/* Parse expressions for GDB.
- Copyright (C) 1986-2018 Free Software Foundation, Inc.
+ Copyright (C) 1986-2019 Free Software Foundation, Inc.
Modified from expread.y by the Department of Computer Science at the
State University of New York at Buffalo, 1991.
};
\f
/* Global variables declared in parser-defs.h (and commented there). */
-const struct block *expression_context_block;
-CORE_ADDR expression_context_pc;
innermost_block_tracker innermost_block;
int arglist_len;
static struct type_stack type_stack;
const char *lexptr;
const char *prev_lexptr;
-int paren_depth;
-int comma_terminates;
/* True if parsing an expression to attempt completion. */
int parse_completion;
static expression_up parse_exp_in_context (const char **, CORE_ADDR,
const struct block *, int,
- int, int *);
-static expression_up parse_exp_in_context_1 (const char **, CORE_ADDR,
- const struct block *, int,
- int, int *);
+ int, int *,
+ innermost_block_tracker_types);
+
+static void increase_expout_size (struct expr_builder *ps, size_t lenelt);
+
/* Documented at it's declaration. */
/* See definition in parser-defs.h. */
-parser_state::parser_state (size_t initial_size,
- const struct language_defn *lang,
+expr_builder::expr_builder (const struct language_defn *lang,
struct gdbarch *gdbarch)
- : expout_size (initial_size),
+ : expout_size (10),
expout (XNEWVAR (expression,
(sizeof (expression)
+ EXP_ELEM_TO_BYTES (expout_size)))),
}
expression_up
-parser_state::release ()
+expr_builder::release ()
{
/* Record the actual number of expression elements, and then
reallocate the expression memory so that we free up any
a register through here. */
static void
-write_exp_elt (struct parser_state *ps, const union exp_element *expelt)
+write_exp_elt (struct expr_builder *ps, const union exp_element *expelt)
{
if (ps->expout_ptr >= ps->expout_size)
{
}
void
-write_exp_elt_opcode (struct parser_state *ps, enum exp_opcode expelt)
+write_exp_elt_opcode (struct expr_builder *ps, enum exp_opcode expelt)
{
union exp_element tmp;
}
void
-write_exp_elt_sym (struct parser_state *ps, struct symbol *expelt)
+write_exp_elt_sym (struct expr_builder *ps, struct symbol *expelt)
{
union exp_element tmp;
}
void
-write_exp_elt_msym (struct parser_state *ps, minimal_symbol *expelt)
+write_exp_elt_msym (struct expr_builder *ps, minimal_symbol *expelt)
{
union exp_element tmp;
}
void
-write_exp_elt_block (struct parser_state *ps, const struct block *b)
+write_exp_elt_block (struct expr_builder *ps, const struct block *b)
{
union exp_element tmp;
}
void
-write_exp_elt_objfile (struct parser_state *ps, struct objfile *objfile)
+write_exp_elt_objfile (struct expr_builder *ps, struct objfile *objfile)
{
union exp_element tmp;
}
void
-write_exp_elt_longcst (struct parser_state *ps, LONGEST expelt)
+write_exp_elt_longcst (struct expr_builder *ps, LONGEST expelt)
{
union exp_element tmp;
}
void
-write_exp_elt_floatcst (struct parser_state *ps, const gdb_byte expelt[16])
+write_exp_elt_floatcst (struct expr_builder *ps, const gdb_byte expelt[16])
{
union exp_element tmp;
int index;
}
void
-write_exp_elt_type (struct parser_state *ps, struct type *expelt)
+write_exp_elt_type (struct expr_builder *ps, struct type *expelt)
{
union exp_element tmp;
}
void
-write_exp_elt_intern (struct parser_state *ps, struct internalvar *expelt)
+write_exp_elt_intern (struct expr_builder *ps, struct internalvar *expelt)
{
union exp_element tmp;
void
-write_exp_string (struct parser_state *ps, struct stoken str)
+write_exp_string (struct expr_builder *ps, struct stoken str)
{
int len = str.length;
size_t lenelt;
long constant, followed by the contents of the string. */
void
-write_exp_string_vector (struct parser_state *ps, int type,
+write_exp_string_vector (struct expr_builder *ps, int type,
struct stoken_vector *vec)
{
int i, len;
either end of the bitstring. */
void
-write_exp_bitstring (struct parser_state *ps, struct stoken str)
+write_exp_bitstring (struct expr_builder *ps, struct stoken str)
{
int bits = str.length; /* length in bits */
int len = (bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
CORE_ADDR *address_p)
{
bound_minimal_symbol bound_msym = {msymbol, objfile};
- struct gdbarch *gdbarch = get_objfile_arch (objfile);
struct obj_section *section = MSYMBOL_OBJ_SECTION (objfile, msymbol);
enum minimal_symbol_type type = MSYMBOL_TYPE (msymbol);
the expression. */
void
-write_exp_msymbol (struct parser_state *ps,
+write_exp_msymbol (struct expr_builder *ps,
struct bound_minimal_symbol bound_msym)
