#include "mlir/Reducer/ReductionNode.h"
#include "mlir/IR/IRMapping.h"
#include "llvm/ADT/STLExtras.h"
#include <algorithm>
#include <limits>
using namespace mlir;
ReductionNode::ReductionNode(
ReductionNode *parentNode, const std::vector<Range> &ranges,
llvm::SpecificBumpPtrAllocator<ReductionNode> &allocator)
: parent(parentNode == nullptr ? this : parentNode),
size(std::numeric_limits<size_t>::max()), ranges(ranges),
startRanges(ranges), allocator(allocator) {
if (parent != this)
if (failed(initialize(parent->getModule(), parent->getRegion())))
llvm_unreachable("unexpected initialization failure");
}
LogicalResult ReductionNode::initialize(ModuleOp parentModule,
Region &targetRegion) {
IRMapping mapper;
module = cast<ModuleOp>(parentModule->clone(mapper));
Block *block = mapper.lookup(&*targetRegion.begin());
region = block->getParent();
return success();
}
ArrayRef<ReductionNode *> ReductionNode::generateNewVariants() {
int oldNumVariant = getVariants().size();
auto createNewNode = [this](const std::vector<Range> &ranges) {
return new (allocator.Allocate()) ReductionNode(this, ranges, allocator);
};
if (variants.empty() && getRanges().size() > 1) {
for (const Range &range : getRanges()) {
std::vector<Range> subRanges = getRanges();
llvm::erase(subRanges, range);
variants.push_back(createNewNode(subRanges));
}
return getVariants().drop_front(oldNumVariant);
}
auto maxElement =
llvm::max_element(ranges, [](const Range &lhs, const Range &rhs) {
return (lhs.second - lhs.first) > (rhs.second - rhs.first);
});
if (maxElement->second - maxElement->first <= 1)
return {};
Range maxRange = *maxElement;
std::vector<Range> subRanges = getRanges();
auto subRangesIter = subRanges.begin() + (maxElement - ranges.begin());
int half = (maxRange.first + maxRange.second) / 2;
*subRangesIter = std::make_pair(maxRange.first, half);
variants.push_back(createNewNode(subRanges));
*subRangesIter = std::make_pair(half, maxRange.second);
variants.push_back(createNewNode(subRanges));
auto it = ranges.insert(maxElement, std::make_pair(half, maxRange.second));
it = ranges.insert(it, std::make_pair(maxRange.first, half));
ranges.erase(it + 2);
return getVariants().drop_front(oldNumVariant);
}
void ReductionNode::update(std::pair<Tester::Interestingness, size_t> result) {
std::tie(interesting, size) = result;
if (interesting == Tester::Interestingness::True) {
ranges.clear();
ranges.emplace_back(0, std::distance(region->op_begin(), region->op_end()));
} else {
module.release()->erase();
}
}
ArrayRef<ReductionNode *>
ReductionNode::iterator<SinglePath>::getNeighbors(ReductionNode *node) {
ArrayRef<ReductionNode *> variantsFromParent =
node->getParent()->getVariants();
if (!llvm::all_of(variantsFromParent, [](ReductionNode *node) {
return node->isInteresting() != Tester::Interestingness::Untested;
})) {
return {};
}
ReductionNode *smallest = nullptr;
for (ReductionNode *node : variantsFromParent) {
if (node->isInteresting() != Tester::Interestingness::True)
continue;
if (smallest == nullptr || node->getSize() < smallest->getSize())
smallest = node;
}
if (smallest != nullptr &&
smallest->getSize() < node->getParent()->getSize()) {
node = smallest;
} else {
node = node->getParent();
}
return node->generateNewVariants();
}