mirror of
https://github.com/YosysHQ/yosys
synced 2026-02-14 12:51:48 +00:00
372 lines
9.7 KiB
C++
372 lines
9.7 KiB
C++
#include <gtest/gtest.h>
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#include <gmock/gmock.h>
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#include "kernel/threading.h"
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YOSYS_NAMESPACE_BEGIN
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class ThreadingTest : public testing::Test {
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protected:
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ThreadingTest() {
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if (log_files.empty())
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log_files.emplace_back(stdout);
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}
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};
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TEST_F(ThreadingTest, ParallelDispatchThreadPoolCreate) {
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// Test creating a pool with 0 threads (treated as 1)
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ParallelDispatchThreadPool pool0(0);
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EXPECT_EQ(pool0.num_threads(), 1);
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// Test creating a pool with 1 thread
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ParallelDispatchThreadPool pool1(1);
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EXPECT_EQ(pool1.num_threads(), 1);
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// Test creating a pool with 2 threads
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ParallelDispatchThreadPool pool2(2);
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// YOSYS_MAX_THREADS or system configuration could mean we
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// decide to only use one thread.
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EXPECT_GE(pool2.num_threads(), 1);
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EXPECT_LE(pool2.num_threads(), 2);
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}
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TEST_F(ThreadingTest, ParallelDispatchThreadPoolRunSimple) {
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ParallelDispatchThreadPool pool(2);
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std::atomic<int> counter{0};
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pool.run([&counter](const ParallelDispatchThreadPool::RunCtx &) {
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counter.fetch_add(1, std::memory_order_relaxed);
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});
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EXPECT_EQ(counter.load(), pool.num_threads());
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}
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TEST_F(ThreadingTest, ParallelDispatchThreadPoolRunMultiple) {
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ParallelDispatchThreadPool pool(2);
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std::atomic<int> counter{0};
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// Run multiple times to verify the pool can be reused
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for (int i = 0; i < 5; ++i)
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pool.run([&counter](const ParallelDispatchThreadPool::RunCtx &) {
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counter.fetch_add(1, std::memory_order_relaxed);
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});
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EXPECT_EQ(counter.load(), pool.num_threads() * 5);
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}
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TEST_F(ThreadingTest, ParallelDispatchThreadPoolRunCtxThreadNums) {
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ParallelDispatchThreadPool pool(4);
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std::vector<int> thread_nums(pool.num_threads(), -1);
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pool.run([&thread_nums](const ParallelDispatchThreadPool::RunCtx &ctx) {
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thread_nums[ctx.thread_num] = ctx.thread_num;
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});
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// Every thread should have recorded its own thread number
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for (int i = 0; i < pool.num_threads(); ++i)
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EXPECT_EQ(thread_nums[i], i);
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}
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TEST_F(ThreadingTest, ParallelDispatchThreadPoolItemRange) {
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ParallelDispatchThreadPool pool(3);
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const int num_items = 100;
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std::vector<std::atomic<int>> item_counts(num_items);
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for (std::atomic<int> &c : item_counts)
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c.store(0);
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pool.run([&item_counts](const ParallelDispatchThreadPool::RunCtx &ctx) {
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for (int i : ctx.item_range(num_items))
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item_counts[i].fetch_add(1);
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});
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// Each item should have been processed exactly once
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for (int i = 0; i < num_items; ++i)
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EXPECT_EQ(item_counts[i].load(), 1);
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}
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TEST_F(ThreadingTest, ParallelDispatchThreadPoolSubpool) {
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ParallelDispatchThreadPool pool(4);
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// Subpool limited to 2 threads
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ParallelDispatchThreadPool::Subpool subpool(pool, 2);
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EXPECT_LE(subpool.num_threads(), 2);
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std::atomic<int> counter{0};
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subpool.run([&counter](const ParallelDispatchThreadPool::RunCtx &) {
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counter.fetch_add(1, std::memory_order_relaxed);
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});
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EXPECT_EQ(counter.load(), subpool.num_threads());
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}
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TEST_F(ThreadingTest, IntRangeIteration) {
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IntRange range{3, 7};
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std::vector<int> values;
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for (int i : range)
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values.push_back(i);
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EXPECT_THAT(values, testing::ElementsAre(3, 4, 5, 6));
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}
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TEST_F(ThreadingTest, IntRangeEmpty) {
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IntRange range{5, 5};
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for (int _ : range)
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FAIL();
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}
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TEST_F(ThreadingTest, ItemRangeForWorker) {
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EXPECT_EQ(item_range_for_worker(10, 0, 3), (IntRange{0, 4}));
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EXPECT_EQ(item_range_for_worker(10, 1, 3), (IntRange{4, 7}));
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EXPECT_EQ(item_range_for_worker(10, 2, 3), (IntRange{7, 10}));
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}
