mirror of
https://github.com/pascallanger/DIY-Multiprotocol-TX-Module.git
synced 2025-02-04 23:38:15 +00:00
dfd8d0fa3d
Changed telemetry configuration and validation for AFHDS2A and HUBSAN Added default Bayang telemetry from Silverxxx: - Option=1 to activate telemetry (option=0 -> standard Bayang protocol) - Value returned to the TX: RX RSSI, TX RSSI, A1=uncompensated battery voltage, A2=compensated battery voltage
360 lines
9.4 KiB
C++
360 lines
9.4 KiB
C++
/*
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This project is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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Multiprotocol is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with Multiprotocol. If not, see <http://www.gnu.org/licenses/>.
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*/
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// Last sync with hexfet new_protocols/flysky_a7105.c dated 2015-09-28
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#ifdef AFHDS2A_A7105_INO
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#define AFHDS2A_TXPACKET_SIZE 38
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#define AFHDS2A_RXPACKET_SIZE 37
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#define AFHDS2A_NUMFREQ 16
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enum{
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AFHDS2A_PACKET_STICKS,
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AFHDS2A_PACKET_SETTINGS,
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AFHDS2A_PACKET_FAILSAFE,
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};
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enum{
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AFHDS2A_BIND1,
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AFHDS2A_BIND2,
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AFHDS2A_BIND3,
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AFHDS2A_BIND4,
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AFHDS2A_DATA,
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};
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static void AFHDS2A_calc_channels()
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{
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uint8_t idx = 0;
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uint32_t rnd = MProtocol_id;
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while (idx < AFHDS2A_NUMFREQ)
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{
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uint8_t i;
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uint8_t count_1_42 = 0, count_43_85 = 0, count_86_128 = 0, count_129_168 = 0;
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rnd = rnd * 0x0019660D + 0x3C6EF35F; // Randomization
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uint8_t next_ch = ((rnd >> (idx%32)) % 0xa8) + 1;
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// Keep the distance 2 between the channels - either odd or even
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if (((next_ch ^ MProtocol_id) & 0x01 )== 0)
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continue;
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// Check that it's not duplicate and spread uniformly
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for (i = 0; i < idx; i++)
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{
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if(hopping_frequency[i] == next_ch)
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break;
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if(hopping_frequency[i] <= 42)
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count_1_42++;
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else if (hopping_frequency[i] <= 85)
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count_43_85++;
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else if (hopping_frequency[i] <= 128)
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count_86_128++;
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else
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count_129_168++;
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}
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if (i != idx)
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continue;
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if ((next_ch <= 42 && count_1_42 < 5)
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||(next_ch >= 43 && next_ch <= 85 && count_43_85 < 5)
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||(next_ch >= 86 && next_ch <=128 && count_86_128 < 5)
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||(next_ch >= 129 && count_129_168 < 5))
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hopping_frequency[idx++] = next_ch;
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}
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}
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#if defined(AFHDS2A_FW_TELEMETRY) || defined(AFHDS2A_HUB_TELEMETRY)
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// telemetry sensors ID
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enum{
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AFHDS2A_SENSOR_RX_VOLTAGE = 0x00,
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AFHDS2A_SENSOR_RX_ERR_RATE = 0xfe,
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AFHDS2A_SENSOR_RX_RSSI = 0xfc,
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AFHDS2A_SENSOR_RX_NOISE = 0xfb,
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AFHDS2A_SENSOR_RX_SNR = 0xfa,
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};
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static void AFHDS2A_update_telemetry()
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{
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// AA | TXID | rx_id | sensor id | sensor # | value 16 bit big endian | sensor id ......
