mirror of https://github.com/arendst/Tasmota.git
562 lines
17 KiB
C++
562 lines
17 KiB
C++
// Copyright 2017 David Conran
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#include "IRrecv_test.h"
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#include "IRrecv.h"
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#include "IRremoteESP8266.h"
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#include "IRsend.h"
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#include "IRsend_test.h"
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#include "gtest/gtest.h"
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// Tests for the IRrecv object.
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TEST(TestIRrecv, DefaultBufferSize) {
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IRrecv irrecv_default(1);
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EXPECT_EQ(kRawBuf, irrecv_default.getBufSize());
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}
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TEST(TestIRrecv, LargeBufferSize) {
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IRrecv irrecv_large(3, 1024);
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EXPECT_EQ(1024, irrecv_large.getBufSize());
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}
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TEST(TestIRrecv, SmallBufferSize) {
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IRrecv irrecv_small(4, 80);
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EXPECT_EQ(80, irrecv_small.getBufSize());
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}
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TEST(TestIRrecv, MediumBufferSize) {
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IRrecv irrecv_medium(4, 512);
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EXPECT_EQ(512, irrecv_medium.getBufSize());
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}
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TEST(TestIRrecv, IRrecvDestructor) {
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IRrecv *irrecv_ptr = new IRrecv(1);
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EXPECT_EQ(kRawBuf, irrecv_ptr->getBufSize());
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delete irrecv_ptr;
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irrecv_ptr = new IRrecv(1, 1234);
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EXPECT_EQ(1234, irrecv_ptr->getBufSize());
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delete irrecv_ptr;
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irrecv_ptr = new IRrecv(1, 123);
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EXPECT_EQ(123, irrecv_ptr->getBufSize());
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delete irrecv_ptr;
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}
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// Tests for copyIrParams()
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TEST(TestCopyIrParams, CopyEmpty) {
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irparams_t src;
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irparams_t dst;
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uint16_t test_size = 1234;
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src.bufsize = test_size;
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src.rawlen = 0;
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src.rawbuf = new uint16_t[test_size];
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src.overflow = false;
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dst.bufsize = 4567;
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dst.rawlen = 123;
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dst.rawbuf = new uint16_t[test_size];
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dst.overflow = true;
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// Confirm we are looking at different memory for the buffers.
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ASSERT_NE(src.rawbuf, dst.rawbuf);
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IRrecv irrecv(4);
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irrecv.copyIrParams(&src, &dst);
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ASSERT_EQ(src.bufsize, dst.bufsize);
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ASSERT_EQ(src.rawlen, dst.rawlen);
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ASSERT_NE(src.rawbuf, dst.rawbuf); // Pointers, not content.
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ASSERT_EQ(src.overflow, dst.overflow);
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// Contents of the buffers needs to match.
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EXPECT_EQ(0, memcmp(src.rawbuf, dst.rawbuf, src.bufsize * sizeof(uint16_t)));
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}
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TEST(TestCopyIrParams, CopyNonEmpty) {
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irparams_t src;
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irparams_t dst;
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uint16_t test_size = 1234;
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src.bufsize = test_size;
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src.rawlen = 67;
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src.rawbuf = new uint16_t[test_size];
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src.rawbuf[0] = 0xF00D;
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src.rawbuf[1] = 0xBEEF;
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src.rawbuf[test_size - 1] = 0xDEAD;
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src.overflow = true;
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dst.bufsize = 0;
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dst.rawlen = 0;
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dst.rawbuf = new uint16_t[test_size];
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dst.overflow = false;
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// Confirm we are looking at different memory for the buffers.
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ASSERT_NE(src.rawbuf, dst.rawbuf);
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// and that they differ before we test.
