2010-11-18 17:54:07 -08:00
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/*
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* Copyright © 2010 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
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* DEALINGS IN THE SOFTWARE.
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*/
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/**
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* \file lower_instructions.cpp
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*
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* Many GPUs lack native instructions for certain expression operations, and
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* must replace them with some other expression tree. This pass lowers some
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* of the most common cases, allowing the lowering code to be implemented once
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* rather than in each driver backend.
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*
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* Currently supported transformations:
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* - SUB_TO_ADD_NEG
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* - DIV_TO_MUL_RCP
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2011-08-27 18:32:58 -05:00
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* - INT_DIV_TO_MUL_RCP
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2010-11-18 17:54:07 -08:00
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* - EXP_TO_EXP2
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2010-11-24 22:21:10 -08:00
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* - POW_TO_EXP2
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2010-11-18 17:54:07 -08:00
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* - LOG_TO_LOG2
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* - MOD_TO_FRACT
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2012-12-01 23:49:26 -08:00
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* - LRP_TO_ARITH
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2010-11-18 17:54:07 -08:00
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*
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* SUB_TO_ADD_NEG:
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* ---------------
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* Breaks an ir_binop_sub expression down to add(op0, neg(op1))
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*
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* This simplifies expression reassociation, and for many backends
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* there is no subtract operation separate from adding the negation.
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* For backends with native subtract operations, they will probably
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* want to recognize add(op0, neg(op1)) or the other way around to
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* produce a subtract anyway.
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*
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2011-08-27 18:32:58 -05:00
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* DIV_TO_MUL_RCP and INT_DIV_TO_MUL_RCP:
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* --------------------------------------
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2012-07-02 11:09:22 -06:00
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* Breaks an ir_binop_div expression down to op0 * (rcp(op1)).
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2010-11-18 17:54:07 -08:00
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*
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* Many GPUs don't have a divide instruction (945 and 965 included),
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* but they do have an RCP instruction to compute an approximate
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* reciprocal. By breaking the operation down, constant reciprocals
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* can get constant folded.
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*
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2011-08-27 18:32:58 -05:00
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* DIV_TO_MUL_RCP only lowers floating point division; INT_DIV_TO_MUL_RCP
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* handles the integer case, converting to and from floating point so that
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* RCP is possible.
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*
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2010-11-18 17:54:07 -08:00
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* EXP_TO_EXP2 and LOG_TO_LOG2:
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* ----------------------------
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* Many GPUs don't have a base e log or exponent instruction, but they
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* do have base 2 versions, so this pass converts exp and log to exp2
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* and log2 operations.
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*
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2010-11-24 22:21:10 -08:00
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* POW_TO_EXP2:
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* -----------
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* Many older GPUs don't have an x**y instruction. For these GPUs, convert
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* x**y to 2**(y * log2(x)).
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*
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2010-11-18 17:54:07 -08:00
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* MOD_TO_FRACT:
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* -------------
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2012-07-02 11:09:22 -06:00
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* Breaks an ir_binop_mod expression down to (op1 * fract(op0 / op1))
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2010-11-18 17:54:07 -08:00
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*
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* Many GPUs don't have a MOD instruction (945 and 965 included), and
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* if we have to break it down like this anyway, it gives an
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* opportunity to do things like constant fold the (1.0 / op1) easily.
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2012-12-01 23:49:26 -08:00
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*
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* LRP_TO_ARITH:
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* -------------
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* Converts ir_triop_lrp to (op0 * (1.0f - op2)) + (op1 * op2).
