I have a few MAX7219 modules that use a different column assignment and the 2 already implemented orientations did not work for me. After these changes DisplayRotate 1 and DisplayRotate 3 commands do what they are supposed to do.
438 lines
13 KiB
C++
438 lines
13 KiB
C++
/*
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* LedMatrix.h - Extends the Library LedControl for multiple 8x8 LED dot matrix maxDevices, based on MAX7219/MAX7221
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* Copyright (c) 2021 Michael Beuss
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*
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* Permission is hereby granted, free of charge, to any person
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* obtaining a copy of this software and associated documentation
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* files (the "Software"), to deal in the Software without
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* restriction, including without limitation the rights to use,
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* copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the
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* Software is furnished to do so, subject to the following
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* conditions:
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*
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* This permission notice shall be included in all copies or
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* substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
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* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES
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* OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
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* NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT
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* HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY,
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* WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
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* FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
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* OTHER DEALINGS IN THE SOFTWARE.
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*/
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#include "LedMatrix.h"
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#include "font_6x8_base.h"
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//#include "font_6x8_UTF8_C2.h" // additional characters if needed
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//#include "font_6x8_UTF8_C3.h" // additional characters (latin1) if needed
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#include "../../../../tasmota/my_user_config.h" // to check compiler option USE_UTF8_LATIN1
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#ifdef USE_UTF8_LATIN1
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#include "font_6x8_UTF8_C2.h" // 256 bytes
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#include "font_6x8_UTF8_C3.h" // 512 bytes
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#endif
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//the opcodes for the MAX7221 and MAX7219
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#define OP_NOOP 0
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#define OP_DIGIT0 1
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#define OP_DIGIT1 2
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#define OP_DIGIT2 3
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#define OP_DIGIT3 4
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#define OP_DIGIT4 5
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#define OP_DIGIT5 6
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#define OP_DIGIT6 7
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#define OP_DIGIT7 8
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#define OP_DECODEMODE 9
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#define OP_INTENSITY 10
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#define OP_SCANLIMIT 11
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#define OP_SHUTDOWN 12
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#define OP_DISPLAYTEST 15
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LedMatrix::LedMatrix(int dataPin, int clkPin, int csPin, unsigned int colums, unsigned int rows)
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{
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if (colums * rows > MAX72XX_MAX_DEVICES)
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{
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// dimension exeeds maximum buffer size
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if (colums >= MAX72XX_MAX_DEVICES)
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{
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colums = MAX72XX_MAX_DEVICES;
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rows = 1;
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}
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else
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{
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rows = MAX72XX_MAX_DEVICES / colums;
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}
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}
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charWidth = font_char_width; // defined in header file of font
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charHeight = font_char_height; // defined in header file of font
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modulesPerRow = colums;
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modulesPerCol = rows;
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displayWidth = colums * 8;
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displayHeight = rows * 8;
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maxDevices = colums * rows;
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moduleOrientation = ORIENTATION_UPSIDE_DOWN; // use setOrientation() to turn it
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textBuf[0] = 0;
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textWidth = 0;
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textPosX = 0;
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textPosY = 0;
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appendTextBuf[0] = 0;
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setScrollAppendText(" ");
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powerIsOn = false;
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// initialize all connected MAX7219/MAX7221 devices
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SPI_MOSI = dataPin;
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SPI_CLK = clkPin;
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SPI_CS = csPin;
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pinMode(SPI_MOSI, OUTPUT);
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pinMode(SPI_CLK, OUTPUT);
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pinMode(SPI_CS, OUTPUT);
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SPI_MOSI = dataPin;
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//spiTransfer_value(OP_DISPLAYTEST, 0); // display test
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spiTransfer_value(OP_SCANLIMIT, 7); // scanlimit is set to max on startup
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spiTransfer_value(OP_DECODEMODE, 0); // decode is done in source
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clearDisplay();
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//spiTransfer_value(OP_SHUTDOWN, 0); //we go into shutdown-mode (LEDs off) on startup
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setIntensity(7); // initialize with the half of the maximum intensity [0..15]
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power(true); // power on;
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}
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bool LedMatrix::drawText( const char *str, bool clearBefore)
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{
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if(clearBefore) clearDisplay();
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strncpy(textBuf, str, TEXT_BUFFER_SIZE -1);
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textPosX = 0;
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textPosY = 0;
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textLen = countChars(str);
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textWidth = textLen * charWidth;
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if(textWidth <= displayWidth)
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{
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// text fits into the display, place it into the center
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textPosX = (displayWidth - textWidth) / 2; // center
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}
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else
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{
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// The text ist longer than the display width. Scrolling is needed.
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// Add a space in front of text to have a distance to the pervious scroll text.