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EXPECT_NE(0, memcmp(src.rawbuf, dst.rawbuf, src.bufsize * sizeof(uint16_t)));
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IRrecv irrecv(4);
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irrecv.copyIrParams(&src, &dst);
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ASSERT_EQ(src.bufsize, dst.bufsize);
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EXPECT_EQ(test_size, dst.bufsize);
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ASSERT_EQ(src.rawlen, dst.rawlen);
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EXPECT_EQ(67, dst.rawlen);
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ASSERT_EQ(src.overflow, dst.overflow);
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EXPECT_TRUE(dst.overflow);
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ASSERT_NE(src.rawbuf, dst.rawbuf); // Pointers, not content.
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// Contents of the buffers needs to match.
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EXPECT_EQ(0, memcmp(src.rawbuf, dst.rawbuf, src.bufsize * sizeof(uint16_t)));
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// Check the canary values.
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EXPECT_EQ(0xF00D, dst.rawbuf[0]);
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EXPECT_EQ(0xBEEF, dst.rawbuf[1]);
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EXPECT_EQ(0xDEAD, dst.rawbuf[test_size - 1]);
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}
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// Tests for decode().
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// Test decode of a NEC message.
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TEST(TestDecode, DecodeNEC) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendNEC(0x807F40BF);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(NEC, irsend.capture.decode_type);
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EXPECT_EQ(kNECBits, irsend.capture.bits);
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EXPECT_EQ(0x807F40BF, irsend.capture.value);
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}
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// Test decode of a JVC message.
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TEST(TestDecode, DecodeJVC) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendJVC(0xC2B8);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(JVC, irsend.capture.decode_type);
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EXPECT_EQ(kJvcBits, irsend.capture.bits);
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EXPECT_EQ(0xC2B8, irsend.capture.value);
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}
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// Test decode of a LG message.
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TEST(TestDecode, DecodeLG) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendLG(0x4B4AE51);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(LG, irsend.capture.decode_type);
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EXPECT_EQ(kLgBits, irsend.capture.bits);
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EXPECT_EQ(0x4B4AE51, irsend.capture.value);
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irsend.reset();
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irsend.sendLG(0xB4B4AE51, kLg32Bits);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(LG, irsend.capture.decode_type);
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EXPECT_EQ(kLg32Bits, irsend.capture.bits);
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EXPECT_EQ(0xB4B4AE51, irsend.capture.value);
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}
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// Test decode of a Panasonic message.
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TEST(TestDecode, DecodePanasonic) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendPanasonic64(0x40040190ED7C);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decodePanasonic(&irsend.capture, kPanasonicBits, true));
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EXPECT_EQ(PANASONIC, irsend.capture.decode_type);
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EXPECT_EQ(kPanasonicBits, irsend.capture.bits);
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EXPECT_EQ(0x40040190ED7C, irsend.capture.value);
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}
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// Test decode of a Samsun message.
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TEST(TestDecode, DecodeSamsung) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendSAMSUNG(0xE0E09966);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(SAMSUNG, irsend.capture.decode_type);
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EXPECT_EQ(kSamsungBits, irsend.capture.bits);
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EXPECT_EQ(0xE0E09966, irsend.capture.value);
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}
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// Test decode of a Sherwood message.
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TEST(TestDecode, DecodeSherwood) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendSherwood(0x807F40BF);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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// Sherwood codes are really NEC codes.
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EXPECT_EQ(NEC, irsend.capture.decode_type);
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EXPECT_EQ(kNECBits, irsend.capture.bits);
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EXPECT_EQ(0x807F40BF, irsend.capture.value);
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}
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// Test decode of a Whynter message.
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TEST(TestDecode, DecodeWhynter) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendWhynter(0x87654321);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(WHYNTER, irsend.capture.decode_type);
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EXPECT_EQ(kWhynterBits, irsend.capture.bits);
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EXPECT_EQ(0x87654321, irsend.capture.value);
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}
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// Test decode of Sony messages.
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TEST(TestDecode, DecodeSony) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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// Synthesised Normal Sony 20-bit message.