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// max 7 sensors per packet
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#ifdef AFHDS2A_FW_TELEMETRY
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if (option & 0x80)
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{
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// forward telemetry to TX, skip rx and tx id to save space
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pkt[0]= TX_RSSI;
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for(int i=9;i < AFHDS2A_RXPACKET_SIZE; i++)
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pkt[i-8]=packet[i];
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telemetry_link=2;
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return;
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}
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#endif
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#ifdef AFHDS2A_HUB_TELEMETRY
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for(uint8_t sensor=0; sensor<7; sensor++)
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{
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// Send FrSkyD telemetry to TX
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uint8_t index = 9+(4*sensor);
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switch(packet[index])
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{
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case AFHDS2A_SENSOR_RX_VOLTAGE:
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//v_lipo1 = packet[index+3]<<8 | packet[index+2];
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v_lipo1 = packet[index+2];
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telemetry_link=1;
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break;
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/*case AFHDS2A_SENSOR_RX_ERR_RATE:
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// packet[index+2];
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break;*/
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case AFHDS2A_SENSOR_RX_RSSI:
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RSSI_dBm = -packet[index+2];
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break;
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case 0xff:
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return;
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/*default:
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// unknown sensor ID
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break;*/
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}
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}
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#endif
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}
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#endif
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static void AFHDS2A_build_bind_packet()
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{
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uint8_t ch;
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memcpy( &packet[1], rx_tx_addr, 4);
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memset( &packet[5], 0xff, 4);
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packet[10]= 0x00;
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for(ch=0; ch<AFHDS2A_NUMFREQ; ch++)
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packet[11+ch] = hopping_frequency[ch];
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memset( &packet[27], 0xff, 10);
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packet[37] = 0x00;
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switch(phase)
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{
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case AFHDS2A_BIND1:
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packet[0] = 0xbb;
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packet[9] = 0x01;
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break;
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case AFHDS2A_BIND2:
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case AFHDS2A_BIND3:
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case AFHDS2A_BIND4:
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packet[0] = 0xbc;
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if(phase == AFHDS2A_BIND4)
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{
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memcpy( &packet[5], &rx_id, 4);
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memset( &packet[11], 0xff, 16);
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}
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packet[9] = phase-1;
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if(packet[9] > 0x02)
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packet[9] = 0x02;
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packet[27]= 0x01;
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packet[28]= 0x80;
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break;
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}
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}
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static void AFHDS2A_build_packet(uint8_t type)
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{
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memcpy( &packet[1], rx_tx_addr, 4);
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memcpy( &packet[5], rx_id, 4);
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switch(type)
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{
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case AFHDS2A_PACKET_STICKS:
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packet[0] = 0x58;
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for(uint8_t ch=0; ch<14; ch++)
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{
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packet[9 + ch*2] = Servo_data[CH_AETR[ch]]&0xFF;
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packet[10 + ch*2] = (Servo_data[CH_AETR[ch]]>>8)&0xFF;
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}
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break;
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case AFHDS2A_PACKET_FAILSAFE:
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packet[0] = 0x56;
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for(uint8_t ch=0; ch<14; ch++)
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{
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/*if((Model.limits[ch].flags & CH_FAILSAFE_EN))
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{
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packet[9 + ch*2] = Servo_data[CH_AETR[ch]] & 0xff;
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packet[10+ ch*2] = (Servo_data[CH_AETR[ch]] >> 8) & 0xff;
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}
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else*/
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{
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packet[9 + ch*2] = 0xff;
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packet[10+ ch*2] = 0xff;
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}
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}
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break;
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case AFHDS2A_PACKET_SETTINGS:
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packet[0] = 0xaa;
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packet[9] = 0xfd;
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packet[10]= 0xff;
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uint16_t val_hz=5*(option & 0x7f)+50; // option value should be between 0 and 70 which gives a value between 50 and 400Hz
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if(val_hz<50 || val_hz>400) val_hz=50; // default is 50Hz
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packet[11]= val_hz;
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packet[12]= val_hz >> 8;
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if(sub_protocol == PPM_IBUS || sub_protocol == PPM_SBUS)
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packet[13] = 0x01; // PPM output enabled
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else
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packet[13] = 0x00;
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packet[14]= 0x00;
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for(uint8_t i=15; i<37; i++)
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packet[i] = 0xff;
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packet[18] = 0x05; // ?
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packet[19] = 0xdc; // ?
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packet[20] = 0x05; // ?
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if(sub_protocol == PWM_SBUS || sub_protocol == PPM_SBUS)
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packet[21] = 0xdd; // SBUS output enabled
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else
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packet[21] = 0xde; // IBUS
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break;
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}
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packet[37] = 0x00;
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}
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#define AFHDS2A_WAIT_WRITE 0x80
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uint16_t ReadAFHDS2A()
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{
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static uint8_t packet_type = AFHDS2A_PACKET_STICKS;
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static uint16_t packet_counter=0;
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uint8_t data_rx;
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uint16_t start;
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switch(phase)
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{
