
The other constructor that takes a write mask and a condition will be removed shortly. Reviewed-by: Matt Turner <mattst88@gmail.com> Part-of: <https://gitlab.freedesktop.org/mesa/mesa/-/merge_requests/14573>
636 lines
11 KiB
C++
636 lines
11 KiB
C++
/*
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* Copyright © 2012 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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#include "ir_builder.h"
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#include "program/prog_instruction.h"
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using namespace ir_builder;
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namespace ir_builder {
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void
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ir_factory::emit(ir_instruction *ir)
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{
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instructions->push_tail(ir);
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}
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ir_variable *
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ir_factory::make_temp(const glsl_type *type, const char *name)
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{
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ir_variable *var;
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var = new(mem_ctx) ir_variable(type, name, ir_var_temporary);
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emit(var);
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return var;
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}
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ir_assignment *
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assign(deref lhs, operand rhs)
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{
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return assign(lhs, rhs, (1 << lhs.val->type->vector_elements) - 1);
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}
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ir_assignment *
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assign(deref lhs, operand rhs, int writemask)
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{
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void *mem_ctx = ralloc_parent(lhs.val);
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ir_assignment *assign = new(mem_ctx) ir_assignment(lhs.val,
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rhs.val,
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writemask);
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return assign;
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}
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ir_return *
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ret(operand retval)
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{
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void *mem_ctx = ralloc_parent(retval.val);
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return new(mem_ctx) ir_return(retval.val);
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}
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ir_swizzle *
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swizzle(operand a, int swizzle, int components)
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{
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void *mem_ctx = ralloc_parent(a.val);
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return new(mem_ctx) ir_swizzle(a.val,
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GET_SWZ(swizzle, 0),
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GET_SWZ(swizzle, 1),
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GET_SWZ(swizzle, 2),
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GET_SWZ(swizzle, 3),
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components);
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}
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ir_swizzle *
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swizzle_for_size(operand a, unsigned components)
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{
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void *mem_ctx = ralloc_parent(a.val);
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if (a.val->type->vector_elements < components)
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components = a.val->type->vector_elements;
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unsigned s[4] = { 0, 1, 2, 3 };
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for (int i = components; i < 4; i++)
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s[i] = components - 1;
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return new(mem_ctx) ir_swizzle(a.val, s, components);
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}
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ir_swizzle *
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swizzle_xxxx(operand a)
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{
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return swizzle(a, SWIZZLE_XXXX, 4);
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}
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ir_swizzle *
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swizzle_yyyy(operand a)
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{
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return swizzle(a, SWIZZLE_YYYY, 4);
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}
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ir_swizzle *
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swizzle_zzzz(operand a)
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{
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return swizzle(a, SWIZZLE_ZZZZ, 4);
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}
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ir_swizzle *
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swizzle_wwww(operand a)
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{
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return swizzle(a, SWIZZLE_WWWW, 4);
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}
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ir_swizzle *
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swizzle_x(operand a)
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{
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return swizzle(a, SWIZZLE_XXXX, 1);
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}
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ir_swizzle *
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swizzle_y(operand a)
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{
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return swizzle(a, SWIZZLE_YYYY, 1);
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}
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ir_swizzle *
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swizzle_z(operand a)
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{
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return swizzle(a, SWIZZLE_ZZZZ, 1);
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}
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ir_swizzle *
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swizzle_w(operand a)
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{
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return swizzle(a, SWIZZLE_WWWW, 1);
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}
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ir_swizzle *
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swizzle_xy(operand a)
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{
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return swizzle(a, SWIZZLE_XYZW, 2);
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}
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ir_swizzle *
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swizzle_xyz(operand a)
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{
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return swizzle(a, SWIZZLE_XYZW, 3);
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}
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ir_swizzle *
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swizzle_xyzw(operand a)
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{
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return swizzle(a, SWIZZLE_XYZW, 4);
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}
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ir_expression *
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expr(ir_expression_operation op, operand a)
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{
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void *mem_ctx = ralloc_parent(a.val);
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return new(mem_ctx) ir_expression(op, a.val);
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}
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ir_expression *
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expr(ir_expression_operation op, operand a, operand b)
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{
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void *mem_ctx = ralloc_parent(a.val);
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return new(mem_ctx) ir_expression(op, a.val, b.val);
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}
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ir_expression *
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expr(ir_expression_operation op, operand a, operand b, operand c)
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{
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void *mem_ctx = ralloc_parent(a.val);
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return new(mem_ctx) ir_expression(op, a.val, b.val, c.val);
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}
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ir_expression *add(operand a, operand b)
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{
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return expr(ir_binop_add, a, b);
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}
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ir_expression *sub(operand a, operand b)
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{
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return expr(ir_binop_sub, a, b);
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}
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ir_expression *min2(operand a, operand b)
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{
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return expr(ir_binop_min, a, b);
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}
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ir_expression *max2(operand a, operand b)
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{
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return expr(ir_binop_max, a, b);
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}
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ir_expression *mul(operand a, operand b)
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{
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return expr(ir_binop_mul, a, b);
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}
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ir_expression *imul_high(operand a, operand b)
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{
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return expr(ir_binop_imul_high, a, b);
