Merge branch 'pfalcon-vm-alloca'
This commit is contained in:
commit
c7969857f4
15
py/bc.h
15
py/bc.h
@ -36,8 +36,21 @@ typedef struct _mp_exc_stack {
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byte opcode;
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} mp_exc_stack_t;
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typedef struct _mp_code_state {
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const byte *code_info;
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const byte *ip;
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mp_obj_t *sp;
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// bit 0 is saved currently_in_except_block value
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mp_exc_stack_t *exc_sp;
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uint n_state;
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// Variable-length
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mp_obj_t state[0];
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// Variable-length, never accessed by name, only as (void*)(state + n_state)
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//mp_exc_stack_t exc_state[0];
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} mp_code_state;
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mp_vm_return_kind_t mp_execute_bytecode(const byte *code, const mp_obj_t *args, uint n_args, const mp_obj_t *args2, uint n_args2, mp_obj_t *ret);
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mp_vm_return_kind_t mp_execute_bytecode2(const byte *code_info, const byte **ip_in_out, mp_obj_t *fastn, mp_obj_t **sp_in_out, mp_exc_stack_t *exc_stack, mp_exc_stack_t **exc_sp_in_out, volatile mp_obj_t inject_exc);
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mp_vm_return_kind_t mp_execute_bytecode2(mp_code_state *code_state, volatile mp_obj_t inject_exc);
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void mp_bytecode_print(const byte *code, int len);
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void mp_bytecode_print2(const byte *code, int len);
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@ -82,42 +82,31 @@ mp_obj_t mp_obj_new_gen_wrap(mp_obj_t fun) {
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typedef struct _mp_obj_gen_instance_t {
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mp_obj_base_t base;
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mp_obj_dict_t *globals;
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const byte *code_info;
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const byte *ip;
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mp_obj_t *sp;
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// bit 0 is saved currently_in_except_block value
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mp_exc_stack_t *exc_sp;
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uint n_state;
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// Variable-length
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mp_obj_t state[0];
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// Variable-length, never accessed by name, only as (void*)(state + n_state)
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//mp_exc_stack_t exc_state[0];
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mp_code_state code_state;
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} mp_obj_gen_instance_t;
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void gen_instance_print(void (*print)(void *env, const char *fmt, ...), void *env, mp_obj_t self_in, mp_print_kind_t kind) {
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mp_obj_gen_instance_t *self = self_in;
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print(env, "<generator object '%s' at %p>", mp_obj_code_get_name(self->code_info), self_in);
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print(env, "<generator object '%s' at %p>", mp_obj_code_get_name(self->code_state.code_info), self_in);
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}
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mp_vm_return_kind_t mp_obj_gen_resume(mp_obj_t self_in, mp_obj_t send_value, mp_obj_t throw_value, mp_obj_t *ret_val) {
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assert(MP_OBJ_IS_TYPE(self_in, &mp_type_gen_instance));
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mp_obj_gen_instance_t *self = self_in;
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if (self->ip == 0) {
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if (self->code_state.ip == 0) {
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*ret_val = MP_OBJ_STOP_ITERATION;
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return MP_VM_RETURN_NORMAL;
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}
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if (self->sp == self->state - 1) {
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if (self->code_state.sp == self->code_state.state - 1) {
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if (send_value != mp_const_none) {
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nlr_raise(mp_obj_new_exception_msg(&mp_type_TypeError, "can't send non-None value to a just-started generator"));
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}
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} else {
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*self->sp = send_value;
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*self->code_state.sp = send_value;
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}
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mp_obj_dict_t *old_globals = mp_globals_get();
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mp_globals_set(self->globals);
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mp_vm_return_kind_t ret_kind = mp_execute_bytecode2(self->code_info, &self->ip,
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&self->state[self->n_state - 1], &self->sp, (mp_exc_stack_t*)(self->state + self->n_state),
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&self->exc_sp, throw_value);
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mp_vm_return_kind_t ret_kind = mp_execute_bytecode2(&self->code_state, throw_value);
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mp_globals_set(old_globals);
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switch (ret_kind) {
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@ -127,17 +116,17 @@ mp_vm_return_kind_t mp_obj_gen_resume(mp_obj_t self_in, mp_obj_t send_value, mp_
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// again and again, leading to side effects.
