Files
carbon-lang/toolchain/check/handle_operator.cpp
T
Jon Ross-Perkins 7c7afc9e32 Split out infix and prefix operators to separate node kinds. (#3481)
This leaves a single state for each in the expr loop. I was trying to
think through ways to have per-token states, but they felt sort of
bulky.

Note this is more verbose: but I think the long-term is going to be that
when we start wanting to add handlers, we're going to need to switch to
different names based on the token found. As a consequence, the parse
state logic will end up diverging a little, and we'll just want to align
towards boilerplate handlers.

Short-term, this opens up a path for saying that each parse node
corresponds to precisely one token in success states, and separates out
what were becoming big handler functions in check.
2023-12-13 19:52:20 +00:00

389 lines
14 KiB
C++

// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
// Exceptions. See /LICENSE for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
#include "toolchain/check/context.h"
#include "toolchain/check/convert.h"
namespace Carbon::Check {
auto HandleInfixOperatorAmp(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorAmp");
}
auto HandleInfixOperatorAmpEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorAmpEqual");
}
auto HandleInfixOperatorAs(Context& context, Parse::NodeId parse_node) -> bool {
auto [rhs_node, rhs_id] = context.node_stack().PopExprWithParseNode();
auto [lhs_node, lhs_id] = context.node_stack().PopExprWithParseNode();
auto rhs_type_id = ExprAsType(context, rhs_node, rhs_id);
context.node_stack().Push(
parse_node,
ConvertForExplicitAs(context, parse_node, lhs_id, rhs_type_id));
return true;
}
auto HandleInfixOperatorCaret(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorCaret");
}
auto HandleInfixOperatorCaretEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorCaretEqual");
}
auto HandleInfixOperatorEqual(Context& context, Parse::NodeId parse_node)
-> bool {
auto [rhs_node, rhs_id] = context.node_stack().PopExprWithParseNode();
auto [lhs_node, lhs_id] = context.node_stack().PopExprWithParseNode();
// TODO: handle complex assignment expression such as `a += 1`.
if (auto lhs_cat = SemIR::GetExprCategory(context.sem_ir(), lhs_id);
lhs_cat != SemIR::ExprCategory::DurableRef &&
lhs_cat != SemIR::ExprCategory::Error) {
CARBON_DIAGNOSTIC(AssignmentToNonAssignable, Error,
"Expression is not assignable.");
context.emitter().Emit(lhs_node, AssignmentToNonAssignable);
}
// TODO: Destroy the old value before reinitializing. This will require
// building the destruction code before we build the RHS subexpression.
rhs_id = Initialize(context, parse_node, lhs_id, rhs_id);
context.AddInst(SemIR::Assign{parse_node, lhs_id, rhs_id});
// We model assignment as an expression, so we need to push a value for
// it, even though it doesn't produce a value.
// TODO: Consider changing our parse tree to model assignment as a
// different kind of statement than an expression statement.
context.node_stack().Push(parse_node, lhs_id);
return true;
}
auto HandleInfixOperatorEqualEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorEqualEqual");
}
auto HandleInfixOperatorExclaimEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorExclaimEqual");
}
auto HandleInfixOperatorGreater(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorGreater");
}
auto HandleInfixOperatorGreaterEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorGreaterEqual");
}
auto HandleInfixOperatorGreaterGreater(Context& context,
Parse::NodeId parse_node) -> bool {
return context.TODO(parse_node, "HandleInfixOperatorGreaterGreater");
}
auto HandleInfixOperatorGreaterGreaterEqual(Context& context,
Parse::NodeId parse_node) -> bool {
return context.TODO(parse_node, "HandleInfixOperatorGreaterGreaterEqual");
}
auto HandleInfixOperatorLess(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorLess");
}
auto HandleInfixOperatorLessEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorLessEqual");
}
auto HandleInfixOperatorLessEqualGreater(Context& context,
Parse::NodeId parse_node) -> bool {
return context.TODO(parse_node, "HandleInfixOperatorLessEqualGreater");
}
auto HandleInfixOperatorLessLess(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorLessLess");
}
auto HandleInfixOperatorLessLessEqual(Context& context,
Parse::NodeId parse_node) -> bool {
return context.TODO(parse_node, "HandleInfixOperatorLessLessEqual");
}
auto HandleInfixOperatorMinus(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorMinus");
}
auto HandleInfixOperatorMinusEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorMinusEqual");
}
