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SPDX is an international standard for documenting software license requirements. Remove the existing headers and replace with a brief SPDX preamble. See: https://spdx.dev/use/specifications/ The script used to convert the files is added to "tools", and the file header templates in headers/ are updated. Signed-off-by: H. Peter Anvin (Intel) <hpa@zytor.com>
181 lines
4.4 KiB
C
181 lines
4.4 KiB
C
/* SPDX-License-Identifier: BSD-2-Clause */
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/* Copyright 1996-2017 The NASM Authors - All Rights Reserved */
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/*
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* exprlib.c
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*
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* Library routines to manipulate expression data types.
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*/
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#include "nasm.h"
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/*
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* Return true if the argument is a simple scalar. (Or a far-
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* absolute, which counts.)
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*/
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bool is_simple(const expr *vect)
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{
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while (vect->type && !vect->value)
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vect++;
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if (!vect->type)
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return true;
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if (vect->type != EXPR_SIMPLE)
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return false;
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do {
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vect++;
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} while (vect->type && !vect->value);
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if (vect->type && vect->type < EXPR_SEGBASE + SEG_ABS)
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return false;
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return true;
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}
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/*
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* Return true if the argument is a simple scalar, _NOT_ a far-
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* absolute.
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*/
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bool is_really_simple(const expr *vect)
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{
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while (vect->type && !vect->value)
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vect++;
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if (!vect->type)
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return true;
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if (vect->type != EXPR_SIMPLE)
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return false;
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do {
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vect++;
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} while (vect->type && !vect->value);
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if (vect->type)
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return false;
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return true;
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}
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/*
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* Classify an expression based on its components
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*/
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enum expr_classes expr_class(const expr *vect)
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{
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enum expr_classes class = EC_ZERO;
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for (; vect->type; vect++) {
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if (!vect->value) {
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/* Value-0 term */
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} else if (vect->type < EXPR_UNKNOWN) {
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if ((class & EC_REGISTER) || vect->value != 1)
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class |= EC_REGEXPR;
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else
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class |= EC_REGISTER;
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} else if (vect->type == EXPR_UNKNOWN) {
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class |= EC_UNKNOWN;
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} else if (vect->type == EXPR_SIMPLE) {
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/* Pure number term */
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class |= EC_CONST;
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} else if (vect->type == EXPR_WRT) {
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class |= EC_WRT;
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} else if (vect->type < EXPR_SEGBASE) {
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class |= EC_COMPLEX;
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} else if (vect->type >= EXPR_SEGBASE + SEG_ABS) {
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/* It is an absolute segment */
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if (class & (EC_SEG|EC_SEGABS))
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class |= EC_COMPLEX;
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class |= EC_SEGABS;
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} else {
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/* It is a segment */
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if (vect->value == 1) {
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if (class & (EC_SEG|EC_SEGABS))
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class |= EC_COMPLEX;
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class |= EC_SEG;
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} else if (vect->value == -1) {
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/* can only subtract current segment, and only once */
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if (vect->type != location.segment + EXPR_SEGBASE ||
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(class & EC_SELFREL))
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class |= EC_COMPLEX;
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class |= EC_SELFREL;
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} else {
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/* Non-simple segment arithmetic */
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class |= EC_COMPLEX;
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}
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}
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}
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return class;
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}
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/*
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* Return true if the argument is relocatable (i.e. a simple
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* scalar, plus at most one segment-base, possibly a subtraction
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* of the current segment base, plus possibly a WRT).
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*/
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bool is_reloc(const expr *vect)
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{
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return !(expr_class(vect) & ~EC_RELOC);
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}
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/*
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* Return true if the argument contains an `unknown' part.
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*/
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bool is_unknown(const expr *vect)
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{
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return !!(expr_class(vect) & EC_UNKNOWN);
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}
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/*
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* Return true if the argument contains nothing but an `unknown'
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* part.
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*/
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bool is_just_unknown(const expr *vect)
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{
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return expr_class(vect) == EC_UNKNOWN;
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}
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/*
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* Return the scalar part of a relocatable vector. (Including
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* simple scalar vectors - those qualify as relocatable.)
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*/
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int64_t reloc_value(const expr *vect)
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{
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while (vect->type && !vect->value)
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vect++;
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if (!vect->type)
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return 0;
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if (vect->type == EXPR_SIMPLE)
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return vect->value;
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else
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return 0;
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}
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/*
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* Return the segment number of a relocatable vector, or NO_SEG for
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* simple scalars.
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*/
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int32_t reloc_seg(const expr *vect)
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{
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for (; vect->type; vect++) {
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if (vect->type >= EXPR_SEGBASE && vect->value == 1)
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return vect->type - EXPR_SEGBASE;
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}
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return NO_SEG;
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}
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/*
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* Return the WRT segment number of a relocatable vector, or NO_SEG
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* if no WRT part is present.
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*/
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int32_t reloc_wrt(const expr *vect)
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{
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while (vect->type && vect->type < EXPR_WRT)
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vect++;
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if (vect->type == EXPR_WRT) {
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return vect->value;
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} else
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return NO_SEG;
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}
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/*
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* Return true if this expression contains a subtraction of the location
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*/
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bool is_self_relative(const expr *vect)
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{
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return !!(expr_class(vect) & EC_SELFREL);
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}
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