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https://github.com/pascallanger/DIY-Multiprotocol-TX-Module.git
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6748f6ce78
Protocol number: 63 Sub protocols: 0=250Kb, 1=1Mb, 2=2Mb Option: -1=scan RF channels, 0-84=RF channel DEBUG_SERIAL must be enabled If a valid frame is received the frame will be sent on the serial port.
199 lines
6.0 KiB
C++
199 lines
6.0 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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#ifdef XN297DUMP_NRF24L01_INO
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#include "iface_nrf24l01.h"
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// Parameters which can be modified
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#define XN297DUMP_ADDRESS_LENGTH 5 // Default address length is 5, valid address length is between 3 and 5
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#define XN297DUMP_PERIOD_DUMP 2000 // Multiplied by 50, default 2000=100ms
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#define XN297DUMP_MAX_RF_CHANNEL 84 // Default 84
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// Do not touch from there
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#define XN297DUMP_INITIAL_WAIT 500
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#define XN297DUMP_MAX_PACKET_LEN 32
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#define XN297DUMP_CRC_LENGTH 2
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static void __attribute__((unused)) XN297Dump_init()
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{
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NRF24L01_Initialize();
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NRF24L01_SetTxRxMode(RX_EN);
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NRF24L01_FlushTx();
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NRF24L01_FlushRx();
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NRF24L01_WriteReg(NRF24L01_07_STATUS, 0x70); // Clear data ready, data sent, and retransmit
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NRF24L01_WriteReg(NRF24L01_01_EN_AA, 0x00); // No Auto Acknowledgment on all data pipes
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NRF24L01_WriteReg(NRF24L01_02_EN_RXADDR, 0x01); // Enable data pipe 0 only
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NRF24L01_WriteReg(NRF24L01_03_SETUP_AW, 0x01); // 3 bytes RX/TX address
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NRF24L01_WriteRegisterMulti(NRF24L01_0A_RX_ADDR_P0, (uint8_t*)"\x55\x0F\x71", 3); // set up RX address to xn297 preamble
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NRF24L01_WriteReg(NRF24L01_11_RX_PW_P0, XN297DUMP_MAX_PACKET_LEN); // Enable rx pipe 0
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debug("XN297 dump, scramble=%c, address length=%d, speed=",RX_num?'N':'Y', XN297DUMP_ADDRESS_LENGTH);
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switch(sub_protocol)
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{
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case 0:
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NRF24L01_SetBitrate(NRF24L01_BR_250K);
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debugln("250K");
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break;
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case 2:
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NRF24L01_SetBitrate(NRF24L01_BR_2M);
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debugln("2M");
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break;
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default:
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NRF24L01_SetBitrate(NRF24L01_BR_1M);
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debugln("1M");
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break;
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}
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NRF24L01_Activate(0x73); // Activate feature register
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NRF24L01_WriteReg(NRF24L01_1C_DYNPD, 0x00); // Disable dynamic payload length on all pipes
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NRF24L01_WriteReg(NRF24L01_1D_FEATURE, 0x01);
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NRF24L01_Activate(0x73);
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NRF24L01_SetPower();
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}
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static boolean __attribute__((unused)) XN297Dump_process_packet(void)
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{
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uint8_t packet_ori[XN297DUMP_MAX_PACKET_LEN];
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memcpy(packet_ori,packet,XN297DUMP_MAX_PACKET_LEN);
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packet_length=XN297DUMP_MAX_PACKET_LEN-XN297DUMP_CRC_LENGTH;
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while(packet_length > XN297DUMP_ADDRESS_LENGTH)
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{
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// init crc
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crc = 0xb5d2;
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// unscramble address
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for (uint8_t i = 0; i < XN297DUMP_ADDRESS_LENGTH; i++)
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{
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crc = crc16_update(crc, packet[i], 8);
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rx_id[i]=packet[i];
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if (!RX_num)
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rx_id[i] ^= xn297_scramble[i];
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}
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// reverse address order
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for (uint8_t i = 0; i < XN297DUMP_ADDRESS_LENGTH; i++)
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packet[i]=rx_id[XN297DUMP_ADDRESS_LENGTH-1-i];
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// unscramble payload
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for (uint8_t i = XN297DUMP_ADDRESS_LENGTH; i < packet_length; i++)
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{
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crc = crc16_update(crc, packet[i], 8);
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if (!RX_num)
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packet[i] ^= xn297_scramble[i];
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packet[i] = bit_reverse(packet[i]);
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}
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// check crc
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if (RX_num)
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crc ^= pgm_read_word(&xn297_crc_xorout[packet_length - 3]);
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else
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crc ^= pgm_read_word(&xn297_crc_xorout_scrambled[packet_length - 3]);
