#include "mlir/IR/Block.h"
#include "mlir/IR/Builders.h"
#include "mlir/IR/Operation.h"
#include "llvm/ADT/BitVector.h"
using namespace mlir;
Block::~Block() {
assert(!verifyOpOrder() && "Expected valid operation ordering.");
clear();
for (BlockArgument arg : arguments)
arg.destroy();
}
Region *Block::getParent() const { return parentValidOpOrderPair.getPointer(); }
Operation *Block::getParentOp() {
return getParent() ? getParent()->getParentOp() : nullptr;
}
bool Block::isEntryBlock() { return this == &getParent()->front(); }
void Block::insertBefore(Block *block) {
assert(!getParent() && "already inserted into a block!");
assert(block->getParent() && "cannot insert before a block without a parent");
block->getParent()->getBlocks().insert(block->getIterator(), this);
}
void Block::insertAfter(Block *block) {
assert(!getParent() && "already inserted into a block!");
assert(block->getParent() && "cannot insert before a block without a parent");
block->getParent()->getBlocks().insertAfter(block->getIterator(), this);
}
void Block::moveBefore(Block *block) {
assert(block->getParent() && "cannot insert before a block without a parent");
moveBefore(block->getParent(), block->getIterator());
}
void Block::moveBefore(Region *region, llvm::iplist<Block>::iterator iterator) {
region->getBlocks().splice(iterator, getParent()->getBlocks(), getIterator());
}
void Block::erase() {
assert(getParent() && "Block has no parent");
getParent()->getBlocks().erase(this);
}
Operation *Block::findAncestorOpInBlock(Operation &op) {
auto *currOp = &op;
while (currOp->getBlock() != this) {
currOp = currOp->getParentOp();
if (!currOp)
return nullptr;
}
return currOp;
}
void Block::dropAllReferences() {
for (Operation &i : *this)
i.dropAllReferences();
}
void Block::dropAllDefinedValueUses() {
for (auto arg : getArguments())
arg.dropAllUses();
for (auto &op : *this)
op.dropAllDefinedValueUses();
dropAllUses();
}
bool Block::isOpOrderValid() { return parentValidOpOrderPair.getInt(); }
void Block::invalidateOpOrder() {
assert(!verifyOpOrder());
parentValidOpOrderPair.setInt(false);
}
bool Block::verifyOpOrder() {
if (!isOpOrderValid())
return false;
if (operations.empty() || std::next(operations.begin()) == operations.end())
return false;
Operation *prev = nullptr;
for (auto &i : *this) {
if (prev && prev->orderIndex != Operation::kInvalidOrderIdx &&
prev->orderIndex >= i.orderIndex)
return true;
prev = &i;
}
return false;
}
void Block::recomputeOpOrder() {
parentValidOpOrderPair.setInt(true);
unsigned orderIndex = 0;
for (auto &op : *this)
op.orderIndex = (orderIndex += Operation::kOrderStride);
}
auto Block::getArgumentTypes() -> ValueTypeRange<BlockArgListType> {
return ValueTypeRange<BlockArgListType>(getArguments());
}
BlockArgument Block::addArgument(Type type, Location loc) {
BlockArgument arg = BlockArgument::create(type, this, arguments.size(), loc);
arguments.push_back(arg);
return arg;
}
auto Block::addArguments(TypeRange types, ArrayRef<Location> locs)
-> iterator_range<args_iterator> {
assert(types.size() == locs.size() &&
"incorrect number of block argument locations");
size_t initialSize = arguments.size();
arguments.reserve(initialSize + types.size());
for (auto typeAndLoc : llvm::zip(types, locs))
addArgument(std::get<0>(typeAndLoc), std::get<1>(typeAndLoc));
return {arguments.data() + initialSize, arguments.data() + arguments.size()};
}
BlockArgument Block::insertArgument(unsigned index, Type type, Location loc) {
assert(index <= arguments.size() && "invalid insertion index");
auto arg = BlockArgument::create(type, this, index, loc);
arguments.insert(arguments.begin() + index, arg);
++index;
for (BlockArgument arg : llvm::drop_begin(arguments, index))
arg.setArgNumber(index++);
return arg;
}
BlockArgument Block::insertArgument(args_iterator it, Type type, Location loc) {