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addSpace();
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}
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drawTextAt(textBuf, textPosX, textPosY);
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refresh(); // refresh display with the new drawed string content
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return true;
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}
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bool LedMatrix::drawTextAt( const char *str, const int x, const int y )
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{
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// draw character by character
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int xPos = x;
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const char* fontChar = nullptr;
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for (unsigned int i = 0; (i<TEXT_BUFFER_SIZE && str[i]!=0); i++)
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{
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char c = str[i];
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fontChar = font_20_7F[char('_') - 0x20]; // default character in case of non printable or undefined
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if( c >= 0x20 && c < 0x80) // basic font
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{
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fontChar = font_20_7F[c-0x20];
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}
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#ifdef font_6x8_UTF8_C2_h
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else if(c == 0xC2) // UTF special characters
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{
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i++;
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c= str[i];
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if(c>= 0xA0 && c < 0xC0)
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{
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fontChar = font_UTF_C2_A0_BF[c - 0xA0];
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}
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}
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#endif // font_6x8_UTF8_C2_h
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#ifdef font_6x8_UTF8_C3_h
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else if(c == 0xC3) // UTF latin1
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{
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i++;
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c= str[i];
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if(c>= 0x80 && c < 0xC0)
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{
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fontChar = font_UTF_C3_80_BF[c - 0x80];
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}
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}
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#endif // font_6x8_UTF8_C3_h
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else if(c>= 0xC0 && c <= 0xDF)
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{
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i += 1; // 2 byte UTF sequence
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}
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else if(c>= 0xE0 && c <= 0xEF)
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{
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i += 2; // 3 byte UTF sequence
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}
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else if(c>= 0xF0 && c <= 0xF7)
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{
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i += 3; // 4 byte UTF sequence
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}
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drawCharAt(fontChar, xPos, y);
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xPos += charWidth;
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}
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return true;
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}
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int LedMatrix::countChars( const char* utfText)
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{
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int len = 0;
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for( int i = 0; (i<TEXT_BUFFER_SIZE && utfText[i]!=0); i++)
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{
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char c = utfText[i];
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if( c < 0xC0)
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{
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// 1 byte UTF sequence
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}
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else if(c <= 0xDF)
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{
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i += 1; // 2 byte UTF sequence
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}
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else if(c <= 0xEF)
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{
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i += 2; // 3 byte UTF sequence
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}
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else if(c <= 0xF7)
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{
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i += 3; // 4 byte UTF sequence
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}
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len++;
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}
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return len;
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}
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bool LedMatrix::scrollText()
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{
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if(textWidth <= displayWidth) return false; // do not scroll when text fits into the display
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textPosX--;
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if(textPosX + textWidth < (int)0)
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{
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textPosX = 0; // start from the beginning after text scrolled out of display;
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}
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drawTextAt(textBuf, textPosX, textPosY);
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int startOfRepeatingTextPos = textPosX + textWidth;
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if(startOfRepeatingTextPos < displayWidth)
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{
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// draw repeating text
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drawTextAt(textBuf, startOfRepeatingTextPos, textPosY);
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}
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refresh();
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return true;
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}
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void LedMatrix::power(bool on)
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{
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powerIsOn = on;
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byte value = 0; // 0: shutdown
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if(on) value = 1; // 1: power on
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spiTransfer_value(OP_SHUTDOWN, value); // power(false) shuts down the display
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}
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bool LedMatrix::isPowerOn()
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{
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return powerIsOn;
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}
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bool LedMatrix::clearDisplay(void)
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{
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memset(textBuf, 0, TEXT_BUFFER_SIZE);
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textWidth = 0;
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memset(buffer, 0, MATRIX_BUFFER_SIZE);
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for (int row = 0; row < 8; row++)
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{
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spiTransfer_value(row + 1, 0);
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}
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return true;
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}
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bool LedMatrix::setIntensity(byte intensity)
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{
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if (intensity < 0 || intensity > 15)
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return false;
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spiTransfer_value(OP_INTENSITY, intensity);
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return true;
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}
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bool LedMatrix::setOrientation(LedMatrix::ModuleOrientation orientation)
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{
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if(moduleOrientation != orientation)
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{
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moduleOrientation = orientation;
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refresh();
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}
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return true;
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}
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bool LedMatrix::setScrollAppendText(const char* append )
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{
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strncpy(appendTextBuf, append, TEXT_APPEND_BUFFER_SIZE -1);
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return (strlen(append) < TEXT_APPEND_BUFFER_SIZE);
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}
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bool LedMatrix::setPixel(const int x, const int y, bool on)
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{
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if (x >= displayWidth || y >= displayHeight)