{
write_exp_elt_opcode (ps, OP_VAR_MSYM_VALUE);
expression. This is used when completing on field names. */
void
-mark_struct_expression (struct parser_state *ps)
+mark_struct_expression (struct expr_builder *ps)
{
gdb_assert (parse_completion
&& expout_tag_completion_type == TYPE_CODE_UNDEF);
/* Handle tokens that refer to machine registers:
$ followed by a register name. */
- i = user_reg_map_name_to_regnum (parse_gdbarch (ps),
+ i = user_reg_map_name_to_regnum (ps->gdbarch (),
str.ptr + 1, str.length - 1);
if (i >= 0)
goto handle_register;
/* On some systems, such as HP-UX and hppa-linux, certain system routines
have names beginning with $ or $$. Check for those, first. */
- sym = lookup_symbol (copy_name (str), (struct block *) NULL,
- VAR_DOMAIN, NULL);
+ sym = lookup_symbol (copy_name (str), NULL, VAR_DOMAIN, NULL);
if (sym.symbol)
{
write_exp_elt_opcode (ps, OP_VAR_VALUE);
str.ptr++;
write_exp_string (ps, str);
write_exp_elt_opcode (ps, OP_REGISTER);
- innermost_block.update (expression_context_block,
+ innermost_block.update (ps->expression_context_block,
INNERMOST_BLOCK_FOR_REGISTERS);
return;
}
int
prefixify_expression (struct expression *expr)
{
+ gdb_assert (expr->nelts > 0);
int len = sizeof (struct expression) + EXP_ELEM_TO_BYTES (expr->nelts);
struct expression *temp;
int inpos = expr->nelts, outpos = 0;
case UNOP_CHR:
case UNOP_FLOAT:
case UNOP_HIGH:
+ case UNOP_KIND:
case UNOP_ODD:
case UNOP_ORD:
case UNOP_TRUNC:
expression_up
parse_exp_1 (const char **stringptr, CORE_ADDR pc, const struct block *block,
- int comma)
+ int comma, innermost_block_tracker_types tracker_types)
{
- return parse_exp_in_context (stringptr, pc, block, comma, 0, NULL);
-}
-
-static expression_up
-parse_exp_in_context (const char **stringptr, CORE_ADDR pc,
- const struct block *block,
- int comma, int void_context_p, int *out_subexp)
-{
- return parse_exp_in_context_1 (stringptr, pc, block, comma,
- void_context_p, out_subexp);
+ return parse_exp_in_context (stringptr, pc, block, comma, 0, NULL,
+ tracker_types);
}
/* As for parse_exp_1, except that if VOID_CONTEXT_P, then
is left untouched. */
static expression_up
-parse_exp_in_context_1 (const char **stringptr, CORE_ADDR pc,
- const struct block *block,
- int comma, int void_context_p, int *out_subexp)
+parse_exp_in_context (const char **stringptr, CORE_ADDR pc,
+ const struct block *block,
+ int comma, int void_context_p, int *out_subexp,
+ innermost_block_tracker_types tracker_types)
{
const struct language_defn *lang = NULL;
int subexp;
lexptr = *stringptr;
prev_lexptr = NULL;
- paren_depth = 0;
- type_stack.depth = 0;
+ type_stack.elements.clear ();
expout_last_struct = -1;
expout_tag_completion_type = TYPE_CODE_UNDEF;
expout_completion_name.reset ();
-
- comma_terminates = comma;
+ innermost_block.reset (tracker_types);
if (lexptr == 0 || *lexptr == 0)
error_no_arg (_("expression to compute"));
scoped_restore save_funcall_chain = make_scoped_restore (&funcall_chain,
&funcalls);
- expression_context_block = block;
+ const struct block *expression_context_block = block;
+ CORE_ADDR expression_context_pc = 0;
/* If no context specified, try using the current frame, if any. */
if (!expression_context_block)
expression_context_block = get_selected_block (&expression_context_pc);
else if (pc == 0)
- expression_context_pc = BLOCK_START (expression_context_block);
+ expression_context_pc = BLOCK_ENTRY_PC (expression_context_block);
else
expression_context_pc = pc;
= BLOCKVECTOR_BLOCK (SYMTAB_BLOCKVECTOR (cursal.symtab),
STATIC_BLOCK);
if (expression_context_block)
- expression_context_pc = BLOCK_START (expression_context_block);
+ expression_context_pc = BLOCK_ENTRY_PC (expression_context_block);
}
if (language_mode == language_mode_auto && block != NULL)
and others called from *.y) ensure CURRENT_LANGUAGE gets restored
to the value matching SELECTED_FRAME as set by get_current_arch. */
- parser_state ps (10, lang, get_current_arch ());
+ parser_state ps (lang, get_current_arch (), expression_context_block,
+ expression_context_pc, comma);
scoped_restore_current_language lang_saver;
set_language (lang->la_language);
}
CATCH (except, RETURN_MASK_ALL)
{
- if (! parse_completion)
+ /* If parsing for completion, allow this to succeed; but if no
+ expression elements have been written, then there's nothing
+ to do, so fail. */
+ if (! parse_completion || ps.expout_ptr == 0)
throw_exception (except);
}
END_CATCH
TRY
{
parse_completion = 1;