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TEST_F(ThreadingTest, ItemRangeForWorkerZeroThreads) {
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EXPECT_EQ(item_range_for_worker(10, 0, 0), (IntRange{0, 10}));
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}
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TEST_F(ThreadingTest, ShardedVectorBasic) {
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ParallelDispatchThreadPool pool(2);
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ShardedVector<int> vec(pool);
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pool.run([&vec](const ParallelDispatchThreadPool::RunCtx &ctx) {
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vec.insert(ctx, ctx.thread_num * 10);
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vec.insert(ctx, ctx.thread_num * 10 + 1);
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});
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EXPECT_FALSE(vec.empty());
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// Count elements
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std::vector<int> elements;
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for (int v : vec) {
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elements.push_back(v);
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}
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if (pool.num_threads() == 2)
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EXPECT_THAT(elements, testing::ElementsAre(0, 1, 10, 11));
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else
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EXPECT_THAT(elements, testing::ElementsAre(0, 1));
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}
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TEST_F(ThreadingTest, MonotonicFlagBasic) {
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MonotonicFlag flag;
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EXPECT_FALSE(flag.load());
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flag.set();
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EXPECT_TRUE(flag.load());
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flag.set();
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EXPECT_TRUE(flag.load());
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}
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TEST_F(ThreadingTest, MonotonicFlagSetAndReturnOld) {
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MonotonicFlag flag;
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EXPECT_FALSE(flag.set_and_return_old());
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EXPECT_TRUE(flag.load());
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EXPECT_TRUE(flag.set_and_return_old());
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}
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TEST_F(ThreadingTest, ConcurrentQueueBasic) {
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ConcurrentQueue<int> queue;
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queue.push_back(1);
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queue.push_back(2);
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queue.push_back(3);
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auto v1 = queue.pop_front();
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auto v2 = queue.pop_front();
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auto v3 = queue.pop_front();
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ASSERT_TRUE(v1.has_value());
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ASSERT_TRUE(v2.has_value());
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ASSERT_TRUE(v3.has_value());
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EXPECT_EQ(*v1, 1);
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EXPECT_EQ(*v2, 2);
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EXPECT_EQ(*v3, 3);
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}
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TEST_F(ThreadingTest, ConcurrentQueueTryPopEmpty) {
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ConcurrentQueue<int> queue;
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auto v = queue.try_pop_front();
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EXPECT_FALSE(v.has_value());
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}
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TEST_F(ThreadingTest, ConcurrentQueueClose) {
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ConcurrentQueue<int> queue;
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queue.push_back(42);
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queue.close();
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// Can still pop existing elements
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auto v1 = queue.pop_front();
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ASSERT_TRUE(v1.has_value());
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EXPECT_EQ(*v1, 42);
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// After close and empty, pop_front returns nullopt
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auto v2 = queue.pop_front();
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EXPECT_FALSE(v2.has_value());
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}
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TEST_F(ThreadingTest, ThreadPoolCreate) {
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// pool_size of 0 means no worker threads
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ThreadPool pool0(0, [](int) {});
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EXPECT_EQ(pool0.num_threads(), 0);
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// pool_size of 1 means 1 worker thread
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std::atomic<int> counter{0};
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{
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ThreadPool pool1(1, [&counter](int thread_num) {
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EXPECT_EQ(thread_num, 0);
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counter.fetch_add(1);
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});
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}
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#ifdef YOSYS_ENABLE_THREADS
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EXPECT_EQ(counter.load(), 1);
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#else
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EXPECT_EQ(counter.load(), 0);
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#endif
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}
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TEST_F(ThreadingTest, ThreadPoolMultipleThreads) {
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std::atomic<int> counter{0};
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{
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ThreadPool pool(2, [&counter](int) {
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counter.fetch_add(1);
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});
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EXPECT_LE(pool.num_threads(), 2);
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}
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#ifdef YOSYS_ENABLE_THREADS
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EXPECT_GE(counter.load(), 1);
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EXPECT_LE(counter.load(), 2);
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#else
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EXPECT_EQ(counter.load(), 0);
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#endif
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}
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// Helper types for ShardedHashSet tests
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struct IntValue {
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using Accumulated = IntValue;
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int value;
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operator int() const { return value; }
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};
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struct IntValueEquality {
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bool operator()(int a, int b) const { return a == b; }