auto HandleInfixOperatorPercent(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorPercent");
}
auto HandleInfixOperatorPercentEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorPercentEqual");
}
auto HandleInfixOperatorPipe(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorPipe");
}
auto HandleInfixOperatorPipeEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorPipeEqual");
}
auto HandleInfixOperatorPlus(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorPlus");
}
auto HandleInfixOperatorPlusEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorPlusEqual");
}
auto HandleInfixOperatorSlash(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorSlash");
}
auto HandleInfixOperatorSlashEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorSlashEqual");
}
auto HandleInfixOperatorStar(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorStar");
}
auto HandleInfixOperatorStarEqual(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandleInfixOperatorStarEqual");
}
auto HandlePostfixOperatorStar(Context& context, Parse::NodeId parse_node)
-> bool {
auto value_id = context.node_stack().PopExpr();
auto inner_type_id = ExprAsType(context, parse_node, value_id);
context.AddInstAndPush(
parse_node,
SemIR::PointerType{parse_node, SemIR::TypeId::TypeType, inner_type_id});
return true;
}
auto HandlePrefixOperatorAmp(Context& context, Parse::NodeId parse_node)
-> bool {
auto value_id = context.node_stack().PopExpr();
// Only durable reference expressions can have their address taken.
switch (SemIR::GetExprCategory(context.sem_ir(), value_id)) {
case SemIR::ExprCategory::DurableRef:
case SemIR::ExprCategory::Error:
break;
case SemIR::ExprCategory::EphemeralRef:
CARBON_DIAGNOSTIC(AddressOfEphemeralRef, Error,
"Cannot take the address of a temporary object.");
context.emitter().Emit(TokenOnly(parse_node), AddressOfEphemeralRef);
break;
default:
CARBON_DIAGNOSTIC(AddressOfNonRef, Error,
"Cannot take the address of non-reference expression.");
context.emitter().Emit(TokenOnly(parse_node), AddressOfNonRef);
break;
}
context.AddInstAndPush(
parse_node,
SemIR::AddressOf{parse_node,
context.GetPointerType(
parse_node, context.insts().Get(value_id).type_id()),
value_id});
return true;
}
auto HandlePrefixOperatorCaret(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandlePrefixOperatorCaret");
}
auto HandlePrefixOperatorConst(Context& context, Parse::NodeId parse_node)
-> bool {
auto value_id = context.node_stack().PopExpr();
// `const (const T)` is probably not what the developer intended.
// TODO: Detect `const (const T)*` and suggest moving the `*` inside the
// parentheses.
if (context.insts().Get(value_id).kind() == SemIR::ConstType::Kind) {
CARBON_DIAGNOSTIC(RepeatedConst, Warning,
"`const` applied repeatedly to the same type has no "
"additional effect.");
context.emitter().Emit(parse_node, RepeatedConst);
}
auto inner_type_id = ExprAsType(context, parse_node, value_id);
context.AddInstAndPush(
parse_node,
SemIR::ConstType{parse_node, SemIR::TypeId::TypeType, inner_type_id});
return true;
}
auto HandlePrefixOperatorMinus(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandlePrefixOperatorMinus");
}
auto HandlePrefixOperatorMinusMinus(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandlePrefixOperatorMinusMinus");
}
auto HandlePrefixOperatorNot(Context& context, Parse::NodeId parse_node)
-> bool {
auto value_id = context.node_stack().PopExpr();
value_id = ConvertToBoolValue(context, parse_node, value_id);
context.AddInstAndPush(
parse_node,
SemIR::UnaryOperatorNot{
parse_node, context.insts().Get(value_id).type_id(), value_id});
return true;
}
auto HandlePrefixOperatorPlus(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandlePrefixOperatorPlus");
}
auto HandlePrefixOperatorPlusPlus(Context& context, Parse::NodeId parse_node)
-> bool {
return context.TODO(parse_node, "HandlePrefixOperatorPlusPlus");
}
auto HandlePrefixOperatorStar(Context& context, Parse::NodeId parse_node)
-> bool {
auto value_id = context.node_stack().PopExpr();
value_id = ConvertToValueExpr(context, value_id);
auto type_id =
context.GetUnqualifiedType(context.insts().Get(value_id).type_id());
auto result_type_id = SemIR::TypeId::Error;
if (auto pointer_type =
context.types().TryGetAs<SemIR::PointerType>(type_id)) {
result_type_id = pointer_type->pointee_id;
} else if (type_id != SemIR::TypeId::Error) {
CARBON_DIAGNOSTIC(DerefOfNonPointer, Error,
"Cannot dereference operand of non-pointer type `{0}`.",
std::string);
auto builder =
context.emitter().Build(TokenOnly(parse_node), DerefOfNonPointer,
context.sem_ir().StringifyType(type_id));
// TODO: Check for any facet here, rather than only a type.