assert(getPredecessors().empty() &&
"cannot insert arguments to blocks with predecessors");
return insertArgument(it->getArgNumber(), type, loc);
}
void Block::eraseArgument(unsigned index) {
assert(index < arguments.size());
arguments[index].destroy();
arguments.erase(arguments.begin() + index);
for (BlockArgument arg : llvm::drop_begin(arguments, index))
arg.setArgNumber(index++);
}
void Block::eraseArguments(unsigned start, unsigned num) {
assert(start + num <= arguments.size());
for (unsigned i = 0; i < num; ++i)
arguments[start + i].destroy();
arguments.erase(arguments.begin() + start, arguments.begin() + start + num);
for (BlockArgument arg : llvm::drop_begin(arguments, start))
arg.setArgNumber(start++);
}
void Block::eraseArguments(const BitVector &eraseIndices) {
eraseArguments(
[&](BlockArgument arg) { return eraseIndices.test(arg.getArgNumber()); });
}
void Block::eraseArguments(function_ref<bool(BlockArgument)> shouldEraseFn) {
auto firstDead = llvm::find_if(arguments, shouldEraseFn);
if (firstDead == arguments.end())
return;
unsigned index = firstDead->getArgNumber();
firstDead->destroy();
for (auto it = std::next(firstDead), e = arguments.end(); it != e; ++it) {
if (shouldEraseFn(*it)) {
it->destroy();
} else {
it->setArgNumber(index++);
*firstDead++ = *it;
}
}
arguments.erase(firstDead, arguments.end());
}
Operation *Block::getTerminator() {
assert(mightHaveTerminator());
return &back();
}
bool Block::mightHaveTerminator() {
return !empty() && back().mightHaveTrait<OpTrait::IsTerminator>();
}
unsigned Block::getNumSuccessors() {
return empty() ? 0 : back().getNumSuccessors();
}
Block *Block::getSuccessor(unsigned i) {
assert(i < getNumSuccessors());
return getTerminator()->getSuccessor(i);
}
Block *Block::getSinglePredecessor() {
auto it = pred_begin();
if (it == pred_end())
return nullptr;
auto *firstPred = *it;
++it;
return it == pred_end() ? firstPred : nullptr;
}
Block *Block::getUniquePredecessor() {
auto it = pred_begin(), e = pred_end();
if (it == e)
return nullptr;
auto *firstPred = *it;
for (++it; it != e; ++it)
if (*it != firstPred)
return nullptr;
return firstPred;
}
Block *Block::splitBlock(iterator splitBefore) {
auto *newBB = new Block();
getParent()->getBlocks().insert(std::next(Region::iterator(this)), newBB);
newBB->getOperations().splice(newBB->end(), getOperations(), splitBefore,
end());
return newBB;
}
Block *PredecessorIterator::unwrap(BlockOperand &value) {
return value.getOwner()->getBlock();
}
unsigned PredecessorIterator::getSuccessorIndex() const {
return I->getOperandNumber();
}
SuccessorRange::SuccessorRange() : SuccessorRange(nullptr, 0) {}
SuccessorRange::SuccessorRange(Block *block) : SuccessorRange() {
if (block->empty() || llvm::hasSingleElement(*block->getParent()))
return;
Operation *term = &block->back();
if ((count = term->getNumSuccessors()))
base = term->getBlockOperands().data();
}
SuccessorRange::SuccessorRange(Operation *term) : SuccessorRange() {
if ((count = term->getNumSuccessors()))
base = term->getBlockOperands().data();
}
BlockRange::BlockRange(ArrayRef<Block *> blocks) : BlockRange(nullptr, 0) {
if ((count = blocks.size()))
base = blocks.data();
}
BlockRange::BlockRange(SuccessorRange successors)
: BlockRange(successors.begin().getBase(), successors.size()) {}
BlockRange::OwnerT BlockRange::offset_base(OwnerT object, ptrdiff_t index) {
if (auto *operand = llvm::dyn_cast_if_present<BlockOperand *>(object))
return {operand + index};
return {llvm::dyn_cast_if_present<Block *const *>(object) + index};
}
Block *BlockRange::dereference_iterator(OwnerT object, ptrdiff_t index) {
if (const auto *operand = llvm::dyn_cast_if_present<BlockOperand *>(object))
return operand[index].get();
return llvm::dyn_cast_if_present<Block *const *>(object)[index];
}