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			186 lines
		
	
	
	
		
			4.9 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			186 lines
		
	
	
	
		
			4.9 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
/*
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    This file is part of TON Blockchain Library.
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    TON Blockchain Library is free software: you can redistribute it and/or modify
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    it under the terms of the GNU Lesser General Public License as published by
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    the Free Software Foundation, either version 2 of the License, or
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    (at your option) any later version.
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    TON Blockchain Library is distributed in the hope that it will be useful,
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    but WITHOUT ANY WARRANTY; without even the implied warranty of
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    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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    GNU Lesser General Public License for more details.
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    You should have received a copy of the GNU Lesser General Public License
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    along with TON Blockchain Library.  If not, see <http://www.gnu.org/licenses/>.
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    Copyright 2017-2020 Telegram Systems LLP
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*/
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#include "td/utils/tests.h"
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#include "td/utils/benchmark.h"
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#include "td/utils/AtomicRead.h"
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#include "td/utils/StealingQueue.h"
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#include "td/utils/MpmcQueue.h"
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namespace td {
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TEST(StealingQueue, very_simple) {
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  StealingQueue<int, 8> q;
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  q.local_push(1, [](auto x) { UNREACHABLE(); });
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  int x;
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  CHECK(q.local_pop(x));
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  ASSERT_EQ(1, x);
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}
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TEST(AtomicRead, simple) {
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  td::Stage run;
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  td::Stage check;
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  size_t threads_n = 10;
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  std::vector<td::thread> threads;
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  int x{0};
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  std::atomic<int> version{0};
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  int64 res = 0;
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  for (size_t i = 0; i < threads_n; i++) {
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    threads.push_back(td::thread([&, id = static_cast<uint32>(i)] {
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      for (uint64 round = 1; round < 10000; round++) {
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        if (id == 0) {
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        }
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        run.wait(round * threads_n);
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        if (id == 0) {
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          version++;
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          x++;
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          version++;
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        } else {
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          int y = 0;
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          auto v1 = version.load();
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          y = x;
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          auto v2 = version.load();
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          if (v1 == v2 && v1 % 2 == 0) {
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            res += y;
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          }
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        }
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        check.wait(round * threads_n);
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      }
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    }));
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  }
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  td::do_not_optimize_away(res);
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  for (auto &thread : threads) {
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    thread.join();
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  }
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}
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TEST(AtomicRead, simple2) {
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  td::Stage run;
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  td::Stage check;
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  size_t threads_n = 10;
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  std::vector<td::thread> threads;
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  struct Value {
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    td::uint64 value = 0;
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    char str[50] = "0 0 0 0";
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  };
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  AtomicRead<Value> value;
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  auto to_str = [](size_t i) { return PSTRING() << i << " " << i << " " << i << " " << i; };
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  for (size_t i = 0; i < threads_n; i++) {
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    threads.push_back(td::thread([&, id = static_cast<uint32>(i)] {
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      for (uint64 round = 1; round < 10000; round++) {
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        if (id == 0) {
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        }
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        run.wait(round * threads_n);
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        if (id == 0) {
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          auto x = value.lock();
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          x->value = round;
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          auto str = to_str(round);
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          memcpy(x->str, str.c_str(), str.size() + 1);
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        } else {
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          Value x;
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          value.read(x);
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          LOG_CHECK(x.value == round || x.value == round - 1) << x.value << " " << round;
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          CHECK(x.str == to_str(x.value));
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        }
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        check.wait(round * threads_n);
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      }
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    }));
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  }
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  for (auto &thread : threads) {
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    thread.join();
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  }
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}
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TEST(StealingQueue, simple) {
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  uint64 sum;
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  std::atomic<uint64> got_sum;
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  td::Stage run;
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  td::Stage check;
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  size_t threads_n = 10;
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  std::vector<td::thread> threads;
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  std::vector<StealingQueue<int, 8>> lq(threads_n);
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  MpmcQueue<int> gq(threads_n);
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  constexpr uint64 XN = 20;
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  uint64 x_sum[XN];
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  x_sum[0] = 0;
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  x_sum[1] = 1;
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  for (uint64 i = 2; i < XN; i++) {
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    x_sum[i] = i + x_sum[i - 1] + x_sum[i - 2];
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  }
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  td::Random::Xorshift128plus rnd(123);
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  for (size_t i = 0; i < threads_n; i++) {
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    threads.push_back(td::thread([&, id = static_cast<uint32>(i)] {
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      for (uint64 round = 1; round < 10000; round++) {
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        if (id == 0) {
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          sum = 0;
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          int n = rnd() % 5;
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          for (int j = 0; j < n; j++) {
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            int x = rand() % XN;
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            sum += x_sum[x];
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            gq.push(x, id);
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          }
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          got_sum = 0;
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        }
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        run.wait(round * threads_n);
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        while (got_sum.load() != sum) {
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          auto x = [&] {
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            int res;
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            if (lq[id].local_pop(res)) {
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              return res;
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            }
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            if (gq.try_pop(res, id)) {
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              return res;
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            }
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            if (lq[id].steal(res, lq[rand() % threads_n])) {
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              //LOG(ERROR) << "STEAL";
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              return res;
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            }
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            return 0;
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          }();
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          if (x == 0) {
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            continue;
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          }
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          //LOG(ERROR) << x << " " << got_sum.load() << " " << sum;
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          got_sum.fetch_add(x, std::memory_order_relaxed);
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          lq[id].local_push(x - 1, [&](auto y) {
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            //LOG(ERROR) << "OVERFLOW";
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            gq.push(y, id);
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          });
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          if (x > 1) {
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            lq[id].local_push(x - 2, [&](auto y) { gq.push(y, id); });
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          }
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        }
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        check.wait(round * threads_n);
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      }
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    }));
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  }
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  for (auto &thread : threads) {
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    thread.join();
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  }
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}
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}  // namespace td
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