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}
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ir_expression *div(operand a, operand b)
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{
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return expr(ir_binop_div, a, b);
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}
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ir_expression *carry(operand a, operand b)
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{
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return expr(ir_binop_carry, a, b);
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}
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ir_expression *borrow(operand a, operand b)
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{
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return expr(ir_binop_borrow, a, b);
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}
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ir_expression *trunc(operand a)
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{
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return expr(ir_unop_trunc, a);
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}
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ir_expression *round_even(operand a)
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{
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return expr(ir_unop_round_even, a);
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}
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ir_expression *fract(operand a)
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{
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return expr(ir_unop_fract, a);
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}
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/* dot for vectors, mul for scalars */
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ir_expression *dot(operand a, operand b)
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{
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assert(a.val->type == b.val->type);
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if (a.val->type->vector_elements == 1)
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return expr(ir_binop_mul, a, b);
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return expr(ir_binop_dot, a, b);
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}
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ir_expression*
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clamp(operand a, operand b, operand c)
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{
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return expr(ir_binop_min, expr(ir_binop_max, a, b), c);
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}
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ir_expression *
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saturate(operand a)
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{
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return expr(ir_unop_saturate, a);
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}
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ir_expression *
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abs(operand a)
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{
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return expr(ir_unop_abs, a);
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}
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ir_expression *
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neg(operand a)
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{
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return expr(ir_unop_neg, a);
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}
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ir_expression *
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sin(operand a)
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{
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return expr(ir_unop_sin, a);
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}
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ir_expression *
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cos(operand a)
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{
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return expr(ir_unop_cos, a);
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}
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ir_expression *
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exp(operand a)
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{
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return expr(ir_unop_exp, a);
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}
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ir_expression *
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rcp(operand a)
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{
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return expr(ir_unop_rcp, a);
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}
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ir_expression *
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rsq(operand a)
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{
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return expr(ir_unop_rsq, a);
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}
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ir_expression *
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sqrt(operand a)
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{
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return expr(ir_unop_sqrt, a);
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}
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ir_expression *
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log(operand a)
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{
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return expr(ir_unop_log, a);
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}
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ir_expression *
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sign(operand a)
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{
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return expr(ir_unop_sign, a);
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}
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ir_expression *
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subr_to_int(operand a)
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{
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return expr(ir_unop_subroutine_to_int, a);
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}
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ir_expression*
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equal(operand a, operand b)
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{
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return expr(ir_binop_equal, a, b);
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}
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ir_expression*
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nequal(operand a, operand b)
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{
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return expr(ir_binop_nequal, a, b);
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}
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ir_expression*
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less(operand a, operand b)
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{
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return expr(ir_binop_less, a, b);
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}
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ir_expression*
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greater(operand a, operand b)
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{
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return expr(ir_binop_less, b, a);
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}
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ir_expression*
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lequal(operand a, operand b)
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{
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return expr(ir_binop_gequal, b, a);
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}
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ir_expression*
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gequal(operand a, operand b)
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{
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return expr(ir_binop_gequal, a, b);
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}
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ir_expression*
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logic_not(operand a)
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{
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return expr(ir_unop_logic_not, a);
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}
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ir_expression*
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logic_and(operand a, operand b)
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{
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return expr(ir_binop_logic_and, a, b);
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}
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ir_expression*
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logic_or(operand a, operand b)
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{
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return expr(ir_binop_logic_or, a, b);
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}
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ir_expression*
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bit_not(operand a)
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{
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return expr(ir_unop_bit_not, a);
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}
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ir_expression*
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bit_and(operand a, operand b)
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{
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return expr(ir_binop_bit_and, a, b);
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}
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ir_expression*
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bit_or(operand a, operand b)
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{
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return expr(ir_binop_bit_or, a, b);
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}
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ir_expression*
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bit_xor(operand a, operand b)
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{
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return expr(ir_binop_bit_xor, a, b);
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}
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ir_expression*
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lshift(operand a, operand b)
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{
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return expr(ir_binop_lshift, a, b);
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}
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ir_expression*
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rshift(operand a, operand b)