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// TODO: check how return with value behaves under such conditions
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// in CPython.
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self->ip = 0;
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*ret_val = *self->sp;
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self->code_state.ip = 0;
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*ret_val = *self->code_state.sp;
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break;
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case MP_VM_RETURN_YIELD:
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*ret_val = *self->sp;
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*ret_val = *self->code_state.sp;
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break;
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case MP_VM_RETURN_EXCEPTION:
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self->ip = 0;
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*ret_val = self->state[self->n_state - 1];
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self->code_state.ip = 0;
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*ret_val = self->code_state.state[self->code_state.n_state - 1];
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break;
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default:
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@ -269,32 +258,32 @@ mp_obj_t mp_obj_new_gen_instance(mp_obj_dict_t *globals, const byte *bytecode,
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mp_obj_gen_instance_t *o = m_new_obj_var(mp_obj_gen_instance_t, byte, n_state * sizeof(mp_obj_t) + n_exc_stack * sizeof(mp_exc_stack_t));
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o->base.type = &mp_type_gen_instance;
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o->globals = globals;
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o->code_info = code_info;
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o->sp = &o->state[0] - 1; // sp points to top of stack, which starts off 1 below the state
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o->exc_sp = (mp_exc_stack_t*)(o->state + n_state) - 1;
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o->n_state = n_state;
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o->code_state.code_info = code_info;
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o->code_state.sp = &o->code_state.state[0] - 1; // sp points to top of stack, which starts off 1 below the state
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o->code_state.exc_sp = (mp_exc_stack_t*)(o->code_state.state + n_state) - 1;
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o->code_state.n_state = n_state;
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// copy args to end of state array, in reverse (that's how mp_execute_bytecode2 needs it)
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for (uint i = 0; i < n_args; i++) {
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o->state[n_state - 1 - i] = args[i];
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o->code_state.state[n_state - 1 - i] = args[i];
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}
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for (uint i = 0; i < n_args2; i++) {
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o->state[n_state - 1 - n_args - i] = args2[i];
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o->code_state.state[n_state - 1 - n_args - i] = args2[i];
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}
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// set rest of state to MP_OBJ_NULL
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for (uint i = 0; i < n_state - n_args - n_args2; i++) {
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o->state[i] = MP_OBJ_NULL;
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o->code_state.state[i] = MP_OBJ_NULL;
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}
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// bytecode prelude: initialise closed over variables
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for (uint n_local = *bytecode++; n_local > 0; n_local--) {
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uint local_num = *bytecode++;
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o->state[n_state - 1 - local_num] = mp_obj_new_cell(o->state[n_state - 1 - local_num]);
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o->code_state.state[n_state - 1 - local_num] = mp_obj_new_cell(o->code_state.state[n_state - 1 - local_num]);
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}
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// set ip to start of actual byte code
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o->ip = bytecode;
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o->code_state.ip = bytecode;
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return o;
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}
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103
py/vm.c
103
py/vm.c
@ -28,6 +28,7 @@
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#include <stdio.h>
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#include <string.h>
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#include <assert.h>
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#include <alloca.h>
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#include "mpconfig.h"
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#include "nlr.h"
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@ -40,11 +41,10 @@
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#include "bc.h"
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#include "objgenerator.h"
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// With these macros you can tune the maximum number of state slots
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// With these macros you can tune the maximum number of function state bytes
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// that will be allocated on the stack. Any function that needs more
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// than this will use the heap.