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};
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TEST_F(ThreadingTest, ShardedHashSetBasic) {
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ParallelDispatchThreadPool pool(1);
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using HashSet = ShardedHashSet<IntValue, IntValueEquality>;
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HashSet::Builder builder(pool);
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// Insert some values
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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builder.insert(ctx, {{10}, 10});
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builder.insert(ctx, {{20}, 20});
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builder.insert(ctx, {{30}, 30});
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});
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// Process
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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builder.process(ctx);
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});
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// Build and lookup
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HashSet set(builder);
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const IntValue *found10 = set.find({{10}, 10});
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const IntValue *found20 = set.find({{20}, 20});
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const IntValue *found99 = set.find({{99}, 99});
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ASSERT_NE(found10, nullptr);
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ASSERT_NE(found20, nullptr);
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EXPECT_EQ(found99, nullptr);
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EXPECT_EQ(*found10, 10);
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EXPECT_EQ(*found20, 20);
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}
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TEST_F(ThreadingTest, ShardedHashSetParallelInsert) {
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ParallelDispatchThreadPool pool(3);
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using HashSet = ShardedHashSet<IntValue, IntValueEquality>;
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HashSet::Builder builder(pool);
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// Insert values from multiple threads
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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for (int i = 0; i < 10; ++i) {
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int val = ctx.thread_num * 100 + i;
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builder.insert(ctx, {{val}, static_cast<unsigned>(val)});
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}
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});
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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builder.process(ctx);
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});
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HashSet set(builder);
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// Verify all values can be found
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for (int t = 0; t < pool.num_threads(); ++t) {
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for (int i = 0; i < 10; ++i) {
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int val = t * 100 + i;
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const IntValue *found = set.find({{val}, static_cast<unsigned>(val)});
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ASSERT_NE(found, nullptr) << "Value " << val << " not found";
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EXPECT_EQ(*found, val);
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}
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}
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}
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// Helper types for ShardedHashSet tests
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struct IntDictValue {
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using Accumulated = IntDictValue;
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int key;
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int value;
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bool operator==(const IntDictValue &other) const { return key == other.key && value == other.value; }
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bool operator!=(const IntDictValue &other) const { return !(*this == other); }
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};
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struct IntDictKeyEquality {
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bool operator()(const IntDictValue &a, const IntDictValue &b) const { return a.key == b.key; }
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};
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// Collision handler that sums values
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struct SumCollisionHandler {
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void operator()(IntDictValue &existing, IntDictValue &incoming) const {
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existing.value += incoming.value;
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}
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};
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TEST_F(ThreadingTest, ShardedHashSetCollision) {
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ParallelDispatchThreadPool pool(1);
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using HashSet = ShardedHashSet<IntDictValue, IntDictKeyEquality, SumCollisionHandler>;
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HashSet::Builder builder(pool);
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// Insert duplicate keys with same hash - duplicates should collapse
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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builder.insert(ctx, {{5, 10}, 5});
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builder.insert(ctx, {{5, 12}, 5}); // Duplicate key/hash
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builder.insert(ctx, {{5, 14}, 5}); // Another duplicate
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});
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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builder.process(ctx);
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});
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HashSet set(builder);
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const IntDictValue *found = set.find({{5, 0}, 5});
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ASSERT_NE(found, nullptr);
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// With default collision handler, first value is kept
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EXPECT_EQ(*found, (IntDictValue{5, 36}));
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}
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TEST_F(ThreadingTest, ShardedHashSetEmpty) {
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ParallelDispatchThreadPool pool(1);
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using HashSet = ShardedHashSet<IntValue, IntValueEquality>;
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HashSet::Builder builder(pool);
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// Don't insert anything, just process
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pool.run([&builder](const ParallelDispatchThreadPool::RunCtx &ctx) {
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builder.process(ctx);
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});
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HashSet set(builder);
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const IntValue *found = set.find({{42}, 42});
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EXPECT_EQ(found, nullptr);
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}
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YOSYS_NAMESPACE_END
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