168 lines
		
	
	
		
			4.6 KiB
		
	
	
	
		
			C++
		
	
	
	
			
		
		
	
	
			168 lines
		
	
	
		
			4.6 KiB
		
	
	
	
		
			C++
		
	
	
	
| /*
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|  * Copyright (C) 2014 The Android Open Source Project
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|  *
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|  * Licensed under the Apache License, Version 2.0 (the "License");
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|  * you may not use this file except in compliance with the License.
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|  * You may obtain a copy of the License at
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|  *
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|  *      http://www.apache.org/licenses/LICENSE-2.0
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|  *
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|  * Unless required by applicable law or agreed to in writing, software
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|  * distributed under the License is distributed on an "AS IS" BASIS,
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|  * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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|  * See the License for the specific language governing permissions and
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|  * limitations under the License.
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|  */
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| 
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| #include "memcmp16.h"
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| 
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| #include "gtest/gtest.h"
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| 
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| class RandGen {
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|  public:
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|   explicit RandGen(uint32_t seed) : val_(seed) {}
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| 
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|   uint32_t next() {
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|     val_ = val_ * 48271 % 2147483647 + 13;
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|     return val_;
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|   }
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| 
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|   uint32_t val_;
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| };
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| 
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| class MemCmp16Test : public testing::Test {
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| };
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| 
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| // A simple implementation to compare against.
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| // Note: this version is equivalent to the generic one used when no optimized version is available.
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| int32_t memcmp16_compare(const uint16_t* s0, const uint16_t* s1, size_t count) {
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|   for (size_t i = 0; i < count; i++) {
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|     if (s0[i] != s1[i]) {
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|       return static_cast<int32_t>(s0[i]) - static_cast<int32_t>(s1[i]);
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|     }
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|   }
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|   return 0;
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| }
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| 
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| static constexpr size_t kMemCmp16Rounds = 100000;
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| 
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| static void CheckSeparate(size_t max_length, size_t min_length) {
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|   RandGen r(0x1234);
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|   size_t range_of_tests = 7;  // All four (weighted) tests active in the beginning.
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| 
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|   for (size_t round = 0; round < kMemCmp16Rounds; ++round) {
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|     size_t type = r.next() % range_of_tests;
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|     size_t count1, count2;
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|     uint16_t *s1, *s2;  // Use raw pointers to simplify using clobbered addresses
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| 
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|     switch (type) {
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|       case 0:  // random, non-zero lengths of both strings
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|       case 1:
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|       case 2:
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|       case 3:
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|         count1 = (r.next() % max_length) + min_length;
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|         count2 = (r.next() % max_length) + min_length;
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|         break;
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| 
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|       case 4:  // random non-zero length of first, second is zero
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|         count1 = (r.next() % max_length) + min_length;
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|         count2 = 0U;
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|         break;
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| 
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|       case 5:  // random non-zero length of second, first is zero
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|         count1 = 0U;
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|         count2 = (r.next() % max_length) + min_length;
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|         break;
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| 
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|       case 6:  // both zero-length
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|         count1 = 0U;
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|         count2 = 0U;
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|         range_of_tests = 6;  // Don't do zero-zero again.
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|         break;
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| 
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|       default:
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|         ASSERT_TRUE(false) << "Should not get here.";
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|         continue;
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|     }
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| 
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|     if (count1 > 0U) {
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|       s1 = new uint16_t[count1];
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|     } else {
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|       // Leave a random pointer, should not be touched.
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|       s1 = reinterpret_cast<uint16_t*>(0xebad1001);
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|     }
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| 
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|     if (count2 > 0U) {
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|       s2 = new uint16_t[count2];
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|     } else {
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|       // Leave a random pointer, should not be touched.
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|       s2 = reinterpret_cast<uint16_t*>(0xebad2002);
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|     }
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| 
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|     size_t min = count1 < count2 ? count1 : count2;
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|     bool fill_same = r.next() % 2 == 1;
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| 
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|     if (fill_same) {
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|       for (size_t i = 0; i < min; ++i) {
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|         s1[i] = static_cast<uint16_t>(r.next() & 0xFFFF);
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|         s2[i] = s1[i];
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|       }
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|       for (size_t i = min; i < count1; ++i) {
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|         s1[i] = static_cast<uint16_t>(r.next() & 0xFFFF);
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|       }
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|       for (size_t i = min; i < count2; ++i) {
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|         s2[i] = static_cast<uint16_t>(r.next() & 0xFFFF);
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|       }
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|     } else {
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|       for (size_t i = 0; i < count1; ++i) {
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|         s1[i] = static_cast<uint16_t>(r.next() & 0xFFFF);
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|       }
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|       for (size_t i = 0; i < count2; ++i) {
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|         s2[i] = static_cast<uint16_t>(r.next() & 0xFFFF);
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|       }
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|     }
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| 
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|     uint16_t* s1_pot_unaligned = s1;
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|     uint16_t* s2_pot_unaligned = s2;
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|     size_t c1_mod = count1;
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|     size_t c2_mod = count2;
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| 
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|     if (!fill_same) {  // Don't waste a good "long" test.
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|       if (count1 > 1 && r.next() % 10 == 0) {
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|         c1_mod--;
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|         s1_pot_unaligned++;
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|       }
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|       if (count2 > 1 && r.next() % 10 == 0) {
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|         c2_mod--;
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|         s2_pot_unaligned++;
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|       }
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|     }
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|     size_t mod_min = c1_mod < c2_mod ? c1_mod : c2_mod;
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| 
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|     int32_t expected = memcmp16_compare(s1_pot_unaligned, s2_pot_unaligned, mod_min);
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|     int32_t computed = art::testing::MemCmp16Testing(s1_pot_unaligned, s2_pot_unaligned, mod_min);
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| 
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|     ASSERT_EQ(expected, computed) << "Run " << round << ", c1=" << count1 << " c2=" << count2;
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| 
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|     if (count1 > 0U) {
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|       delete[] s1;
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|     }
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|     if (count2 > 0U) {
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|       delete[] s2;
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|     }
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|   }
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| }
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| 
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| TEST_F(MemCmp16Test, RandomSeparateShort) {
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|   CheckSeparate(5U, 1U);
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| }
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| 
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| TEST_F(MemCmp16Test, RandomSeparateLong) {
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|   CheckSeparate(64U, 32U);
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| }
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| 
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| // TODO: What's a good test for overlapping memory. Is it important?
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| // TEST_F(MemCmp16Test, RandomOverlay) {
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| //
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| // }
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