- exp = parse_exp_in_context (&string, 0, 0, 0, 0, &subexp);
+ exp = parse_exp_in_context (&string, 0, 0, 0, 0, &subexp,
+ INNERMOST_BLOCK_FOR_SYMBOLS);
}
CATCH (except, RETURN_MASK_ERROR)
{
/* Stuff for maintaining a stack of types. Currently just used by C, but
probably useful for any language which declares its types "backwards". */
-/* Ensure that there are HOWMUCH open slots on the type stack STACK. */
-
-static void
-type_stack_reserve (struct type_stack *stack, int howmuch)
-{
- if (stack->depth + howmuch >= stack->size)
- {
- stack->size *= 2;
- if (stack->size < howmuch)
- stack->size = howmuch;
- stack->elements = XRESIZEVEC (union type_stack_elt, stack->elements,
- stack->size);
- }
-}
-
-/* Ensure that there is a single open slot in the global type stack. */
-
-static void
-check_type_stack_depth (void)
-{
- type_stack_reserve (&type_stack, 1);
-}
-
/* A helper function for insert_type and insert_type_address_space.
This does work of expanding the type stack and inserting the new
element, ELEMENT, into the stack at location SLOT. */
static void
insert_into_type_stack (int slot, union type_stack_elt element)
{
- check_type_stack_depth ();
-
- if (slot < type_stack.depth)
- memmove (&type_stack.elements[slot + 1], &type_stack.elements[slot],
- (type_stack.depth - slot) * sizeof (union type_stack_elt));
- type_stack.elements[slot] = element;
- ++type_stack.depth;
+ gdb_assert (slot <= type_stack.elements.size ());
+ type_stack.elements.insert (type_stack.elements.begin () + slot, element);
}
/* Insert a new type, TP, at the bottom of the type stack. If TP is
/* If there is anything on the stack (we know it will be a
tp_pointer), insert the qualifier above it. Otherwise, simply
push this on the top of the stack. */
- if (type_stack.depth && (tp == tp_const || tp == tp_volatile))
+ if (!type_stack.elements.empty () && (tp == tp_const || tp == tp_volatile))
slot = 1;
else
slot = 0;
void
push_type (enum type_pieces tp)
{
- check_type_stack_depth ();
- type_stack.elements[type_stack.depth++].piece = tp;
+ type_stack_elt elt;
+ elt.piece = tp;
+ type_stack.elements.push_back (elt);
}
void
push_type_int (int n)
{
- check_type_stack_depth ();
- type_stack.elements[type_stack.depth++].int_val = n;
+ type_stack_elt elt;
+ elt.int_val = n;
+ type_stack.elements.push_back (elt);
}
/* Insert a tp_space_identifier and the corresponding address space
item. */
void
-insert_type_address_space (struct parser_state *pstate, char *string)
+insert_type_address_space (struct expr_builder *pstate, char *string)
{
union type_stack_elt element;
int slot;
/* If there is anything on the stack (we know it will be a
tp_pointer), insert the address space qualifier above it.
Otherwise, simply push this on the top of the stack. */
- if (type_stack.depth)
+ if (!type_stack.elements.empty ())
slot = 1;
else
slot = 0;
element.piece = tp_space_identifier;
insert_into_type_stack (slot, element);
- element.int_val = address_space_name_to_int (parse_gdbarch (pstate),
+ element.int_val = address_space_name_to_int (pstate->gdbarch (),
string);
insert_into_type_stack (slot, element);
}
enum type_pieces
pop_type (void)
{
- if (type_stack.depth)
- return type_stack.elements[--type_stack.depth].piece;
+ if (!type_stack.elements.empty ())
+ {
+ type_stack_elt elt = type_stack.elements.back ();
+ type_stack.elements.pop_back ();
+ return elt.piece;
+ }
return tp_end;
}
int
pop_type_int (void)
{
- if (type_stack.depth)
- return type_stack.elements[--type_stack.depth].int_val;
+ if (!type_stack.elements.empty ())
+ {
+ type_stack_elt elt = type_stack.elements.back ();
+ type_stack.elements.pop_back ();
+ return elt.int_val;
+ }
/* "Can't happen". */
return 0;
}
/* Pop a type list element from the global type stack. */
-static VEC (type_ptr) *
+static std::vector<struct type *> *
pop_typelist (void)
{
- gdb_assert (type_stack.depth);
- return type_stack.elements[--type_stack.depth].typelist_val;
+ gdb_assert (!type_stack.elements.empty ());
+ type_stack_elt elt = type_stack.elements.back ();
+ type_stack.elements.pop_back ();
+ return elt.typelist_val;
}
/* Pop a type_stack element from the global type stack. */
static struct type_stack *
pop_type_stack (void)
{
- gdb_assert (type_stack.depth);
- return type_stack.elements[--type_stack.depth].stack_val;
+ gdb_assert (!type_stack.elements.empty ());
+ type_stack_elt elt = type_stack.elements.back ();
+ type_stack.elements.pop_back ();
+ return elt.stack_val;
}
/* Append the elements of the type stack FROM to the type stack TO.
