mirror of
https://github.com/signalwire/freeswitch.git
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399 lines
9.6 KiB
C
399 lines
9.6 KiB
C
/*
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* FreeSWITCH Modular Media Switching Software Library / Soft-Switch Application
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* Copyright (C) 2005-2014, Anthony Minessale II <anthm@freeswitch.org>
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*
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* Version: MPL 1.1
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*
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* The contents of this file are subject to the Mozilla Public License Version
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* 1.1 (the "License"); you may not use this file except in compliance with
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* the License. You may obtain a copy of the License at
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* http://www.mozilla.org/MPL/
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*
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* Software distributed under the License is distributed on an "AS IS" basis,
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* WITHOUT WARRANTY OF ANY KIND, either express or implied. See the License
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* for the specific language governing rights and limitations under the
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* License.
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*
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* The Original Code is FreeSWITCH Modular Media Switching Software Library / Soft-Switch Application
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*
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* The Initial Developer of the Original Code is
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* Anthony Minessale II <anthm@freeswitch.org>
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* Portions created by the Initial Developer are Copyright (C)
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* the Initial Developer. All Rights Reserved.
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*
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* Contributor(s):
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*
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* Anthony Minessale II <anthm@freeswitch.org>
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*
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* mod_fsk -- FSK data transfer
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*
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*/
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#include "switch.h"
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#include "fsk_callerid.h"
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void bitstream_init(bitstream_t *bsp, uint8_t *data, uint32_t datalen, endian_t endian, uint8_t ss)
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{
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memset(bsp, 0, sizeof(*bsp));
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bsp->data = data;
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bsp->datalen = datalen;
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bsp->endian = endian;
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bsp->ss = ss;
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if (endian < 0) {
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bsp->top = bsp->bit_index = 7;
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bsp->bot = 0;
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} else {
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bsp->top = bsp->bit_index = 0;
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bsp->bot = 7;
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}
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}
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int8_t bitstream_get_bit(bitstream_t *bsp)
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{
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int8_t bit = -1;
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if (bsp->byte_index >= bsp->datalen) {
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goto done;
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}
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if (bsp->ss) {
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if (!bsp->ssv) {
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bsp->ssv = 1;
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return 0;
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} else if (bsp->ssv == 2) {
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bsp->byte_index++;
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bsp->ssv = 0;
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return 1;
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}
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}
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bit = (bsp->data[bsp->byte_index] >> (bsp->bit_index)) & 1;
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if (bsp->bit_index == bsp->bot) {
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bsp->bit_index = bsp->top;
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if (bsp->ss) {
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bsp->ssv = 2;
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goto done;
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}
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if (++bsp->byte_index > bsp->datalen) {
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bit = -1;
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goto done;
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}
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} else {
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bsp->bit_index = bsp->bit_index + bsp->endian;
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}
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done:
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return bit;
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}
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static void fsk_byte_handler (void *x, int data)
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{
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fsk_data_state_t *state = (fsk_data_state_t *) x;
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uint8_t byte = (uint8_t)data;
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top:
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if (state->init == 3) {
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return;
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}
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if (state->dlen) {
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goto add_byte;
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}
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if (state->bpos == 1) {
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state->blen = byte;
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if ((uint32_t)(state->dlen = state->bpos + byte + 2) > state->bufsize) {
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state->dlen = state->bufsize;
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}
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goto top;
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}
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add_byte:
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if (state->bpos <= state->dlen) {
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state->buf[state->bpos++] = byte;
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} else {
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state->init = 3;
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}
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}
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switch_status_t fsk_data_init(fsk_data_state_t *state, uint8_t *data, uint32_t datalen)
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{
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memset(state, 0, sizeof(*state));
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state->buf = data;
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state->bufsize = datalen;
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state->bpos = 2;
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return SWITCH_STATUS_SUCCESS;
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}
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switch_status_t fsk_data_add_sdmf(fsk_data_state_t *state, const char *date, char *number)
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{
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size_t dlen = strlen(date);
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size_t nlen = strlen(number);
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state->buf[0] = CID_TYPE_SDMF;
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memcpy(&state->buf[state->bpos], date, dlen);