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#define VM_MAX_STATE_ON_STACK (10)
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#define VM_MAX_EXC_STATE_ON_STACK (4)
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#define VM_MAX_STATE_ON_STACK (10 * sizeof(machine_uint_t))
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#define DETECT_VM_STACK_OVERFLOW (0)
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#if 0
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@ -117,54 +117,54 @@ mp_vm_return_kind_t mp_execute_bytecode(const byte *code, const mp_obj_t *args,
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ip += 4;
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// allocate state for locals and stack
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mp_obj_t temp_state[VM_MAX_STATE_ON_STACK];
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mp_obj_t *state = &temp_state[0];
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#if DETECT_VM_STACK_OVERFLOW
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n_state += 1;
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#endif
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if (n_state > VM_MAX_STATE_ON_STACK) {
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state = m_new(mp_obj_t, n_state);
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}
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mp_obj_t *sp = &state[0] - 1;
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// allocate state for exceptions
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mp_exc_stack_t exc_state[VM_MAX_EXC_STATE_ON_STACK];
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mp_exc_stack_t *exc_stack = &exc_state[0];
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if (n_exc_stack > VM_MAX_EXC_STATE_ON_STACK) {
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exc_stack = m_new(mp_exc_stack_t, n_exc_stack);
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int state_size = n_state * sizeof(mp_obj_t) + n_exc_stack * sizeof(mp_exc_stack_t);
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mp_code_state *code_state;
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if (state_size > VM_MAX_STATE_ON_STACK) {
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code_state = m_new_obj_var(mp_code_state, byte, state_size);
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} else {
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code_state = alloca(sizeof(mp_code_state) + state_size);
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}
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mp_exc_stack_t *exc_sp = &exc_stack[0] - 1;
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code_state->code_info = code;
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code_state->sp = &code_state->state[0] - 1;
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code_state->exc_sp = (mp_exc_stack_t*)(code_state->state + n_state) - 1;
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code_state->n_state = n_state;
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// init args
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for (uint i = 0; i < n_args; i++) {
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state[n_state - 1 - i] = args[i];
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code_state->state[n_state - 1 - i] = args[i];
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}
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for (uint i = 0; i < n_args2; i++) {
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state[n_state - 1 - n_args - i] = args2[i];
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code_state->state[n_state - 1 - n_args - i] = args2[i];
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}
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// set rest of state to MP_OBJ_NULL
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for (uint i = 0; i < n_state - n_args - n_args2; i++) {
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state[i] = MP_OBJ_NULL;
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code_state->state[i] = MP_OBJ_NULL;
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}
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// bytecode prelude: initialise closed over variables
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for (uint n_local = *ip++; n_local > 0; n_local--) {
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uint local_num = *ip++;
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state[n_state - 1 - local_num] = mp_obj_new_cell(state[n_state - 1 - local_num]);
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code_state->state[n_state - 1 - local_num] = mp_obj_new_cell(code_state->state[n_state - 1 - local_num]);
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}
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code_state->ip = ip;
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// execute the byte code
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mp_vm_return_kind_t vm_return_kind = mp_execute_bytecode2(code, &ip, &state[n_state - 1], &sp, exc_stack, &exc_sp, MP_OBJ_NULL);
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mp_vm_return_kind_t vm_return_kind = mp_execute_bytecode2(code_state, MP_OBJ_NULL);
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#if DETECT_VM_STACK_OVERFLOW
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if (vm_return_kind == MP_VM_RETURN_NORMAL) {
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if (sp < state) {
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printf("VM stack underflow: " INT_FMT "\n", sp - state);
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if (code_state->sp < code_state->state) {
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printf("VM stack underflow: " INT_FMT "\n", code_state->sp - code_state->state);
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assert(0);
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}
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}
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// We can't check the case when an exception is returned in state[n_state - 1]
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// and there are no arguments, because in this case our detection slot may have
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// been overwritten by the returned exception (which is allowed).
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@ -172,13 +172,13 @@ mp_vm_return_kind_t mp_execute_bytecode(const byte *code, const mp_obj_t *args,
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// Just check to see that we have at least 1 null object left in the state.
