
This matches the "foreach x in container" pattern found in many other programming languages. Generated by the following regular expression: s/nir_foreach_instr(\([^,]*\),\s*\([^,]*\))/nir_foreach_instr(\2, \1)/ and similar expressions for nir_foreach_instr_safe etc. Reviewed-by: Ian Romanick <ian.d.romanick@intel.com>
230 lines
6.8 KiB
C
230 lines
6.8 KiB
C
/*
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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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* Jason Ekstrand (jason@jlekstrand.net)
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*
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*/
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#include "nir_constant_expressions.h"
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#include <math.h>
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/*
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* Implements SSA-based constant folding.
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*/
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struct constant_fold_state {
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void *mem_ctx;
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nir_function_impl *impl;
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bool progress;
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};
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static bool
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constant_fold_alu_instr(nir_alu_instr *instr, void *mem_ctx)
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{
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nir_const_value src[4];
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if (!instr->dest.dest.is_ssa)
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return false;
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/* In the case that any outputs/inputs have unsized types, then we need to
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* guess the bit-size. In this case, the validator ensures that all
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* bit-sizes match so we can just take the bit-size from first
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* output/input with an unsized type. If all the outputs/inputs are sized
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* then we don't need to guess the bit-size at all because the code we
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* generate for constant opcodes in this case already knows the sizes of
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* the types involved and does not need the provided bit-size for anything
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* (although it still requires to receive a valid bit-size).
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*/
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unsigned bit_size = 0;
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if (!nir_alu_type_get_type_size(nir_op_infos[instr->op].output_type))
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bit_size = instr->dest.dest.ssa.bit_size;
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for (unsigned i = 0; i < nir_op_infos[instr->op].num_inputs; i++) {
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if (!instr->src[i].src.is_ssa)
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return false;
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if (bit_size == 0 &&
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!nir_alu_type_get_type_size(nir_op_infos[instr->op].input_sizes[i])) {
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bit_size = instr->src[i].src.ssa->bit_size;
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}
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nir_instr *src_instr = instr->src[i].src.ssa->parent_instr;
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if (src_instr->type != nir_instr_type_load_const)
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return false;
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nir_load_const_instr* load_const = nir_instr_as_load_const(src_instr);
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for (unsigned j = 0; j < nir_ssa_alu_instr_src_components(instr, i);
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j++) {
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if (load_const->def.bit_size == 64)
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src[i].u64[j] = load_const->value.u64[instr->src[i].swizzle[j]];
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else
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src[i].u32[j] = load_const->value.u32[instr->src[i].swizzle[j]];
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}
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/* We shouldn't have any source modifiers in the optimization loop. */
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assert(!instr->src[i].abs && !instr->src[i].negate);
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}
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if (bit_size == 0)
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bit_size = 32;
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/* We shouldn't have any saturate modifiers in the optimization loop. */
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assert(!instr->dest.saturate);
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nir_const_value dest =
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nir_eval_const_opcode(instr->op, instr->dest.dest.ssa.num_components,
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bit_size, src);
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nir_load_const_instr *new_instr =
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nir_load_const_instr_create(mem_ctx,
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instr->dest.dest.ssa.num_components,
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instr->dest.dest.ssa.bit_size);
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new_instr->value = dest;
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nir_instr_insert_before(&instr->instr, &new_instr->instr);
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nir_ssa_def_rewrite_uses(&instr->dest.dest.ssa,
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nir_src_for_ssa(&new_instr->def));
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nir_instr_remove(&instr->instr);
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ralloc_free(instr);
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return true;
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}
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static bool
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constant_fold_deref(nir_instr *instr, nir_deref_var *deref)
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{
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bool progress = false;
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for (nir_deref *tail = deref->deref.child; tail; tail = tail->child) {
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if (tail->deref_type != nir_deref_type_array)
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continue;
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nir_deref_array *arr = nir_deref_as_array(tail);
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if (arr->deref_array_type == nir_deref_array_type_indirect &&
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arr->indirect.is_ssa &&
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arr->indirect.ssa->parent_instr->type == nir_instr_type_load_const) {
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nir_load_const_instr *indirect =
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nir_instr_as_load_const(arr->indirect.ssa->parent_instr);
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arr->base_offset += indirect->value.u32[0];
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/* Clear out the source */
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nir_instr_rewrite_src(instr, &arr->indirect, nir_src_for_ssa(NULL));
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arr->deref_array_type = nir_deref_array_type_direct;
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progress = true;
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}
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}
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return progress;
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}
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static bool
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constant_fold_intrinsic_instr(nir_intrinsic_instr *instr)
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{
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bool progress = false;
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unsigned num_vars = nir_intrinsic_infos[instr->intrinsic].num_variables;
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for (unsigned i = 0; i < num_vars; i++) {
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progress |= constant_fold_deref(&instr->instr, instr->variables[i]);
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}
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return progress;
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}
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static bool
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constant_fold_tex_instr(nir_tex_instr *instr)
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{
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bool progress = false;
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if (instr->texture)
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progress |= constant_fold_deref(&instr->instr, instr->texture);
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if (instr->sampler)
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progress |= constant_fold_deref(&instr->instr, instr->sampler);
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return progress;
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}
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static bool
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constant_fold_block(nir_block *block, void *mem_ctx)
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{
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bool progress = false;
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nir_foreach_instr_safe(instr, block) {
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switch (instr->type) {
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case nir_instr_type_alu:
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progress |= constant_fold_alu_instr(nir_instr_as_alu(instr), mem_ctx);
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break;
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case nir_instr_type_intrinsic:
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progress |=
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constant_fold_intrinsic_instr(nir_instr_as_intrinsic(instr));
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break;
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case nir_instr_type_tex:
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progress |= constant_fold_tex_instr(nir_instr_as_tex(instr));
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break;
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default:
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/* Don't know how to constant fold */
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break;
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}
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}
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return progress;
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}
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static bool
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nir_opt_constant_folding_impl(nir_function_impl *impl)
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{
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void *mem_ctx = ralloc_parent(impl);
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bool progress = false;
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nir_foreach_block(block, impl) {
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progress |= constant_fold_block(block, mem_ctx);
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}
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if (progress)
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nir_metadata_preserve(impl, nir_metadata_block_index |
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nir_metadata_dominance);
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return progress;
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}
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bool
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nir_opt_constant_folding(nir_shader *shader)
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{
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bool progress = false;
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nir_foreach_function(shader, function) {
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if (function->impl)
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progress |= nir_opt_constant_folding_impl(function->impl);
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}
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return progress;
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}
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