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216 lines
7.8 KiB
216 lines
7.8 KiB
/*
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* UART_F32
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* 10 JUne 2022 - Separated from FM Discriminator
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*
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* Copyright (c) 2022 Bob Larkin
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to deal
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* in the Software without restriction, including without limitation the rights
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* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice shall be included in all
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* copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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* SOFTWARE.
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*/
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/* This object takes a single audio input representing the baseband output
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* of a suitable detector such as frequency or phase. The polarity of the
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* input is >0.0 for logic 1 as well as the the idle state and <0.0 for logic 0.
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* The timing of the UART is specified by the
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* setUART(cTauI, cTauHalfI, nBits, nParity, nStop) function. The first two
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* parameters are the data bit period measured in audio sample periods,
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* and half of that (roughly) that sets the number of audio sample periods between
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* between the 1-to-0 transition of the start bit and the middle of the start bit.
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* nBits can be between 1 and 32 (default 8). nParity can be PARITY_NONE,
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* PARITY_ODD or PARITY_EVEN. nStop is currently restricted to 1, but
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* this could change.
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*
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* Data is read using the functions
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* int32_t getNDataBuffer() that returns the number of words available
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* and readUartData() that returns a pointer to the oldest UART data structure:
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* struct uartData {
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* uint32_t data;
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* uint8_t error; // Parity=01, Overrun=02, Underrun=04
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* int32_t timeCrossings;}
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* Up to 16 of these structures can be buffered before creating
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* an ERR_OVERRUN.
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*
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* NOTE: Parity checking does nothing now. Needs to be added using
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* the in-place function. June 2022
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*
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* Time: For T4.0, 7 microseconds for 128 data points.
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*
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*/
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#ifndef _uart_f32_h
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#define _uart_f32_h
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#include "AudioStream_F32.h"
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#include "OpenAudio_ArduinoLibrary.h"
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#define SERIAL_IDLE 0
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#define SERIAL_DATA 1
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#define SERIAL_DATA_FINISHED 2
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#define PARITY_NONE 0
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#define PARITY_ODD 1
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#define PARITY_EVEN 2
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#define ERR_FRAME 1;
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#define ERR_OVERRUN 2
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#define ERR_PARITY 4
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struct uartData {
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uint32_t data;
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uint8_t status;
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int32_t timeCrossings;
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};
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class UART_F32 : public AudioStream_F32 {
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//GUI: inputs:1, outputs:0 //this line used for automatic generation of GUI node
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//GUI: shortName: uart
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public:
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// Default block size and sample rate:
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UART_F32(void) : AudioStream_F32(1, inputQueueArray_f32) {
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}
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// Option of AudioSettings_F32 change to block size and/or sample rate:
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UART_F32(const AudioSettings_F32 &settings) : AudioStream_F32(1, inputQueueArray_f32) {
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sampleRate_Hz = settings.sample_rate_Hz;
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block_size = settings.audio_block_samples;
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}
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void setUART(uint32_t _cTauI, uint32_t _cTauHalfI,
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uint16_t _nBits, uint16_t _nParity, uint16_t _nStop) {
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cTauI = _cTauI;
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cTauHalfI = _cTauHalfI;
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nBits = _nBits;
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nStop = _nStop;
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nTotal = 1 + nBits;
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if(nParity > 0) nTotal++;
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}
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// Returns the number of unread data words
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int32_t getNDataBuffer(void) {
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delay(1); // Why needed?? <<<<<<<<<<<<<<
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return (uartWriteIndex - uartReadIndex);
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}
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// Read UART data returns a pointer to the uartData structure.
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// This increments the index and thus can only be called once per
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// successful UART output word. If no data is available, a NULL
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// pointer is returned.
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struct uartData* readUartData(void) {
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if(uartReadIndex >= uartWriteIndex) // Never should be greater
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return NULL;
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int32_t uri = uartReadIndex & uartDMask;
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// Circular increment of the read index
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uartReadIndex++;
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bufferSpace = 16 - uartWriteIndex + uartReadIndex;
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return &uartD[uri];
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}
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// The input is a floating point value, centered on 0.0. One source of this
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// could be a discriminator base-band output. If the input signal is offset
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// from zero, it can be corrected with this function. This inputOffset is
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// added to the input and can be + or - in value.