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return false;
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int modul_col = x / 8; // x pos divided by 8 is the index of the modul to the right
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int buffer_pos = modul_col + y * modulesPerRow;
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byte buffer_byte = 0x80 >> (x % 8);
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if (on)
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{
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buffer[buffer_pos] |= buffer_byte; // set bit
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}
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else
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{
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buffer[buffer_pos] &= ~buffer_byte; // reset bit
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}
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return true;
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}
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void LedMatrix::refresh()
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{
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int col = 0;
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int pixelRow = 0;
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int bufPos = 0;
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int deviceRow = 0;
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for(int ledRow = 7; ledRow >= 0; ledRow--) // refresh from buttom to top
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{
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for( int addr = 0; addr < maxDevices; addr++)
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{
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if(moduleOrientation == ORIENTATION_NORMAL || moduleOrientation == ORIENTATION_UPSIDE_DOWN)
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{
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col = addr % modulesPerRow;
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pixelRow = (addr / modulesPerRow) * 8 + ledRow;
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bufPos = pixelRow * modulesPerRow + col;
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if(moduleOrientation == ORIENTATION_NORMAL)
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{
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// ORIENTATION_NORMAL
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deviceDataBuff[addr] = revereBitorder(buffer[bufPos]); // mirror
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deviceRow = 7 - ledRow; // upside down
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}
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else
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{
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// ORIENTATION_UPSIDE_DOWN
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deviceDataBuff[maxDevices -1 - addr] = buffer[bufPos];
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deviceRow = ledRow;
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}
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}
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else // ORIENTATION_TURN_RIGHT || ORIENTATION_TURN_LEFT
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{
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col = addr % modulesPerRow;
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pixelRow = (addr / modulesPerRow) * 8 + ledRow;
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bufPos = pixelRow * modulesPerRow + col;
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if (moduleOrientation == ORIENTATION_TURN_RIGHT)
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{
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// ORIENTATION_TURN_RIGHT
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deviceDataBuff[addr] = buffer[bufPos];
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deviceRow = ledRow;
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}
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else
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{
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// ORIENTATION_TURN_LEFT
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deviceDataBuff[maxDevices - 1 - addr] = revereBitorder(buffer[bufPos]);
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deviceRow = 7 - ledRow; // upside down
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}
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}
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}
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setRow_allDevices(deviceRow, deviceDataBuff);
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}
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}
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// private functions
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/**
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* @brief
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*
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* @param fontChar defines the pixelrows of a character. const char fontChar[charHeight]
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* @param x
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* @param y
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*/
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bool LedMatrix::drawCharAt( const char* fontChar, const int x, const int y)
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{
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// ignore when the character position is not visible on the display
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bool visible = (
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x > 0 - (int)charWidth && x < (int)displayWidth &&
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y > 0 - (int)charHeight && y < (int)displayHeight
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);
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if (!visible) return false;
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// ignore the leading bits above charWidth of the font definition
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static const byte charOffset = 8 - charWidth;
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for (byte charY = 0; charY < charHeight; charY++)
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{
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char pixelRow = (fontChar[charY]) << charOffset; // skip the first bits when the character width is smaller than 8 pixel
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for (byte charX = 0; charX < charWidth; charX++)
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{
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bool pixel = (pixelRow & 0x80); // pixel=true when upper bit is set
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setPixel(x + charX, y + charY, pixel);
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pixelRow = pixelRow << 1; // next pixel
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}
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}
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return true;
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}
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byte LedMatrix::revereBitorder (byte b)
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{
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static const byte lookup[16] = {
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0x0, 0x8, 0x4, 0xc, 0x2, 0xa, 0x6, 0xe,
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0x1, 0x9, 0x5, 0xd, 0x3, 0xb, 0x7, 0xf
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};
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return (lookup[b & 0b1111] << 4) | lookup[b >> 4];
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}
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void LedMatrix::addSpace()
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{
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strncat(textBuf, appendTextBuf, TEXT_BUFFER_SIZE -1);
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textPosX = strlen(appendTextBuf) * charWidth; // start scrolling with space
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textLen = countChars(textBuf);
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textWidth = countChars(textBuf) * charWidth;
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}
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void LedMatrix::setRow_allDevices(int row, byte *data)
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{
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if (row < 0 || row > 7)
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return;
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spiTransfer_array(row + 1, data);
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}
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void LedMatrix::spiTransfer_array(byte opcode, const byte* data) {
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// create an array with the data to shift out
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for (int addr = 0; addr < maxDevices; addr++)
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{
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spidata[addr * 2 + 1] = opcode;
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spidata[addr * 2] = data[addr];
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}
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// enable the line
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digitalWrite(SPI_CS, LOW);
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// shift out the data
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for (int i = maxDevices * 2 -1; i >= 0; i--)
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{
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shiftOut(SPI_MOSI, SPI_CLK, MSBFIRST, spidata[i]);
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}
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// latch the data onto the display
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digitalWrite(SPI_CS, HIGH);
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}
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void LedMatrix::spiTransfer_value(byte opcode, byte value)
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{
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memset(deviceDataBuff, (byte)value, maxDevices);
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spiTransfer_array(opcode, deviceDataBuff);
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}
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