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2010-11-18 17:54:07 -08:00
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*/
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2010-11-24 14:03:57 -08:00
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#include "main/core.h" /* for M_LOG2E */
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2010-11-18 17:54:07 -08:00
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#include "glsl_types.h"
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#include "ir.h"
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2012-12-01 23:49:26 -08:00
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#include "ir_builder.h"
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2010-11-18 17:54:07 -08:00
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#include "ir_optimization.h"
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2012-12-01 23:49:26 -08:00
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using namespace ir_builder;
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2010-11-18 17:54:07 -08:00
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class lower_instructions_visitor : public ir_hierarchical_visitor {
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public:
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lower_instructions_visitor(unsigned lower)
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: progress(false), lower(lower) { }
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ir_visitor_status visit_leave(ir_expression *);
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bool progress;
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private:
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unsigned lower; /** Bitfield of which operations to lower */
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void sub_to_add_neg(ir_expression *);
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void div_to_mul_rcp(ir_expression *);
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2011-08-27 18:32:58 -05:00
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void int_div_to_mul_rcp(ir_expression *);
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2010-11-18 17:54:07 -08:00
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void mod_to_fract(ir_expression *);
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void exp_to_exp2(ir_expression *);
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2010-11-24 22:21:10 -08:00
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void pow_to_exp2(ir_expression *);
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2010-11-18 17:54:07 -08:00
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void log_to_log2(ir_expression *);
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2012-12-01 23:49:26 -08:00
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void lrp_to_arith(ir_expression *);
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2010-11-18 17:54:07 -08:00
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};
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/**
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* Determine if a particular type of lowering should occur
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*/
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#define lowering(x) (this->lower & x)
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bool
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lower_instructions(exec_list *instructions, unsigned what_to_lower)
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{
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lower_instructions_visitor v(what_to_lower);
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visit_list_elements(&v, instructions);
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return v.progress;
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}
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void
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lower_instructions_visitor::sub_to_add_neg(ir_expression *ir)
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{
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ir->operation = ir_binop_add;
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ir->operands[1] = new(ir) ir_expression(ir_unop_neg, ir->operands[1]->type,
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ir->operands[1], NULL);
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this->progress = true;
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}
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void
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lower_instructions_visitor::div_to_mul_rcp(ir_expression *ir)
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{
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2011-08-27 18:32:58 -05:00
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assert(ir->operands[1]->type->is_float());
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/* New expression for the 1.0 / op1 */
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ir_rvalue *expr;
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expr = new(ir) ir_expression(ir_unop_rcp,
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ir->operands[1]->type,
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ir->operands[1]);
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/* op0 / op1 -> op0 * (1.0 / op1) */
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ir->operation = ir_binop_mul;
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ir->operands[1] = expr;
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this->progress = true;
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}
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void
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lower_instructions_visitor::int_div_to_mul_rcp(ir_expression *ir)
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{
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assert(ir->operands[1]->type->is_integer());
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/* Be careful with integer division -- we need to do it as a
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* float and re-truncate, since rcp(n > 1) of an integer would
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* just be 0.
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*/
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ir_rvalue *op0, *op1;
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const struct glsl_type *vec_type;
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vec_type = glsl_type::get_instance(GLSL_TYPE_FLOAT,
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ir->operands[1]->type->vector_elements,
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ir->operands[1]->type->matrix_columns);
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if (ir->operands[1]->type->base_type == GLSL_TYPE_INT)
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op1 = new(ir) ir_expression(ir_unop_i2f, vec_type, ir->operands[1], NULL);
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else
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op1 = new(ir) ir_expression(ir_unop_u2f, vec_type, ir->operands[1], NULL);
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op1 = new(ir) ir_expression(ir_unop_rcp, op1->type, op1, NULL);
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vec_type = glsl_type::get_instance(GLSL_TYPE_FLOAT,
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ir->operands[0]->type->vector_elements,
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ir->operands[0]->type->matrix_columns);
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if (ir->operands[0]->type->base_type == GLSL_TYPE_INT)
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op0 = new(ir) ir_expression(ir_unop_i2f, vec_type, ir->operands[0], NULL);
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else
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op0 = new(ir) ir_expression(ir_unop_u2f, vec_type, ir->operands[0], NULL);
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vec_type = glsl_type::get_instance(GLSL_TYPE_FLOAT,
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ir->type->vector_elements,
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ir->type->matrix_columns);
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op0 = new(ir) ir_expression(ir_binop_mul, vec_type, op0, op1);
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if (ir->operands[1]->type->base_type == GLSL_TYPE_INT) {
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ir->operation = ir_unop_f2i;
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ir->operands[0] = op0;
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2010-11-18 17:54:07 -08:00
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} else {
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2011-08-27 18:32:58 -05:00
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ir->operation = ir_unop_i2u;
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ir->operands[0] = new(ir) ir_expression(ir_unop_f2i, op0);
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2010-11-18 17:54:07 -08:00
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}
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2011-08-27 18:32:58 -05:00
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ir->operands[1] = NULL;
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2010-11-18 17:54:07 -08:00
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this->progress = true;
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}
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void
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lower_instructions_visitor::exp_to_exp2(ir_expression *ir)
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{
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2010-11-24 14:03:57 -08:00
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ir_constant *log2_e = new(ir) ir_constant(float(M_LOG2E));
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2010-11-18 17:54:07 -08:00
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ir->operation = ir_unop_exp2;
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ir->operands[0] = new(ir) ir_expression(ir_binop_mul, ir->operands[0]->type,
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ir->operands[0], log2_e);
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this->progress = true;
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}
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2010-11-24 22:21:10 -08:00
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void
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lower_instructions_visitor::pow_to_exp2(ir_expression *ir)
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{
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ir_expression *const log2_x =
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new(ir) ir_expression(ir_unop_log2, ir->operands[0]->type,
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ir->operands[0]);
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ir->operation = ir_unop_exp2;
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ir->operands[0] = new(ir) ir_expression(ir_binop_mul, ir->operands[1]->type,
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ir->operands[1], log2_x);
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ir->operands[1] = NULL;
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this->progress = true;
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}
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2010-11-18 17:54:07 -08:00
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void
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lower_instructions_visitor::log_to_log2(ir_expression *ir)
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{
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ir->operation = ir_binop_mul;
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ir->operands[0] = new(ir) ir_expression(ir_unop_log2, ir->operands[0]->type,
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ir->operands[0], NULL);
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2010-11-24 14:03:57 -08:00
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ir->operands[1] = new(ir) ir_constant(float(1.0 / M_LOG2E));
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2010-11-18 17:54:07 -08:00
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this->progress = true;
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}
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void
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lower_instructions_visitor::mod_to_fract(ir_expression *ir)
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{
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ir_variable *temp = new(ir) ir_variable(ir->operands[1]->type, "mod_b",
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ir_var_temporary);
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this->base_ir->insert_before(temp);
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ir_assignment *const assign =
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new(ir) ir_assignment(new(ir) ir_dereference_variable(temp),
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ir->operands[1], NULL);
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this->base_ir->insert_before(assign);
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ir_expression *const div_expr =
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new(ir) ir_expression(ir_binop_div, ir->operands[0]->type,
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ir->operands[0],
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new(ir) ir_dereference_variable(temp));
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/* Don't generate new IR that would need to be lowered in an additional
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* pass.
