nir: move to compiler/
Signed-off-by: Emil Velikov <emil.velikov@collabora.com> Acked-by: Matt Turner <mattst88@gmail.com> Acked-by: Jose Fonseca <jfonseca@vmware.com>
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Emil Velikov

parent
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350
src/compiler/nir/nir_dominance.c
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350
src/compiler/nir/nir_dominance.c
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/*
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* Copyright © 2014 Intel Corporation
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*
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* Permission is hereby granted, free of charge, to any person obtaining a
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* copy of this software and associated documentation files (the "Software"),
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* to deal in the Software without restriction, including without limitation
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* the rights to use, copy, modify, merge, publish, distribute, sublicense,
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* and/or sell copies of the Software, and to permit persons to whom the
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* Software is furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice (including the next
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* paragraph) shall be included in all copies or substantial portions of the
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* Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
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* THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
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* FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
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* IN THE SOFTWARE.
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*
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* Authors:
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* Connor Abbott (cwabbott0@gmail.com)
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*
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*/
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#include "nir.h"
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/*
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* Implements the algorithms for computing the dominance tree and the
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* dominance frontier from "A Simple, Fast Dominance Algorithm" by Cooper,
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* Harvey, and Kennedy.
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*/
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typedef struct {
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nir_function_impl *impl;
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bool progress;
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} dom_state;
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static bool
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init_block_cb(nir_block *block, void *_state)
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{
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dom_state *state = (dom_state *) _state;
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if (block == nir_start_block(state->impl))
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block->imm_dom = block;
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else
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block->imm_dom = NULL;
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block->num_dom_children = 0;
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struct set_entry *entry;
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set_foreach(block->dom_frontier, entry) {
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_mesa_set_remove(block->dom_frontier, entry);
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}
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return true;
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}
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static nir_block *
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intersect(nir_block *b1, nir_block *b2)
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{
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while (b1 != b2) {
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/*
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* Note, the comparisons here are the opposite of what the paper says
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* because we index blocks from beginning -> end (i.e. reverse
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* post-order) instead of post-order like they assume.
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*/
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while (b1->index > b2->index)
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b1 = b1->imm_dom;
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while (b2->index > b1->index)
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b2 = b2->imm_dom;
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}
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return b1;
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}
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static bool
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calc_dominance_cb(nir_block *block, void *_state)
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{
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dom_state *state = (dom_state *) _state;
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if (block == nir_start_block(state->impl))
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return true;
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nir_block *new_idom = NULL;
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struct set_entry *entry;
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set_foreach(block->predecessors, entry) {
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nir_block *pred = (nir_block *) entry->key;
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if (pred->imm_dom) {
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if (new_idom)
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new_idom = intersect(pred, new_idom);
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else
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new_idom = pred;
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}
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}
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assert(new_idom);
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if (block->imm_dom != new_idom) {
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block->imm_dom = new_idom;
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state->progress = true;
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}
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return true;
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}
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static bool
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calc_dom_frontier_cb(nir_block *block, void *state)
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{
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(void) state;
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if (block->predecessors->entries > 1) {
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struct set_entry *entry;
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set_foreach(block->predecessors, entry) {
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nir_block *runner = (nir_block *) entry->key;
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while (runner != block->imm_dom) {
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_mesa_set_add(runner->dom_frontier, block);
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runner = runner->imm_dom;
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}
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}
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}
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return true;
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}
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/*
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* Compute each node's children in the dominance tree from the immediate
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* dominator information. We do this in three stages:
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*
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* 1. Calculate the number of children each node has
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* 2. Allocate arrays, setting the number of children to 0 again
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* 3. For each node, add itself to its parent's list of children, using
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* num_dom_children as an index - at the end of this step, num_dom_children
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* for each node will be the same as it was at the end of step #1.
