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kichikuou_xsystem35-sdl2/src/debugger.c
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546 lines
12 KiB
C

/*
* Copyright (C) 2021 kichikuou <KichikuouChrome@gmail.com>
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
*
*/
#include <assert.h>
#include <setjmp.h>
#include <stdlib.h>
#include <string.h>
#include "debugger.h"
#include "debugger_private.h"
#include "debug_symbol.h"
#include "system.h"
#include "ald_manager.h"
#include "scenario.h"
#include "nact.h"
#include "variable.h"
#define INTERNAL_BREAKPOINT_NO -1
DebuggerState dbg_state = DBG_RUNNING;
DebuggerImpl *dbg_impl;
struct debug_symbols *symbols;
static Breakpoint *breakpoints = NULL;
static int next_breakpoint_no = 1;
static Breakpoint *internal_breakpoint;
// Used in DBG_STOPPED_STEP and DBG_STOPPED_NEXT
static struct {
int page;
int line;
} step_exec_state;
void dbg_init(const char *symbols_path, boolean use_dap) {
dbg_impl = use_dap ? &dbg_dap_impl : &dbg_cui_impl;
dbg_impl->init(symbols_path);
}
void dbg_quit(void) {
if (dbg_impl)
dbg_impl->quit();
}
int dbg_lookup_var(const char *name) {
if (symbols)
return dsym_lookup_variable(symbols, name);
// If debug information is not available, lookup from System39.ain.
if (nact->ain.var) {
for (int i = 0; i < nact->ain.varnum; i++) {
if (!strcmp(name, nact->ain.var[i]))
return i;
}
}
return -1;
}
static const char *eval_input;
static jmp_buf eval_jmp_buf;
static char *eval_result;
static size_t eval_result_size;
static int eval_expr(void);
static void eval_error(char *format, ...) {
va_list args;
va_start(args, format);
vsnprintf(eval_result, eval_result_size, format, args);
va_end(args);
longjmp(eval_jmp_buf, 1);
}
static char next_char(void) {
while (isspace(*eval_input))
eval_input++;
return *eval_input;
}
static boolean consume(char c) {
if (next_char() != c)
return false;
eval_input++;
return true;
}
static void expect(char c) {
if (next_char() != c)
eval_error("syntax error");
eval_input++;
}
static int clamp(int val) {
return val > 0xffff ? 0xffff
: val < 0 ? 0
: val;
}
static boolean is_identifier(uint8_t c) {
return isalnum(c) || !isascii(c) || c == '_' || c == '.';
}
static int parse_number(void) {
int base = 10;
if (eval_input[0] == '0' && tolower(eval_input[1]) == 'x') {
base = 16;
eval_input += 2;
} else if (eval_input[0] == '0' && tolower(eval_input[1]) == 'b') {
base = 2;
eval_input += 2;
}
char *p;
long val = strtol(eval_input, &p, base);
eval_input = p;
return clamp(val);
}
static int eval_variable(void) {
const char *top = eval_input;
while (is_identifier(*eval_input))
eval_input++;
if (top == eval_input)
eval_error("syntax error");
char *buf = alloca(eval_input - top + 1);
strncpy(buf, top, eval_input - top);
buf[eval_input - top] = '\0';
int var = dbg_lookup_var(buf);
if (var < 0)
eval_error("unknown variable \"%s\"", buf);
int *store;
if (consume('[')) {
int index = eval_expr();
expect(']');
store = v_ref_indexed(var, index, NULL);
} else {
store = v_ref(var, NULL);
}
if (!store)
eval_error("out of bounds array access");
return *store;
}
static int eval_prim(void) {
if (consume('(')) {
int val = eval_expr();
expect(')');
return val;
}
if (isdigit(next_char()))
return parse_number();
return eval_variable();
}
static int eval_mul(void) {
int val = eval_prim();
for (;;) {
if (consume('*')) {
val = clamp(val * eval_prim());
} else if (consume('/')) {
int rhs = eval_prim();
val = rhs ? val / rhs : 0;
} else if (consume('%')) {
int rhs = eval_prim();
val = rhs ? val % rhs : 0;
} else {
break;
}
}
return val;
}
static int eval_add(void) {
int val = eval_mul();
for (;;) {
if (consume('+'))
val = clamp(val + eval_mul());