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*/
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if (lowering(DIV_TO_MUL_RCP))
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div_to_mul_rcp(div_expr);
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ir_rvalue *expr = new(ir) ir_expression(ir_unop_fract,
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ir->operands[0]->type,
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div_expr,
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NULL);
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ir->operation = ir_binop_mul;
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ir->operands[0] = new(ir) ir_dereference_variable(temp);
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ir->operands[1] = expr;
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this->progress = true;
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}
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2012-12-01 23:49:26 -08:00
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void
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lower_instructions_visitor::lrp_to_arith(ir_expression *ir)
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{
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/* (lrp x y a) -> x*(1-a) + y*a */
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/* Save op2 */
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ir_variable *temp = new(ir) ir_variable(ir->operands[2]->type, "lrp_factor",
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ir_var_temporary);
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this->base_ir->insert_before(temp);
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this->base_ir->insert_before(assign(temp, ir->operands[2]));
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ir_constant *one = new(ir) ir_constant(1.0f);
|
|
|
|
|
|
|
|
|
|
ir->operation = ir_binop_add;
|
|
|
|
|
ir->operands[0] = mul(ir->operands[0], sub(one, temp));
|
|
|
|
|
ir->operands[1] = mul(ir->operands[1], temp);
|
|
|
|
|
ir->operands[2] = NULL;
|
|
|
|
|
|
|
|
|
|
this->progress = true;
|
|
|
|
|
}
|
|
|
|
|
|
2010-11-18 17:54:07 -08:00
|
|
|
ir_visitor_status
|
|
|
|
|
lower_instructions_visitor::visit_leave(ir_expression *ir)
|
|
|
|
|
{
|
|
|
|
|
switch (ir->operation) {
|
|
|
|
|
case ir_binop_sub:
|
|
|
|
|
if (lowering(SUB_TO_ADD_NEG))
|
|
|
|
|
sub_to_add_neg(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
|
|
|
|
case ir_binop_div:
|
2011-08-27 18:32:58 -05:00
|
|
|
if (ir->operands[1]->type->is_integer() && lowering(INT_DIV_TO_MUL_RCP))
|
|
|
|
|
int_div_to_mul_rcp(ir);
|
|
|
|
|
else if (ir->operands[1]->type->is_float() && lowering(DIV_TO_MUL_RCP))
|
2010-11-18 17:54:07 -08:00
|
|
|
div_to_mul_rcp(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
|
|
|
|
case ir_unop_exp:
|
|
|
|
|
if (lowering(EXP_TO_EXP2))
|
|
|
|
|
exp_to_exp2(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
|
|
|
|
case ir_unop_log:
|
|
|
|
|
if (lowering(LOG_TO_LOG2))
|
|
|
|
|
log_to_log2(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
|
|
|
|
case ir_binop_mod:
|
2011-06-14 23:13:27 -07:00
|
|
|
if (lowering(MOD_TO_FRACT) && ir->type->is_float())
|
2010-11-18 17:54:07 -08:00
|
|
|
mod_to_fract(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
2010-11-24 22:21:10 -08:00
|
|
|
case ir_binop_pow:
|
|
|
|
|
if (lowering(POW_TO_EXP2))
|
|
|
|
|
pow_to_exp2(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
2012-12-01 23:49:26 -08:00
|
|
|
case ir_triop_lrp:
|
|
|
|
|
if (lowering(LRP_TO_ARITH))
|
|
|
|
|
lrp_to_arith(ir);
|
|
|
|
|
break;
|
|
|
|
|
|
2010-11-18 17:54:07 -08:00
|
|
|
default:
|
|
|
|
|
return visit_continue;
|
|
|
|
|
}
|
|
|
|
|
|
|
|
|
|
return visit_continue;
|
|
|
|
|
}
|