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*/
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static bool
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block_count_children(nir_block *block, void *state)
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{
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(void) state;
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if (block->imm_dom)
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block->imm_dom->num_dom_children++;
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return true;
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}
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static bool
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block_alloc_children(nir_block *block, void *state)
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{
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void *mem_ctx = state;
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block->dom_children = ralloc_array(mem_ctx, nir_block *,
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block->num_dom_children);
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block->num_dom_children = 0;
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return true;
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}
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static bool
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block_add_child(nir_block *block, void *state)
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{
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(void) state;
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if (block->imm_dom)
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block->imm_dom->dom_children[block->imm_dom->num_dom_children++] = block;
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return true;
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}
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static void
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calc_dom_children(nir_function_impl* impl)
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{
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void *mem_ctx = ralloc_parent(impl);
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nir_foreach_block(impl, block_count_children, NULL);
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nir_foreach_block(impl, block_alloc_children, mem_ctx);
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nir_foreach_block(impl, block_add_child, NULL);
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}
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static void
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calc_dfs_indicies(nir_block *block, unsigned *index)
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{
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block->dom_pre_index = (*index)++;
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for (unsigned i = 0; i < block->num_dom_children; i++)
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calc_dfs_indicies(block->dom_children[i], index);
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block->dom_post_index = (*index)++;
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}
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void
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nir_calc_dominance_impl(nir_function_impl *impl)
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{
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if (impl->valid_metadata & nir_metadata_dominance)
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return;
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nir_metadata_require(impl, nir_metadata_block_index);
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dom_state state;
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state.impl = impl;
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state.progress = true;
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nir_foreach_block(impl, init_block_cb, &state);
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while (state.progress) {
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state.progress = false;
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nir_foreach_block(impl, calc_dominance_cb, &state);
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}
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nir_foreach_block(impl, calc_dom_frontier_cb, &state);
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nir_block *start_block = nir_start_block(impl);
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start_block->imm_dom = NULL;
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calc_dom_children(impl);
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unsigned dfs_index = 0;
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calc_dfs_indicies(start_block, &dfs_index);
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}
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void
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nir_calc_dominance(nir_shader *shader)
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{
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nir_foreach_function(shader, function) {
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if (function->impl)
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nir_calc_dominance_impl(function->impl);
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}
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}
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/**
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* Computes the least common anscestor of two blocks. If one of the blocks
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* is null, the other block is returned.
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*/
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nir_block *
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nir_dominance_lca(nir_block *b1, nir_block *b2)
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{
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if (b1 == NULL)
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return b2;
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if (b2 == NULL)
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return b1;
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assert(nir_cf_node_get_function(&b1->cf_node) ==
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nir_cf_node_get_function(&b2->cf_node));
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assert(nir_cf_node_get_function(&b1->cf_node)->valid_metadata &
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nir_metadata_dominance);
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return intersect(b1, b2);
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}
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/**
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* Returns true if parent dominates child
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*/
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bool
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nir_block_dominates(nir_block *parent, nir_block *child)
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{
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assert(nir_cf_node_get_function(&parent->cf_node) ==
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nir_cf_node_get_function(&child->cf_node));
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assert(nir_cf_node_get_function(&parent->cf_node)->valid_metadata &
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nir_metadata_dominance);
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return child->dom_pre_index >= parent->dom_pre_index &&
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child->dom_post_index <= parent->dom_post_index;
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}
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static bool
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dump_block_dom(nir_block *block, void *state)
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{
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FILE *fp = state;
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if (block->imm_dom)
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fprintf(fp, "\t%u -> %u\n", block->imm_dom->index, block->index);
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return true;
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}
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void
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nir_dump_dom_tree_impl(nir_function_impl *impl, FILE *fp)
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{
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fprintf(fp, "digraph doms_%s {\n", impl->function->name);
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nir_foreach_block(impl, dump_block_dom, fp);
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fprintf(fp, "}\n\n");
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}
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void
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nir_dump_dom_tree(nir_shader *shader, FILE *fp)
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{
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nir_foreach_function(shader, function) {
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if (function->impl)
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nir_dump_dom_tree_impl(function->impl, fp);
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}
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}
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static bool
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dump_block_dom_frontier(nir_block *block, void *state)
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{
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FILE *fp = state;
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fprintf(fp, "DF(%u) = {", block->index);
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struct set_entry *entry;
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set_foreach(block->dom_frontier, entry) {
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nir_block *df = (nir_block *) entry->key;
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fprintf(fp, "%u, ", df->index);
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}
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fprintf(fp, "}\n");
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return true;
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}
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void
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nir_dump_dom_frontier_impl(nir_function_impl *impl, FILE *fp)
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{
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nir_foreach_block(impl, dump_block_dom_frontier, fp);
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}
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void
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nir_dump_dom_frontier(nir_shader *shader, FILE *fp)
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{
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nir_foreach_function(shader, function) {
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if (function->impl)
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nir_dump_dom_frontier_impl(function->impl, fp);
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}
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}
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static bool
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dump_block_succs(nir_block *block, void *state)
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{
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FILE *fp = state;
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if (block->successors[0])
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fprintf(fp, "\t%u -> %u\n", block->index, block->successors[0]->index);
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if (block->successors[1])
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fprintf(fp, "\t%u -> %u\n", block->index, block->successors[1]->index);
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return true;
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}
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void
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nir_dump_cfg_impl(nir_function_impl *impl, FILE *fp)
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{
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fprintf(fp, "digraph cfg_%s {\n", impl->function->name);
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nir_foreach_block(impl, dump_block_succs, fp);
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fprintf(fp, "}\n\n");
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}
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void
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nir_dump_cfg(nir_shader *shader, FILE *fp)
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{
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nir_foreach_function(shader, function) {
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if (function->impl)
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nir_dump_cfg_impl(function->impl, fp);
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}
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}
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