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irsend.reset();
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irsend.sendSony(irsend.encodeSony(kSony20Bits, 0x1, 0x1, 0x1));
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(SONY, irsend.capture.decode_type);
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EXPECT_EQ(kSony20Bits, irsend.capture.bits);
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EXPECT_EQ(0x81080, irsend.capture.value);
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// Synthesised Normal Sony 15-bit message.
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irsend.reset();
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irsend.sendSony(irsend.encodeSony(kSony15Bits, 21, 1), kSony15Bits);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(SONY, irsend.capture.decode_type);
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EXPECT_EQ(kSony15Bits, irsend.capture.bits);
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EXPECT_EQ(0x5480, irsend.capture.value);
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// Synthesised Normal Sony 12-bit message.
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irsend.reset();
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irsend.sendSony(irsend.encodeSony(kSony12Bits, 21, 1), kSony12Bits);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(SONY, irsend.capture.decode_type);
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EXPECT_EQ(kSony12Bits, irsend.capture.bits);
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EXPECT_EQ(0xA90, irsend.capture.value);
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}
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// Test decode of Sharp messages.
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TEST(TestDecode, DecodeSharp) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendSharpRaw(0x454A);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(SHARP, irsend.capture.decode_type);
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EXPECT_EQ(kSharpBits, irsend.capture.bits);
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EXPECT_EQ(0x454A, irsend.capture.value);
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}
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// Test decode of Sanyo messages.
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TEST(TestDecode, DecodeSanyo) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendSanyoLC7461(0x2468DCB56A9);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(SANYO_LC7461, irsend.capture.decode_type);
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EXPECT_EQ(kSanyoLC7461Bits, irsend.capture.bits);
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EXPECT_EQ(0x2468DCB56A9, irsend.capture.value);
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}
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// Test decode of RC-MM messages.
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TEST(TestDecode, DecodeRCMM) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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// Normal RCMM 24-bit message.
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irsend.reset();
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irsend.sendRCMM(0xe0a600);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RCMM, irsend.capture.decode_type);
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EXPECT_EQ(kRCMMBits, irsend.capture.bits);
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EXPECT_EQ(0xe0a600, irsend.capture.value);
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// Normal RCMM 12-bit message.
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irsend.reset();
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irsend.sendRCMM(0x600, 12);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RCMM, irsend.capture.decode_type);
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EXPECT_EQ(12, irsend.capture.bits);
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EXPECT_EQ(0x600, irsend.capture.value);
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// Normal RCMM 32-bit message.
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irsend.reset();
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irsend.sendRCMM(0x28e0a600, 32);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RCMM, irsend.capture.decode_type);
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EXPECT_EQ(32, irsend.capture.bits);
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EXPECT_EQ(0x28e0a600, irsend.capture.value);
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}
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// Test decode of Mitsubishi messages.
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TEST(TestDecode, DecodeMitsubishi) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendMitsubishi(0xC2B8);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(MITSUBISHI, irsend.capture.decode_type);
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EXPECT_EQ(kMitsubishiBits, irsend.capture.bits);
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EXPECT_EQ(0xC2B8, irsend.capture.value);
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}
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// Test decode of RC-5/RC-5X messages.
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TEST(TestDecode, DecodeRC5) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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// Normal RC-5 12-bit message.
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irsend.reset();
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irsend.sendRC5(0x175);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RC5, irsend.capture.decode_type);
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EXPECT_EQ(kRC5Bits, irsend.capture.bits);
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EXPECT_EQ(0x175, irsend.capture.value);
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// Synthesised Normal RC-5X 13-bit message.
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irsend.reset();
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irsend.sendRC5(irsend.encodeRC5X(0x02, 0x41, true), kRC5XBits);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RC5X, irsend.capture.decode_type);
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EXPECT_EQ(kRC5XBits, irsend.capture.bits);
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EXPECT_EQ(0x1881, irsend.capture.value);
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}
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// Test decode of RC-6 messages.