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case AFHDS2A_BIND1:
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case AFHDS2A_BIND2:
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case AFHDS2A_BIND3:
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AFHDS2A_build_bind_packet();
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A7105_WriteData(AFHDS2A_TXPACKET_SIZE, packet_count%2 ? 0x0d : 0x8c);
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if(!(A7105_ReadReg(A7105_00_MODE) & (1<<5 | 1<<6)))
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{ // FECF+CRCF Ok
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A7105_ReadData(AFHDS2A_RXPACKET_SIZE);
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if(packet[0] == 0xbc && packet[9] == 0x01)
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{
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uint8_t temp=50+RX_num*4;
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uint8_t i;
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for(i=0; i<4; i++)
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{
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rx_id[i] = packet[5+i];
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eeprom_write_byte((EE_ADDR)(temp+i),rx_id[i]);
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}
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phase = AFHDS2A_BIND4;
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packet_count++;
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return 3850;
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}
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}
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packet_count++;
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phase |= AFHDS2A_WAIT_WRITE;
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return 1700;
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case AFHDS2A_BIND1|AFHDS2A_WAIT_WRITE:
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case AFHDS2A_BIND2|AFHDS2A_WAIT_WRITE:
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case AFHDS2A_BIND3|AFHDS2A_WAIT_WRITE:
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//Wait for TX completion
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start=micros();
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while ((uint16_t)micros()-start < 700) // Wait max 700µs, using serial+telemetry exit in about 120µs
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if(!(A7105_ReadReg(A7105_00_MODE) & 0x01))
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break;
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A7105_SetTxRxMode(RX_EN);
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A7105_Strobe(A7105_RX);
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phase &= ~AFHDS2A_WAIT_WRITE;
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phase++;
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if(phase > AFHDS2A_BIND3)
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phase = AFHDS2A_BIND1;
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return 2150;
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case AFHDS2A_BIND4:
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AFHDS2A_build_bind_packet();
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A7105_WriteData(AFHDS2A_TXPACKET_SIZE, packet_count%2 ? 0x0d : 0x8c);
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packet_count++;
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bind_phase++;
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if(bind_phase>=4)
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{
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packet_counter=0;
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packet_type = AFHDS2A_PACKET_STICKS;
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hopping_frequency_no=1;
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phase = AFHDS2A_DATA;
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BIND_DONE;
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}
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return 3850;
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case AFHDS2A_DATA:
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AFHDS2A_build_packet(packet_type);
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if((A7105_ReadReg(A7105_00_MODE) & 0x01)) // Check if something has been received...
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data_rx=0;
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else
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data_rx=1; // Yes
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A7105_WriteData(AFHDS2A_TXPACKET_SIZE, hopping_frequency[hopping_frequency_no++]);
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if(hopping_frequency_no >= AFHDS2A_NUMFREQ)
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hopping_frequency_no = 0;
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if(!(packet_counter % 1313))
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packet_type = AFHDS2A_PACKET_SETTINGS;
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else if(!(packet_counter % 1569))
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packet_type = AFHDS2A_PACKET_FAILSAFE;
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else
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packet_type = AFHDS2A_PACKET_STICKS; // todo : check for settings changes
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if(!(A7105_ReadReg(A7105_00_MODE) & (1<<5 | 1<<6)) && data_rx==1)
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{ // RX+FECF+CRCF Ok
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A7105_ReadData(AFHDS2A_RXPACKET_SIZE);
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if(packet[0] == 0xaa)
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{
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if(packet[9] == 0xfc)
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packet_type=AFHDS2A_PACKET_SETTINGS; // RX is asking for settings
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#if defined(AFHDS2A_FW_TELEMETRY) || defined(AFHDS2A_HUB_TELEMETRY)
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else
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{
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// Read TX RSSI
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int16_t temp=256-(A7105_ReadReg(A7105_1D_RSSI_THOLD)*8)/5; // value from A7105 is between 8 for maximum signal strength to 160 or less
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if(temp<0) temp=0;
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else if(temp>255) temp=255;
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TX_RSSI=temp;
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AFHDS2A_update_telemetry();
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}
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#endif
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}
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}
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packet_counter++;
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phase |= AFHDS2A_WAIT_WRITE;
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return 1700;
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case AFHDS2A_DATA|AFHDS2A_WAIT_WRITE:
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//Wait for TX completion
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start=micros();
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while ((uint16_t)micros()-start < 700) // Wait max 700µs, using serial+telemetry exit in about 120µs
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if(!(A7105_ReadReg(A7105_00_MODE) & 0x01))
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break;
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A7105_SetTxRxMode(RX_EN);
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A7105_Strobe(A7105_RX);
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phase &= ~AFHDS2A_WAIT_WRITE;
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return 2150;
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}
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return 3850; // never reached, please the compiler
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}
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uint16_t initAFHDS2A()
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{
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A7105_Init();
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AFHDS2A_calc_channels();
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packet_count = 0;
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bind_phase = 0;
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if(IS_AUTOBIND_FLAG_on)
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phase = AFHDS2A_BIND1;
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else
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{
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phase = AFHDS2A_DATA;
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//Read RX ID from EEPROM based on RX_num, RX_num must be uniq for each RX
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uint8_t temp=50+RX_num*4;
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for(uint8_t i=0;i<4;i++)
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rx_id[i]=eeprom_read_byte((EE_ADDR)(temp+i));
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}
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hopping_frequency_no = 0;
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#if defined(AFHDS2A_FW_TELEMETRY) || defined(AFHDS2A_HUB_TELEMETRY)
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init_hub_telemetry();
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#endif
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return 50000;
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}
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#endif
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