if (type_id == SemIR::TypeId::TypeType) {
CARBON_DIAGNOSTIC(
DerefOfType, Note,
"To form a pointer type, write the `*` after the pointee type.");
builder.Note(TokenOnly(parse_node), DerefOfType);
}
builder.Emit();
}
context.AddInstAndPush(parse_node,
SemIR::Deref{parse_node, result_type_id, value_id});
return true;
}
// Adds the branch for a short circuit operand.
static auto HandleShortCircuitOperand(Context& context,
Parse::NodeId parse_node, bool is_or)
-> bool {
// Convert the condition to `bool`.
auto cond_value_id = context.node_stack().PopExpr();
cond_value_id = ConvertToBoolValue(context, parse_node, cond_value_id);
auto bool_type_id = context.insts().Get(cond_value_id).type_id();
// Compute the branch value: the condition for `and`, inverted for `or`.
SemIR::InstId branch_value_id =
is_or ? context.AddInst(SemIR::UnaryOperatorNot{parse_node, bool_type_id,
cond_value_id})
: cond_value_id;
auto short_circuit_result_id = context.AddInst(SemIR::BoolLiteral{
parse_node, bool_type_id,
is_or ? SemIR::BoolValue::True : SemIR::BoolValue::False});
// Create a block for the right-hand side and for the continuation.
auto rhs_block_id =
context.AddDominatedBlockAndBranchIf(parse_node, branch_value_id);
auto end_block_id = context.AddDominatedBlockAndBranchWithArg(
parse_node, short_circuit_result_id);
// Push the resumption and the right-hand side blocks, and start emitting the
// right-hand operand.
context.inst_block_stack().Pop();
context.inst_block_stack().Push(end_block_id);
context.inst_block_stack().Push(rhs_block_id);
context.AddCurrentCodeBlockToFunction();
// HandleShortCircuitOperator will follow, and doesn't need the operand on the
// node stack.
return true;
}
auto HandleShortCircuitOperandAnd(Context& context, Parse::NodeId parse_node)
-> bool {
return HandleShortCircuitOperand(context, parse_node, /*is_or=*/false);
}
auto HandleShortCircuitOperandOr(Context& context, Parse::NodeId parse_node)
-> bool {
return HandleShortCircuitOperand(context, parse_node, /*is_or=*/true);
}
// Short circuit operator handling is uniform because the branching logic
// occurs during operand handling.
static auto HandleShortCircuitOperator(Context& context,
Parse::NodeId parse_node) -> bool {
auto [rhs_node, rhs_id] = context.node_stack().PopExprWithParseNode();
// The first operand is wrapped in a ShortCircuitOperand, which we
// already handled by creating a RHS block and a resumption block, which
// are the current block and its enclosing block.
rhs_id = ConvertToBoolValue(context, parse_node, rhs_id);
// When the second operand is evaluated, the result of `and` and `or` is
// its value.
auto resume_block_id = context.inst_block_stack().PeekOrAdd(/*depth=*/1);
context.AddInst(SemIR::BranchWithArg{parse_node, resume_block_id, rhs_id});
context.inst_block_stack().Pop();
context.AddCurrentCodeBlockToFunction();
// Collect the result from either the first or second operand.
context.AddInstAndPush(
parse_node,
SemIR::BlockArg{parse_node, context.insts().Get(rhs_id).type_id(),
resume_block_id});
return true;
}
auto HandleShortCircuitOperatorAnd(Context& context, Parse::NodeId parse_node)
-> bool {
return HandleShortCircuitOperator(context, parse_node);
}
auto HandleShortCircuitOperatorOr(Context& context, Parse::NodeId parse_node)
-> bool {
return HandleShortCircuitOperator(context, parse_node);
}
} // namespace Carbon::Check