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TEST(TestDecode, DecodeRC6) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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// Normal RC-6 Mode 0 (20-bit) message.
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irsend.reset();
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irsend.sendRC6(0x175);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RC6, irsend.capture.decode_type);
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EXPECT_EQ(kRC6Mode0Bits, irsend.capture.bits);
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EXPECT_EQ(0x175, irsend.capture.value);
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// Normal RC-6 36-bit message.
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irsend.reset();
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irsend.sendRC6(0xC800F742A, kRC6_36Bits);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(RC6, irsend.capture.decode_type);
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EXPECT_EQ(kRC6_36Bits, irsend.capture.bits);
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EXPECT_EQ(0xC800F742A, irsend.capture.value);
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}
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// Test decode of Dish messages.
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TEST(TestDecode, DecodeDish) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendDISH(0x9C00);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(DISH, irsend.capture.decode_type);
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EXPECT_EQ(kDishBits, irsend.capture.bits);
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EXPECT_EQ(0x9C00, irsend.capture.value);
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}
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// Test decode of Denon messages.
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TEST(TestDecode, DecodeDenon) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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// Normal Denon 15-bit message. (Sharp)
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irsend.reset();
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irsend.sendDenon(0x2278);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(DENON, irsend.capture.decode_type);
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EXPECT_EQ(DENON_BITS, irsend.capture.bits);
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EXPECT_EQ(0x2278, irsend.capture.value);
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// Legacy Denon 14-bit message.
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irsend.reset();
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irsend.sendDenon(0x1278, kDenonLegacyBits);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(DENON, irsend.capture.decode_type);
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EXPECT_EQ(DENON_BITS, irsend.capture.bits);
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EXPECT_EQ(0x1278, irsend.capture.value);
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// Normal Denon 48-bit message. (Panasonic/Kaseikyo)
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irsend.reset();
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irsend.sendDenon(0x2A4C028D6CE3, DENON_48_BITS);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(DENON, irsend.capture.decode_type);
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EXPECT_EQ(DENON_48_BITS, irsend.capture.bits);
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EXPECT_EQ(0x2A4C028D6CE3, irsend.capture.value);
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}
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// Test decode of Coolix messages.
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TEST(TestDecode, DecodeCoolix) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendCOOLIX(0x123456);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(COOLIX, irsend.capture.decode_type);
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EXPECT_EQ(kCoolixBits, irsend.capture.bits);
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EXPECT_EQ(0x123456, irsend.capture.value);
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}
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// Test decode of Aiwa messages.
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TEST(TestDecode, DecodeAiwa) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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irsend.reset();
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irsend.sendAiwaRCT501(0x7F);
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irsend.makeDecodeResult();
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ASSERT_TRUE(irrecv.decode(&irsend.capture));
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EXPECT_EQ(AIWA_RC_T501, irsend.capture.decode_type);
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EXPECT_EQ(kAiwaRcT501Bits, irsend.capture.bits);
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EXPECT_EQ(0x7F, irsend.capture.value);
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}
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// Test matchData() on space encoded data.
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TEST(TestMatchData, SpaceEncoded) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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irsend.begin();
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uint16_t space_encoded_raw[11] = {500, 500, 500, 1500, 499, 499,
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501, 1501, 499, 1490, 500};
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match_result_t result;
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irsend.reset();
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irsend.sendRaw(space_encoded_raw, 11, 38000);
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irsend.makeDecodeResult();
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result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 500, 1500, 500, 500);
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ASSERT_TRUE(result.success);
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EXPECT_EQ(0b01011, result.data);
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EXPECT_EQ(10, result.used);
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irsend.reset();
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irsend.sendRaw(space_encoded_raw, 11, 38000);
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irsend.makeDecodeResult();
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result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 500, 1000, 500, 500);
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ASSERT_FALSE(result.success);
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}
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// Test matchData() on mark encoded data.