else if (consume('-'))
val = clamp(val - eval_mul());
else
break;
}
return val;
}
static int eval_bit(void) {
int val = eval_add();
for (;;) {
if (consume('&'))
val = val & eval_add();
else if (consume('|'))
val = val | eval_add();
else if (consume('^'))
val = val ^ eval_add();
else
break;
}
return val;
}
static int eval_compare(void) {
int val = eval_bit();
for (;;) {
if (consume('<')) {
if (consume('='))
val = val <= eval_bit() ? 1 : 0;
else
val = val < eval_bit() ? 1 : 0;
} else if (consume('>')) {
if (consume('='))
val = val >= eval_bit() ? 1 : 0;
else
val = val > eval_bit() ? 1 : 0;
} else {
break;
}
}
return val;
}
static int eval_expr(void) {
int val = eval_compare();
for (;;) {
if (consume('=')) {
val = val == eval_compare() ? 1 : 0;
} else if (consume('\\')) {
val = val != eval_compare() ? 1 : 0;
} else {
break;
}
}
return val;
}
static int eval_condition(const char *expr) {
eval_input = expr;
eval_result = NULL;
eval_result_size = 0;
if (!setjmp(eval_jmp_buf)) {
return eval_expr();
} else {
return 0;
}
}
boolean dbg_evaluate(const char *expr, char *result, size_t result_size) {
eval_input = expr;
eval_result = result;
eval_result_size = result_size;
if (!setjmp(eval_jmp_buf)) {
int val = eval_expr();
expect('\0');
snprintf(result, result_size, "%d", val);
return true;
} else {
return false;
}
}
static PhysicalBreakpoint *find_physical_breakpoint(int page, int addr) {
for (Breakpoint *bp = breakpoints; bp; bp = bp->next) {
if (bp->phys->page == page && bp->phys->addr == addr)
return bp->phys;
}
return NULL;
}
Breakpoint *dbg_set_breakpoint(int page, int addr, boolean is_internal) {
dridata *dfile = ald_getdata(DRIFILE_SCO, page);
if (!dfile)
return NULL;
if (addr < 0 || addr >= dfile->size) {
ald_freedata(dfile);
return NULL;
}
PhysicalBreakpoint *phys;
if (dfile->data[addr] == BREAKPOINT) {
phys = find_physical_breakpoint(page, addr);
if (!phys)
SYSERROR("Illegal BREAKPOINT instruction");
phys->refcnt++;
} else {
phys = calloc(1, sizeof(PhysicalBreakpoint));
phys->page = page;
phys->addr = addr;
phys->refcnt = 1;
phys->restore_op = dfile->data[addr];
}
Breakpoint *bp = calloc(1, sizeof(Breakpoint));
bp->no = is_internal ? INTERNAL_BREAKPOINT_NO : next_breakpoint_no++;
bp->phys = phys;
bp->dfile = dfile;
bp->next = breakpoints;
breakpoints = bp;
dfile->data[addr] = BREAKPOINT;
return bp;
}
boolean dbg_set_breakpoint_condition(Breakpoint *bp, const char *condition, char *err, size_t errsize) {
if (!dbg_evaluate(condition, err, errsize))
return false;
if (bp->condition)
free(bp->condition);
bp->condition = strdup(condition);
return true;
}
static Breakpoint *breakpoint_free(Breakpoint *bp) {
assert(bp->dfile->data[bp->phys->addr] == BREAKPOINT);
assert(bp->phys->refcnt > 0);
if (--bp->phys->refcnt == 0) {
bp->dfile->data[bp->phys->addr] = bp->phys->restore_op;
free(bp->phys);
}
if (bp->condition)
free(bp->condition);
ald_freedata(bp->dfile);
Breakpoint *next = bp->next;
free(bp);
return next;
}
boolean dbg_delete_breakpoint(int no) {
for (Breakpoint **p = &breakpoints; *p; p = &(*p)->next) {
if ((*p)->no == no) {
*p = breakpoint_free(*p);
return true;
}
}
return false;
}
void dbg_delete_breakpoints_in_page(int page) {
Breakpoint **p = &breakpoints;
while (*p) {
if ((*p)->phys->page == page)
*p = breakpoint_free(*p);
else
p = &(*p)->next;
}
}
uint8_t dbg_handle_breakpoint(int page, int addr) {
uint8_t restore_op = BREAKPOINT;
for (Breakpoint *bp = breakpoints; bp; bp = bp->next) {
if (bp->phys->page != page || bp->phys->addr != addr)
continue;
restore_op = bp->phys->restore_op;
if (bp->condition && !eval_condition(bp->condition))
continue;
dbg_state = bp->no == INTERNAL_BREAKPOINT_NO ?
