188 rader
5.8 KiB
C
188 rader
5.8 KiB
C
/* Copyright (C) 2011 by Jacob Alexander
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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
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* all 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
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* THE SOFTWARE.
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*/
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// ----- Includes -----
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// Compiler Includes
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#include <Lib/MacroLib.h>
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// Project Includes
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#include <led.h>
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#include <print.h>
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#include <scan_loop.h>
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#include <usb_com.h>
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// Keymaps
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#include <keymap.h>
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#include <usb_keys.h>
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// Local Includes
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#include "macro.h"
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// ----- Variables -----
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// Keeps track of the sequence used to reflash the teensy in software
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static uint8_t Bootloader_ConditionSequence[] = {1,16,6,11};
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uint8_t Bootloader_ConditionState = 0;
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uint8_t Bootloader_NextPositionReady = 1;
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// ----- Functions -----
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void jumpToBootloader(void)
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{
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cli();
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// disable watchdog, if enabled
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// disable all peripherals
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UDCON = 1;
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USBCON = (1<<FRZCLK); // disable USB
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UCSR1B = 0;
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_delay_ms(5);
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#if defined(__AVR_AT90USB162__) // Teensy 1.0
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EIMSK = 0; PCICR = 0; SPCR = 0; ACSR = 0; EECR = 0;
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TIMSK0 = 0; TIMSK1 = 0; UCSR1B = 0;
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DDRB = 0; DDRC = 0; DDRD = 0;
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PORTB = 0; PORTC = 0; PORTD = 0;
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asm volatile("jmp 0x3E00");
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#elif defined(__AVR_ATmega32U4__) // Teensy 2.0
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EIMSK = 0; PCICR = 0; SPCR = 0; ACSR = 0; EECR = 0; ADCSRA = 0;
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TIMSK0 = 0; TIMSK1 = 0; TIMSK3 = 0; TIMSK4 = 0; UCSR1B = 0; TWCR = 0;
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DDRB = 0; DDRC = 0; DDRD = 0; DDRE = 0; DDRF = 0; TWCR = 0;
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PORTB = 0; PORTC = 0; PORTD = 0; PORTE = 0; PORTF = 0;
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asm volatile("jmp 0x7E00");
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#elif defined(__AVR_AT90USB646__) // Teensy++ 1.0
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EIMSK = 0; PCICR = 0; SPCR = 0; ACSR = 0; EECR = 0; ADCSRA = 0;
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TIMSK0 = 0; TIMSK1 = 0; TIMSK2 = 0; TIMSK3 = 0; UCSR1B = 0; TWCR = 0;
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DDRA = 0; DDRB = 0; DDRC = 0; DDRD = 0; DDRE = 0; DDRF = 0;
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PORTA = 0; PORTB = 0; PORTC = 0; PORTD = 0; PORTE = 0; PORTF = 0;
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asm volatile("jmp 0xFC00");
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#elif defined(__AVR_AT90USB1286__) // Teensy++ 2.0
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EIMSK = 0; PCICR = 0; SPCR = 0; ACSR = 0; EECR = 0; ADCSRA = 0;
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TIMSK0 = 0; TIMSK1 = 0; TIMSK2 = 0; TIMSK3 = 0; UCSR1B = 0; TWCR = 0;
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DDRA = 0; DDRB = 0; DDRC = 0; DDRD = 0; DDRE = 0; DDRF = 0;
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PORTA = 0; PORTB = 0; PORTC = 0; PORTD = 0; PORTE = 0; PORTF = 0;
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asm volatile("jmp 0x1FC00");
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#endif
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}
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// Given a sampling array, and the current number of detected keypress
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// Add as many keypresses from the sampling array to the USB key send array as possible.
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inline void keyPressDetection( uint8_t *keys, uint8_t numberOfKeys, uint8_t *modifiers, uint8_t numberOfModifiers, uint8_t *map )
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{
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uint8_t Bootloader_KeyDetected = 0;
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uint8_t processed_keys = 0;
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// Parse the detection array starting from 1 (all keys are purposefully mapped from 1 -> total as per typical PCB labels)
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for ( uint8_t key = 0; key < numberOfKeys + 1; key++ )
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{
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if ( keys[key] & (1 << 7) )
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{
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processed_keys++;
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// Display the detected scancode
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char tmpStr[4];
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int8ToStr( key, tmpStr );
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dPrintStrs( tmpStr, " " );
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// Is this a bootloader sequence key?
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if ( !Bootloader_KeyDetected
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&& Bootloader_NextPositionReady
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&& key == Bootloader_ConditionSequence[Bootloader_ConditionState] )
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{
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Bootloader_KeyDetected = 1;
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Bootloader_NextPositionReady = 0;
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Bootloader_ConditionState++;
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}
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else if ( Bootloader_ConditionState > 0 && key == Bootloader_ConditionSequence[Bootloader_ConditionState - 1] )
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{
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Bootloader_KeyDetected = 1;
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}
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// Determine if the key is a modifier
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uint8_t modFound = 0;
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for ( uint8_t mod = 0; mod < numberOfModifiers; mod++ ) {
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// Modifier found
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if ( modifiers[mod] == key ) {
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USBKeys_Modifiers |= map[key];
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modFound = 1;
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break;
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}
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}
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// Modifier, already done this loop
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if ( modFound )
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continue;
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// Too many keys
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if ( USBKeys_Sent >= USBKeys_MaxSize )
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{
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info_print("USB Key limit reached");
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errorLED( 1 );
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break;
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}
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// Allow ignoring keys with 0's
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if ( map[key] != 0 )
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USBKeys_Array[USBKeys_Sent++] = map[key];
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}
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}
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// Boot loader sequence state handler
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switch ( processed_keys )
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{
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// The next bootloader key can now be pressed, if there were no keys processed
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case 0:
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Bootloader_NextPositionReady = 1;
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break;
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// If keys were detected, and it wasn't in the sequence (or there was multiple keys detected), start bootloader sequence over
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// This case purposely falls through
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case 1:
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if ( Bootloader_KeyDetected )
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break;
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default:
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Bootloader_ConditionState = 0;
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break;
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}
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// Add debug separator if keys sent via USB
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if ( USBKeys_Sent > 0 )
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print("\033[1;32m|\033[0m\n");
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}
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inline void process_macros(void)
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{
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// Only process macros once (if some were found), until the next USB send
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if ( USBKeys_Sent != 0 )
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return;
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// Debounce Sampling Array to USB Data Array
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keyPressDetection( KeyIndex_Array, KeyIndex_Size, MODIFIER_MASK, sizeof(MODIFIER_MASK), KEYINDEX_MASK );
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// Check for bootloader condition
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if ( Bootloader_ConditionState == sizeof( Bootloader_ConditionSequence ) )
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jumpToBootloader();
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}
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