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Small optimization to address calculation
Due to integer promotion, the calculation of what to write to PORTD was inefficient. Based on my benchmarking, it didn't really matter though.
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@ -141,7 +141,7 @@ void ParallelBus_SetAddress(uint32_t address)
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PORTA = u.addrBytes[0]; // A0-A7
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PORTC = u.addrBytes[1]; // A8-A15
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// A16-A20 are special because they are split up...(We use PORTD pins 0, 1, 4, 5, 6)
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u.addrBytes[2] = (u.addrBytes[2] & 0x03) | ((u.addrBytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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u.addrBytes[2] = (u.addrBytes[2] & 0x03) | (uint8_t)((u.addrBytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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PORTD = u.addrBytes[2];
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}
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@ -477,7 +477,7 @@ void ParallelBus_WriteCycle(uint32_t address, uint32_t data)
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u.word = address;
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PORTA = u.bytes[0];
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PORTC = u.bytes[1];
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u.bytes[2] = (u.bytes[2] & 0x03) | ((u.bytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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u.bytes[2] = (u.bytes[2] & 0x03) | (uint8_t)((u.bytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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PORTD = u.bytes[2];
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// If the data port is not already set as outputs, set it to be outputs now
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@ -566,7 +566,7 @@ uint32_t ParallelBus_ReadCycle(uint32_t address)
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u.word = address;
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PORTA = u.bytes[0];
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PORTC = u.bytes[1];
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u.bytes[2] = (u.bytes[2] & 0x03) | ((u.bytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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u.bytes[2] = (u.bytes[2] & 0x03) | (uint8_t)((u.bytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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PORTD = u.bytes[2];
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// Start the SPI read. Each clock cycle at 16 MHz is 62.5 nanoseconds. We don't want to
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@ -646,7 +646,7 @@ void ParallelBus_Read(uint32_t startAddress, uint32_t *buf, uint16_t len)
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u.word = startAddress++;
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PORTA = u.bytes[0];
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PORTC = u.bytes[1];
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u.bytes[2] = (u.bytes[2] & 0x03) | ((u.bytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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u.bytes[2] = (u.bytes[2] & 0x03) | (uint8_t)((u.bytes[2] & 0x1C) << 2) | (PORTD & 0x8C);
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PORTD = u.bytes[2];
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// Start the SPI read. Each clock cycle at 16 MHz is 62.5 nanoseconds. We don't want to
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