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bool overflow = true;
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for (uint i = 0; i < n_state - n_args - n_args2; i++) {
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if (state[i] == MP_OBJ_NULL) {
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if (code_state->state[i] == MP_OBJ_NULL) {
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overflow = false;
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break;
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}
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}
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if (overflow) {
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printf("VM stack overflow state=%p n_state+1=" UINT_FMT "\n", state, n_state);
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printf("VM stack overflow state=%p n_state+1=" UINT_FMT "\n", code_state->state, n_state);
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assert(0);
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}
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}
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@ -188,13 +188,13 @@ mp_vm_return_kind_t mp_execute_bytecode(const byte *code, const mp_obj_t *args,
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switch (vm_return_kind) {
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case MP_VM_RETURN_NORMAL:
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// return value is in *sp
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*ret = *sp;
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*ret = *code_state->sp;
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ret_kind = MP_VM_RETURN_NORMAL;
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break;
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case MP_VM_RETURN_EXCEPTION:
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// return value is in state[n_state - 1]
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*ret = state[n_state - 1];
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*ret = code_state->state[n_state - 1];
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ret_kind = MP_VM_RETURN_EXCEPTION;
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break;
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@ -203,18 +203,13 @@ mp_vm_return_kind_t mp_execute_bytecode(const byte *code, const mp_obj_t *args,
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assert(0);
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*ret = mp_const_none;
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ret_kind = MP_VM_RETURN_NORMAL;
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break;
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}
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// free the state if it was allocated on the heap
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if (n_state > VM_MAX_STATE_ON_STACK) {
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m_free(state, n_state);
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if (state_size > VM_MAX_STATE_ON_STACK) {
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m_del_var(mp_code_state, byte, state_size, code_state);
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}
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// free the exception state if it was allocated on the heap
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if (n_exc_stack > VM_MAX_EXC_STATE_ON_STACK) {
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m_free(exc_stack, n_exc_stack);
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}
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return ret_kind;
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}
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@ -224,10 +219,7 @@ mp_vm_return_kind_t mp_execute_bytecode(const byte *code, const mp_obj_t *args,
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// MP_VM_RETURN_NORMAL, sp valid, return value in *sp
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// MP_VM_RETURN_YIELD, ip, sp valid, yielded value in *sp
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// MP_VM_RETURN_EXCEPTION, exception in fastn[0]
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mp_vm_return_kind_t mp_execute_bytecode2(const byte *code_info, const byte **ip_in_out,
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mp_obj_t *fastn, mp_obj_t **sp_in_out,
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mp_exc_stack_t *exc_stack, mp_exc_stack_t **exc_sp_in_out,
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volatile mp_obj_t inject_exc) {
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mp_vm_return_kind_t mp_execute_bytecode2(mp_code_state *code_state, volatile mp_obj_t inject_exc) {
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#if MICROPY_OPT_COMPUTED_GOTO
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#include "vmentrytable.h"
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#define DISPATCH() do { \
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@ -249,11 +241,15 @@ mp_vm_return_kind_t mp_execute_bytecode2(const byte *code_info, const byte **ip_
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// loop and the exception handler, leading to very obscure bugs.
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#define RAISE(o) do { nlr_pop(); nlr.ret_val = o; goto exception_handler; } while(0)
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// Pointers which are constant for particular invocation of mp_execute_bytecode2()
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mp_obj_t *const fastn = &code_state->state[code_state->n_state - 1];
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mp_exc_stack_t *const exc_stack = (mp_exc_stack_t*)(code_state->state + code_state->n_state);
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// variables that are visible to the exception handler (declared volatile)
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volatile bool currently_in_except_block = MP_TAGPTR_TAG(*exc_sp_in_out); // 0 or 1, to detect nested exceptions
