i];
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if (block.instructions.empty()) continue;
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const auto& termInstr = block.instructions.back();
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switch (termInstr.type) {
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case ir_instruction::Branch: {
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const auto& src = termInstr.sources.front();
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if (src.type != ir_operand::Block) throw std::runtime_error("invalid operand");
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blocks[src.value.block].preds.insert(i);
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blocks[i].sucs.insert(src.value.block);
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} break;
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case ir_instruction::BranchCond: {
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const auto& src = termInstr.sources.front();
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if (src.type != ir_operand::Block) throw std::runtime_error("invalid operand");
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blocks[src.value.blockPair.first].preds.insert(i);
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blocks[src.value.blockPair.second].preds.insert(i);
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blocks[i].preds.insert(src.value.blockPair.first);
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blocks[i].preds.insert(src.value.blockPair.second);
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} break;
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default: break;
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}
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}
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// 2. Computing dominance tree
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std::vector<std::size_t> order;
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order.reserve(blocks.size());
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compute_rpo(blocks, order);
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blocks[order.front()].idom = order.front();
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bool changed = true;
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while (changed) {
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changed = false;
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for (std::size_t i = 1; i < order.size(); ++i) {
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auto& block = blocks[order[i]];
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std::size_t newIdom = -1;
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bool found = false;
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for (auto pred : block.preds) {
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if (blocks[pred].idom == -1) continue;
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newIdom = found ? intersect(blocks, pred, newIdom) : pred;
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found = true;
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}
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if (block.idom != newIdom) {
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block.idom = newIdom;
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changed = true;
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}
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}
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}
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}
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} // namespace
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void ssa::process(ir_module& mod) {
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for (auto* func : mod.functions)
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process_function(*func);
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}
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void ssa::destruct(ir_module& mod) {}
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} // namespace furc
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