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void setInputOffset(float32_t _inputOffset) {
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inputOffset = _inputOffset;
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}
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void setSampleRate_Hz(float32_t _sampleRate_Hz) {
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sampleRate_Hz = _sampleRate_Hz;
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}
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virtual void update(void);
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private:
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// One input data pointer
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audio_block_f32_t *inputQueueArray_f32[1];
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float32_t sampleRate_Hz = AUDIO_SAMPLE_RATE_EXACT;
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uint16_t block_size = AUDIO_BLOCK_SAMPLES;
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// BFSK decode clock variables
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// Always 1 start bit.
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uint16_t nBits = 8; // Data bits
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uint16_t nParity = PARITY_NONE;
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uint16_t nStop = 1; // Fixed for now
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uint16_t nTotal = 9; // 1+nBits+Parity
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uint32_t cTauI = 40UL;
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uint32_t cTauHalfI = 20UL;
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struct uartData uartD[16]; // Circular buffer of UART data
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float32_t inputOffset = 0.0f; // Offset of input data
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// These next 2 indices are the index, mod 16, where we wil write
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// data to next, or read data from next (if available).
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// If the two are equal, no data is available to read.
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int32_t uartReadIndex = 0L; // Both indices continue to grow, unbounded
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int32_t uartWriteIndex = 0L;
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const int32_t uartDMask = 0B1111; // Mask for 16 word buffer
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int32_t bufferSpace = 16L; // 16 - uartWriteIndex + uartReadIndex
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uint16_t serialState = SERIAL_IDLE;
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uint8_t saveStatus;
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float32_t yData = 0.0f;
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float32_t yLast = -0.01f;
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float32_t yClock = -1.0f;
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float32_t errorClock = 0.0f;
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uint32_t sClock = 0UL; // Counted in audio sample units
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uint32_t lastTime = 0UL; // Last zero crossing
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uint32_t timeStartBit= 0UL;
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uint32_t timeLastTransition = 0UL;
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uint32_t cSampleNext = 0UL;
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uint8_t bitCount = 0UL; // Where we are at in receiving word
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uint32_t bitMask = 1; // Values 1, 2, 4, 8, 16,... tracks bitCount
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uint32_t dataWord = 0UL;
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uint32_t elapsedTime = 0UL;
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void initUartData(uint n) {
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uartD[n].data = 0UL;
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uartD[n].status = 0; // including data ready, overrun, parity and framing errors
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uartD[n].timeCrossings = 0;
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}
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// Write an output word for Serial BFSK modem
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void writeUartData(uint32_t _data, uint8_t _status, int32_t _timeCrossings) {
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bufferSpace = 16L - uartWriteIndex + uartReadIndex; //0 to 16 amount of space available
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if(bufferSpace > 0)
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{
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uartD[uartWriteIndex&uartDMask].data = _data;
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uartD[uartWriteIndex&uartDMask].status = _status;
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uartD[uartWriteIndex&uartDMask].timeCrossings = _timeCrossings;
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uartWriteIndex++; // Bump write index
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saveStatus &= ~ERR_OVERRUN; // Clear overrun bit, it has finally been sent
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}
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else // No room in buffer
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{
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saveStatus |= ERR_OVERRUN; // Error gets sent when overrun is cleared
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}
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bufferSpace = 16L - uartWriteIndex + uartReadIndex;
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}
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// Thanks svicent. NEEDS TO BE ADDED TO writeUartData() <<<----
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uint8_t oddParity(uint32_t ino) {
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uint8_t n8 = 0;
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while(ino != 0)
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{
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n8++;
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ino &= (ino-1); // the loop will execute once for each bit of ino set
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}
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/* if n8 is odd, least significant bit will be 1 */
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return (n8 & 1);
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}
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}; // End class UART_F32
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#endif
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