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mp_exc_stack_t *volatile exc_sp = MP_TAGPTR_PTR(*exc_sp_in_out); // stack grows up, exc_sp points to top of stack
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const byte *volatile save_ip = *ip_in_out; // this is so we can access ip in the exception handler without making ip volatile (which means the compiler can't keep it in a register in the main loop)
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mp_obj_t *volatile save_sp = *sp_in_out; // this is so we can access sp in the exception handler when needed
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volatile bool currently_in_except_block = MP_TAGPTR_TAG(code_state->exc_sp); // 0 or 1, to detect nested exceptions
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mp_exc_stack_t *volatile exc_sp = MP_TAGPTR_PTR(code_state->exc_sp); // stack grows up, exc_sp points to top of stack
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const byte *volatile save_ip = code_state->ip; // this is so we can access ip in the exception handler without making ip volatile (which means the compiler can't keep it in a register in the main loop)
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mp_obj_t *volatile save_sp = code_state->sp; // this is so we can access sp in the exception handler when needed
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// outer exception handling loop
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for (;;) {
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@ -261,8 +257,8 @@ mp_vm_return_kind_t mp_execute_bytecode2(const byte *code_info, const byte **ip_
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outer_dispatch_loop:
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if (nlr_push(&nlr) == 0) {
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// local variables that are not visible to the exception handler
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const byte *ip = *ip_in_out;
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mp_obj_t *sp = *sp_in_out;
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const byte *ip = code_state->ip;
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mp_obj_t *sp = code_state->sp;
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machine_uint_t unum;
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mp_obj_t obj_shared;
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@ -905,7 +901,7 @@ unwind_return:
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exc_sp--;
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}
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nlr_pop();
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*sp_in_out = sp;
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code_state->sp = sp;
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assert(exc_sp == exc_stack - 1);
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return MP_VM_RETURN_NORMAL;
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@ -936,9 +932,9 @@ unwind_return:
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ENTRY(MP_BC_YIELD_VALUE):
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yield:
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nlr_pop();
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*ip_in_out = ip;
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*sp_in_out = sp;
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*exc_sp_in_out = MP_TAGPTR_MAKE(exc_sp, currently_in_except_block);
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code_state->ip = ip;
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code_state->sp = sp;
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code_state->exc_sp = MP_TAGPTR_MAKE(exc_sp, currently_in_except_block);
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return MP_VM_RETURN_YIELD;
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ENTRY(MP_BC_YIELD_FROM): {
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@ -1032,8 +1028,8 @@ exception_handler:
|
||||
const byte *ip = save_ip + 1;
|
||||
machine_uint_t unum;
|
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DECODE_ULABEL; // the jump offset if iteration finishes; for labels are always forward
|
||||
*ip_in_out = ip + unum; // jump to after for-block
|
||||
*sp_in_out = save_sp - 1; // pop the exhausted iterator
|
||||
code_state->ip = ip + unum; // jump to after for-block
|
||||
code_state->sp = save_sp - 1; // pop the exhausted iterator
|
||||
goto outer_dispatch_loop; // continue with dispatch loop
|
||||
}
|
||||
|
||||
@ -1042,6 +1038,7 @@ exception_handler:
|
||||
// But consider how to handle nested exceptions.
|
||||
// TODO need a better way of not adding traceback to constant objects (right now, just GeneratorExit_obj and MemoryError_obj)
|
||||
if (mp_obj_is_exception_instance(nlr.ret_val) && nlr.ret_val != &mp_const_GeneratorExit_obj && nlr.ret_val != &mp_const_MemoryError_obj) {
|
||||
const byte *code_info = code_state->code_info;
|
||||
machine_uint_t code_info_size = code_info[0] | (code_info[1] << 8) | (code_info[2] << 16) | (code_info[3] << 24);
|
||||
qstr source_file = code_info[4] | (code_info[5] << 8) | (code_info[6] << 16) | (code_info[7] << 24);
|
||||
qstr block_name = code_info[8] | (code_info[9] << 8) | (code_info[10] << 16) | (code_info[11] << 24);
|
||||
@ -1072,7 +1069,7 @@ exception_handler:
|
||||
currently_in_except_block = 1;
|
||||
|
||||
// catch exception and pass to byte code
|
||||
*ip_in_out = exc_sp->handler;
|
||||
code_state->ip = exc_sp->handler;
|
||||
mp_obj_t *sp = MP_TAGPTR_PTR(exc_sp->val_sp);
|
||||
// save this exception in the stack so it can be used in a reraise, if needed
|
||||
exc_sp->prev_exc = nlr.ret_val;
|
||||
@ -1080,7 +1077,7 @@ exception_handler:
|
||||
PUSH(mp_const_none);
|
||||
PUSH(nlr.ret_val);
|
||||
PUSH(mp_obj_get_type(nlr.ret_val));
|
||||
*sp_in_out = sp;
|
||||
code_state->sp = sp;
|
||||
|
||||
} else {
|
||||
// propagate exception to higher level
|
||||
|
Loading…
x
Reference in New Issue
Block a user