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{
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return expr(ir_binop_rshift, a, b);
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}
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ir_expression*
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f2i(operand a)
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{
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return expr(ir_unop_f2i, a);
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}
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ir_expression*
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bitcast_f2i(operand a)
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{
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return expr(ir_unop_bitcast_f2i, a);
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}
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ir_expression*
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i2f(operand a)
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{
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return expr(ir_unop_i2f, a);
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}
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ir_expression*
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bitcast_i2f(operand a)
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{
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return expr(ir_unop_bitcast_i2f, a);
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}
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ir_expression*
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i2u(operand a)
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{
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return expr(ir_unop_i2u, a);
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}
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ir_expression*
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u2i(operand a)
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{
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return expr(ir_unop_u2i, a);
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}
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ir_expression*
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f2u(operand a)
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{
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return expr(ir_unop_f2u, a);
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}
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ir_expression*
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bitcast_f2u(operand a)
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{
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return expr(ir_unop_bitcast_f2u, a);
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}
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ir_expression*
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u2f(operand a)
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{
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return expr(ir_unop_u2f, a);
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}
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ir_expression*
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bitcast_u2f(operand a)
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{
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return expr(ir_unop_bitcast_u2f, a);
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}
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ir_expression*
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i2b(operand a)
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{
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return expr(ir_unop_i2b, a);
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}
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ir_expression*
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b2i(operand a)
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{
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return expr(ir_unop_b2i, a);
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}
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ir_expression *
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f2b(operand a)
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{
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return expr(ir_unop_f2b, a);
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}
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ir_expression *
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b2f(operand a)
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{
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return expr(ir_unop_b2f, a);
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}
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ir_expression*
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bitcast_d2i64(operand a)
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{
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return expr(ir_unop_bitcast_d2i64, a);
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}
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ir_expression*
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bitcast_d2u64(operand a)
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{
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return expr(ir_unop_bitcast_d2u64, a);
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}
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ir_expression*
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bitcast_i642d(operand a)
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{
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return expr(ir_unop_bitcast_i642d, a);
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}
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ir_expression*
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bitcast_u642d(operand a)
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{
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return expr(ir_unop_bitcast_u642d, a);
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}
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ir_expression *
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interpolate_at_centroid(operand a)
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{
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return expr(ir_unop_interpolate_at_centroid, a);
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}
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ir_expression *
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interpolate_at_offset(operand a, operand b)
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{
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return expr(ir_binop_interpolate_at_offset, a, b);
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}
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ir_expression *
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interpolate_at_sample(operand a, operand b)
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{
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return expr(ir_binop_interpolate_at_sample, a, b);
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}
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ir_expression *
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f2d(operand a)
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{
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return expr(ir_unop_f2d, a);
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}
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ir_expression *
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i2d(operand a)
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{
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return expr(ir_unop_i2d, a);
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}
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ir_expression *
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u2d(operand a)
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{
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return expr(ir_unop_u2d, a);
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}
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ir_expression *
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fma(operand a, operand b, operand c)
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{
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return expr(ir_triop_fma, a, b, c);
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}
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ir_expression *
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lrp(operand x, operand y, operand a)
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{
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return expr(ir_triop_lrp, x, y, a);
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}
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ir_expression *
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csel(operand a, operand b, operand c)
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{
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return expr(ir_triop_csel, a, b, c);
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}
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ir_expression *
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bitfield_extract(operand a, operand b, operand c)
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{
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return expr(ir_triop_bitfield_extract, a, b, c);
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}
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ir_expression *
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bitfield_insert(operand a, operand b, operand c, operand d)
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{
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void *mem_ctx = ralloc_parent(a.val);
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return new(mem_ctx) ir_expression(ir_quadop_bitfield_insert,
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a.val->type, a.val, b.val, c.val, d.val);
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}
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ir_if*
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if_tree(operand condition,
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|
ir_instruction *then_branch)
|
|
{
|
|
assert(then_branch != NULL);
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|
|
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void *mem_ctx = ralloc_parent(condition.val);
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|
|
|
ir_if *result = new(mem_ctx) ir_if(condition.val);
|
|
result->then_instructions.push_tail(then_branch);
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|
return result;
|
|
}
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|
|
|
ir_if*
|
|
if_tree(operand condition,
|
|
ir_instruction *then_branch,
|
|
ir_instruction *else_branch)
|
|
{
|
|
assert(then_branch != NULL);
|
|
assert(else_branch != NULL);
|
|
|
|
void *mem_ctx = ralloc_parent(condition.val);
|
|
|
|
ir_if *result = new(mem_ctx) ir_if(condition.val);
|
|
result->then_instructions.push_tail(then_branch);
|
|
result->else_instructions.push_tail(else_branch);
|
|
return result;
|
|
}
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|
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} /* namespace ir_builder */
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