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TEST(TestMatchData, MarkEncoded) {
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IRsendTest irsend(0);
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IRrecv irrecv(1);
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|
irsend.begin();
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|
|
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uint16_t mark_encoded_raw[11] = {500, 500, 1500, 500, 499, 499,
|
|
1501, 501, 1499, 490, 500};
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|
match_result_t result;
|
|
|
|
irsend.reset();
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|
irsend.sendRaw(mark_encoded_raw, 11, 38000);
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|
irsend.makeDecodeResult();
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// MSBF order.
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|
result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1500, 500, 500, 500);
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ASSERT_TRUE(result.success);
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EXPECT_EQ(0b01011, result.data);
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|
EXPECT_EQ(10, result.used);
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|
// LSBF order.
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result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1500, 500, 500, 500,
|
|
kTolerance, kMarkExcess, false);
|
|
ASSERT_TRUE(result.success);
|
|
EXPECT_EQ(0b11010, result.data); // Bits reversed of the previous test.
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|
EXPECT_EQ(10, result.used);
|
|
|
|
irsend.reset();
|
|
irsend.sendRaw(mark_encoded_raw, 11, 38000);
|
|
irsend.makeDecodeResult();
|
|
// MSBF order.
|
|
result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1000, 500, 500, 500);
|
|
ASSERT_FALSE(result.success);
|
|
// LSBF order.
|
|
result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1000, 500, 500, 500,
|
|
kTolerance, kMarkExcess, false);
|
|
ASSERT_FALSE(result.success);
|
|
}
|
|
|
|
// Test matchData() on "equal total bit time" encoded data.
|
|
TEST(TestMatchData, EqualTotalBitTimeEncoded) {
|
|
IRsendTest irsend(0);
|
|
IRrecv irrecv(1);
|
|
irsend.begin();
|
|
|
|
uint16_t equal_encoded_raw[11] = {500, 1500, 1500, 500, 499, 1499,
|
|
1501, 501, 1499, 490, 500};
|
|
match_result_t result;
|
|
|
|
irsend.reset();
|
|
irsend.sendRaw(equal_encoded_raw, 11, 38000);
|
|
irsend.makeDecodeResult();
|
|
result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1500, 500, 500, 1500);
|
|
ASSERT_TRUE(result.success);
|
|
EXPECT_EQ(0b01011, result.data);
|
|
EXPECT_EQ(10, result.used);
|
|
|
|
irsend.reset();
|
|
irsend.sendRaw(equal_encoded_raw, 11, 38000);
|
|
irsend.makeDecodeResult();
|
|
result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1000, 500, 500, 1000);
|
|
ASSERT_FALSE(result.success);
|
|
}
|
|
|
|
// Test matchData() on arbitrary encoded data.
|
|
TEST(TestMatchData, ArbitraryEncoded) {
|
|
IRsendTest irsend(0);
|
|
IRrecv irrecv(1);
|
|
irsend.begin();
|
|
|
|
uint16_t arbitrary_encoded_raw[11] = {500, 1500, 3000, 1000, 499, 1499,
|
|
3001, 1001, 2999, 990, 500};
|
|
match_result_t result;
|
|
|
|
irsend.reset();
|
|
irsend.sendRaw(arbitrary_encoded_raw, 11, 38000);
|
|
irsend.makeDecodeResult();
|
|
result =
|
|
irrecv.matchData(irsend.capture.rawbuf + 1, 5, 3000, 1000, 500, 1500);
|
|
ASSERT_TRUE(result.success);
|
|
EXPECT_EQ(0b01011, result.data);
|
|
EXPECT_EQ(10, result.used);
|
|
|
|
irsend.reset();
|
|
irsend.sendRaw(arbitrary_encoded_raw, 11, 38000);
|
|
irsend.makeDecodeResult();
|
|
result = irrecv.matchData(irsend.capture.rawbuf + 1, 5, 1000, 500, 500, 1000);
|
|
ASSERT_FALSE(result.success);
|
|
}
|