struct type_stack *
append_type_stack (struct type_stack *to, struct type_stack *from)
{
- type_stack_reserve (to, from->depth);
-
- memcpy (&to->elements[to->depth], &from->elements[0],
- from->depth * sizeof (union type_stack_elt));
- to->depth += from->depth;
-
+ to->elements.insert (to->elements.end (), from->elements.begin (),
+ from->elements.end ());
return to;
}
void
push_type_stack (struct type_stack *stack)
{
- check_type_stack_depth ();
- type_stack.elements[type_stack.depth++].stack_val = stack;
+ type_stack_elt elt;
+ elt.stack_val = stack;
+ type_stack.elements.push_back (elt);
push_type (tp_type_stack);
}
/* Copy the global type stack into a newly allocated type stack and
return it. The global stack is cleared. The returned type stack
- must be freed with type_stack_cleanup. */
+ must be freed with delete. */
struct type_stack *
get_type_stack (void)
{
- struct type_stack *result = XNEW (struct type_stack);
-
- *result = type_stack;
- type_stack.depth = 0;
- type_stack.size = 0;
- type_stack.elements = NULL;
-
+ struct type_stack *result = new struct type_stack (std::move (type_stack));
+ type_stack.elements.clear ();
return result;
}
-/* A cleanup function that destroys a single type stack. */
-
-void
-type_stack_cleanup (void *arg)
-{
- struct type_stack *stack = (struct type_stack *) arg;
-
- xfree (stack->elements);
- xfree (stack);
-}
-
/* Push a function type with arguments onto the global type stack.
LIST holds the argument types. If the final item in LIST is NULL,
then the function will be varargs. */
void
-push_typelist (VEC (type_ptr) *list)
+push_typelist (std::vector<struct type *> *list)
{
- check_type_stack_depth ();
- type_stack.elements[type_stack.depth++].typelist_val = list;
+ type_stack_elt elt;
+ elt.typelist_val = list;
+ type_stack.elements.push_back (elt);
push_type (tp_function_with_arguments);
}
case tp_function_with_arguments:
{
- VEC (type_ptr) *args = pop_typelist ();
+ std::vector<struct type *> *args = pop_typelist ();
follow_type
= lookup_function_type_with_arguments (follow_type,
- VEC_length (type_ptr, args),
- VEC_address (type_ptr,
- args));
- VEC_free (type_ptr, args);
+ args->size (),
+ args->data ());
}
break;
type_stack = *stack;
follow_type = follow_types (follow_type);
- gdb_assert (type_stack.depth == 0);
+ gdb_assert (type_stack.elements.empty ());
type_stack = save;
}
for (arg = 0; arg < nargs; arg++)
{
- struct type *type = elts[pos + 3 + arg].type;
- struct objfile *objfile = TYPE_OBJFILE (type);
+ struct type *inst_type = elts[pos + 3 + arg].type;
+ struct objfile *inst_objfile = TYPE_OBJFILE (inst_type);
- if (objfile && (*objfile_func) (objfile, data))
+ if (inst_objfile && (*objfile_func) (inst_objfile, data))
return 1;
}
}
return exp_iterate (exp, exp_uses_objfile_iter, objfile);
}
-/* See definition in parser-defs.h. */
+/* Reallocate the `expout' pointer inside PS so that it can accommodate
+ at least LENELT expression elements. This function does nothing if
+ there is enough room for the elements. */
-void
-increase_expout_size (struct parser_state *ps, size_t lenelt)
+static void
+increase_expout_size (struct expr_builder *ps, size_t lenelt)
{
if ((ps->expout_ptr + lenelt) >= ps->expout_size)
{
void
_initialize_parse (void)
{
- type_stack.size = 0;
- type_stack.depth = 0;
- type_stack.elements = NULL;
-
add_setshow_zuinteger_cmd ("expression", class_maintenance,
&expressiondebug,
_("Set expression debugging."),