DBG_STOPPED_NEXT : DBG_STOPPED_BREAKPOINT;
dbg_main(bp->no); // this may destroy bp
return restore_op;
}
if (restore_op == BREAKPOINT)
SYSERROR("Illegal BREAKPOINT instruction");
return restore_op;
}
static void set_stack_frame(StackFrame *frame, int page, int addr, boolean is_return_addr) {
frame->page = page;
frame->addr = addr;
frame->src = dsym_page2src(symbols, page);
// For return addresses, search with (addr - 1) so that the function call's
// line number will be returned.
frame->line = dsym_addr2line(symbols, page, is_return_addr ? addr - 1 : addr);
frame->name = dsym_addr2func(symbols, page, is_return_addr ? addr - 1 : addr);
}
StackTrace *dbg_stack_trace(void) {
int page = nact->current_page;
int cap = 16;
StackTrace *trace = malloc(sizeof(StackTrace) + cap * sizeof(StackFrame));
set_stack_frame(&trace->frames[0], page, nact->current_addr, false);
trace->nr_frame = 1;
struct stack_frame_info *sfi = NULL;
while ((sfi = sl_next_stack_frame(sfi)) != NULL) {
if (sfi->tag != STACK_NEARCALL && sfi->tag != STACK_FARCALL)
continue;
if (trace->nr_frame >= cap) {
cap *= 2;
trace = realloc(trace, sizeof(StackTrace) + cap * sizeof(StackFrame));
}
if (sfi->tag == STACK_FARCALL)
page = sfi->page;
set_stack_frame(&trace->frames[trace->nr_frame++], page, sfi->addr, true);
}
return trace;
}
void dbg_stepin(void) {
step_exec_state.page = nact->current_page;
step_exec_state.line = dsym_addr2line(symbols, step_exec_state.page, nact->current_addr);
dbg_state = DBG_STOPPED_STEP;
}
static boolean should_continue_step(void) {
if (step_exec_state.line < 0)
return false; // line info was not available
return step_exec_state.page == nact->current_page
&& step_exec_state.line == dsym_addr2line(symbols, step_exec_state.page, nact->current_addr);
}
void dbg_stepout(void) {
// Set an internal breakpoint at the return address of current frame.
struct stack_frame_info *sfi = NULL;
while ((sfi = sl_next_stack_frame(sfi)) != NULL) {
switch (sfi->tag) {
case STACK_NEARCALL:
internal_breakpoint = dbg_set_breakpoint(nact->current_page, sfi->addr, true);
return;
case STACK_FARCALL:
internal_breakpoint = dbg_set_breakpoint(sfi->page, sfi->addr, true);
return;
}
}
// No parent frame found, continue execution.
}
static int get_retaddr_if_funcall(void) {
int orig_addr = sl_getIndex();
int retaddr = -1;
assert(nact->current_page == sl_getPage());
sl_jmpNear(nact->current_addr);
int c0 = sl_getc();
if (c0 == BREAKPOINT) {
PhysicalBreakpoint *bp = find_physical_breakpoint(nact->current_page, nact->current_addr);
if (bp)
c0 = bp->restore_op;
else
WARNING("Illegal BREAKPOINT instruction");
}
switch (c0) {
case '%':
if (getCaliValue() != 0)
retaddr = sl_getIndex();
break;
case '\\':
if (sl_getaddr() != 0)
retaddr = sl_getIndex();
break;
case '~':
{
int page = sl_getw();
if (page != 0 && page != 0xffff) {
sl_getaddr();
retaddr = sl_getIndex();
}
}
break;
}
sl_jmpNear(orig_addr);
return retaddr;
}
static void do_next(void) {
assert(dbg_state == DBG_STOPPED_NEXT);
int retaddr = get_retaddr_if_funcall();
if (retaddr >= 0) {
internal_breakpoint = dbg_set_breakpoint(step_exec_state.page, retaddr, true);
dbg_state = DBG_RUNNING;
}
}
void dbg_next(void) {
step_exec_state.page = nact->current_page;
step_exec_state.line = dsym_addr2line(symbols, step_exec_state.page, nact->current_addr);
dbg_state = DBG_STOPPED_NEXT;
do_next();
}
static boolean should_continue_next(void) {
if (!should_continue_step())
return false;
do_next();
return true;
}
void dbg_main(int bp_no) {
if (internal_breakpoint) {
dbg_delete_breakpoint(INTERNAL_BREAKPOINT_NO);
internal_breakpoint = NULL;
}
switch (dbg_state) {
case DBG_STOPPED_STEP:
if (should_continue_step())
return;
break;
case DBG_STOPPED_NEXT:
if (should_continue_next())
return;
break;
default:
break;
}
dbg_impl->repl(bp_no);
}
void dbg_onsleep(void) {
if (dbg_impl)
dbg_impl->onsleep();
}
void dbg_on_palette_change(void) {
if (dbg_impl && dbg_impl->on_palette_change)
dbg_impl->on_palette_change();
}
boolean dbg_console_vprintf(int lv, const char *format, va_list ap) {
if (!dbg_impl || !dbg_impl->console_output)
return false;
char buf[1024];
vsnprintf(buf, sizeof(buf), format, ap);
dbg_impl->console_output(lv, buf);
return true;
}