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if( (crc >> 8) == packet[packet_length] && (crc & 0xff) == packet[packet_length + 1])
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return true;
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packet_length--;
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memcpy(packet,packet_ori,XN297DUMP_MAX_PACKET_LEN);
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}
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return false;
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}
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static uint16_t XN297Dump_callback()
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{
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if(option==0xFF && bind_counter>XN297DUMP_PERIOD_DUMP)
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{ // Scan frequencies
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hopping_frequency_no++;
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bind_counter=0;
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}
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if(hopping_frequency_no!=rf_ch_num)
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{ // Channel has changed
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if(hopping_frequency_no>XN297DUMP_MAX_RF_CHANNEL)
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hopping_frequency_no=0; // Invalid channel 0 by default
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rf_ch_num=hopping_frequency_no;
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debugln("Channel=%d,0x%02X",hopping_frequency_no,hopping_frequency_no)
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NRF24L01_WriteReg(NRF24L01_05_RF_CH,hopping_frequency_no);
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// switch to RX mode
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NRF24L01_WriteReg(NRF24L01_07_STATUS, 0x70); // Clear data ready, data sent, and retransmit
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NRF24L01_SetTxRxMode(TXRX_OFF);
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NRF24L01_SetTxRxMode(RX_EN);
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NRF24L01_FlushRx();
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NRF24L01_WriteReg(NRF24L01_00_CONFIG, (0 << NRF24L01_00_EN_CRC) // switch to RX mode and disable CRC
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| (1 << NRF24L01_00_CRCO)
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| (1 << NRF24L01_00_PWR_UP)
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| (1 << NRF24L01_00_PRIM_RX));
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}
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if( NRF24L01_ReadReg(NRF24L01_07_STATUS) & _BV(NRF24L01_07_RX_DR))
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{ // RX fifo data ready
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if(NRF24L01_ReadReg(NRF24L01_09_CD) || option != 0xFF)
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{
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NRF24L01_ReadPayload(packet,XN297DUMP_MAX_PACKET_LEN);
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debug_time("RX: ");
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debug("us %d ", option);
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if(XN297Dump_process_packet())
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{ // valid crc found
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debug("A=");
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for(uint8_t i=0; i<XN297DUMP_ADDRESS_LENGTH; i++)
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{
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debug(" %02X",packet[i]);
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}
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debug(" P(%d)=",packet_length-XN297DUMP_ADDRESS_LENGTH);
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for(uint8_t i=XN297DUMP_ADDRESS_LENGTH; i<packet_length; i++)
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{
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debug(" %02X",packet[i]);
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}
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debugln("");
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}
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else
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{
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debugln("Bad CRC");
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}
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}
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// restart RX mode
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NRF24L01_WriteReg(NRF24L01_07_STATUS, 0x70); // Clear data ready, data sent, and retransmit
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NRF24L01_SetTxRxMode(TXRX_OFF);
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NRF24L01_SetTxRxMode(RX_EN);
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NRF24L01_FlushRx();
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NRF24L01_WriteReg(NRF24L01_00_CONFIG, (0 << NRF24L01_00_EN_CRC) // switch to RX mode and disable CRC
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| (1 << NRF24L01_00_CRCO)
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| (1 << NRF24L01_00_PWR_UP)
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| (1 << NRF24L01_00_PRIM_RX));
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}
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bind_counter++;
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if(IS_RX_FLAG_on) // Let the radio update the protocol
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{
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if(Update_All()) return 10000; // New protocol selected
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if(prev_option!=option)
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{ // option has changed
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hopping_frequency_no=option;
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prev_option=option;
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}
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}
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return 50;
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}
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uint16_t initXN297Dump(void)
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{
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BIND_DONE;
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XN297Dump_init();
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bind_counter=0;
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rf_ch_num=0xFF;
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prev_option=option^0x55;
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return XN297DUMP_INITIAL_WAIT;
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}
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#endif
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