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state->bpos += dlen;
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memcpy(&state->buf[state->bpos], number, nlen);
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state->bpos += nlen;
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return SWITCH_STATUS_SUCCESS;
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}
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switch_status_t fsk_data_add_mdmf(fsk_data_state_t *state, mdmf_type_t type, const uint8_t *data, uint32_t datalen)
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{
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state->buf[0] = CID_TYPE_MDMF;
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state->buf[state->bpos++] = type;
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state->buf[state->bpos++] = (uint8_t)datalen;
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memcpy(&state->buf[state->bpos], data, datalen);
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state->bpos += datalen;
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return SWITCH_STATUS_SUCCESS;
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}
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switch_status_t fsk_data_add_checksum(fsk_data_state_t *state)
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{
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uint32_t i;
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uint8_t check = 0;
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state->buf[1] = (uint8_t)(state->bpos - 2);
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for (i = 0; i < state->bpos; i++) {
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check = check + state->buf[i];
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}
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state->checksum = state->buf[state->bpos] = (uint8_t)(256 - check);
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state->bpos++;
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state->dlen = state->bpos;
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state->blen = state->buf[1];
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return SWITCH_STATUS_SUCCESS;
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}
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switch_status_t fsk_data_parse(fsk_data_state_t *state, size_t *type, char **data, size_t *len)
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{
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size_t i;
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int sum = 0;
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top:
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if (state->checksum != 0 || state->ppos >= state->dlen - 1) {
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return SWITCH_STATUS_FALSE;
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}
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if (!state->ppos) {
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for(i = 0; i < state->bpos; i++) {
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sum += state->buf[i];
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}
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state->checksum = sum % 256;
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state->ppos = 2;
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if (state->buf[0] != CID_TYPE_MDMF && state->buf[0] != CID_TYPE_SDMF) {
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state->checksum = -1;
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}
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goto top;
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}
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if (state->buf[0] == CID_TYPE_SDMF) {
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/* convert sdmf to mdmf so we don't need 2 parsers */
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if (state->ppos == 2) {
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*type = MDMF_DATETIME;
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*len = 8;
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} else {
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if (state->buf[state->ppos] == 'P' || state->buf[state->ppos] == 'O') {
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*type = MDMF_NO_NUM;
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*len = 1;
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} else {
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*type = MDMF_PHONE_NUM;
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*len = state->blen - 8;
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}
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}
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*data = (char *)&state->buf[state->ppos];
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state->ppos += *len;
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return SWITCH_STATUS_SUCCESS;
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} else if (state->buf[0] == CID_TYPE_MDMF) {
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*type = state->buf[state->ppos++];
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*len = state->buf[state->ppos++];
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*data = (char *)&state->buf[state->ppos];
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state->ppos += *len;
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return SWITCH_STATUS_SUCCESS;
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}
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return SWITCH_STATUS_FALSE;
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}
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switch_status_t fsk_demod_feed(fsk_data_state_t *state, int16_t *data, size_t samples)
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{
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uint32_t x;
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int16_t *sp = data;
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if (state->init == 3) {
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return SWITCH_STATUS_FALSE;
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}
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for (x = 0; x < samples; x++) {
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dsp_fsk_sample (state->fsk1200_handle, (double) *sp++ / 32767.0);
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if (state->dlen && state->bpos >= state->dlen) {
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state->init = 3;
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return SWITCH_STATUS_FALSE;
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}
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}
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return SWITCH_STATUS_SUCCESS;
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}
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switch_status_t fsk_demod_destroy(fsk_data_state_t *state)
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{
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dsp_fsk_destroy(&state->fsk1200_handle);
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memset(state, 0, sizeof(*state));
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return SWITCH_STATUS_SUCCESS;
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}
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int fsk_demod_init(fsk_data_state_t *state, int rate, uint8_t *buf, size_t bufsize)
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{
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dsp_fsk_attr_t fsk1200_attr;
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if (state->fsk1200_handle) {
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dsp_fsk_destroy(&state->fsk1200_handle);
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}
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memset(state, 0, sizeof(*state));
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memset(buf, 0, bufsize);
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state->buf = buf;
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state->bufsize = bufsize;
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dsp_fsk_attr_init (&fsk1200_attr);
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dsp_fsk_attr_set_samplerate (&fsk1200_attr, rate);
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dsp_fsk_attr_set_bytehandler (&fsk1200_attr, fsk_byte_handler, state);
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state->fsk1200_handle = dsp_fsk_create (&fsk1200_attr);
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if (state->fsk1200_handle == NULL) {
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return SWITCH_STATUS_FALSE;
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}
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return SWITCH_STATUS_SUCCESS;
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}
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size_t fsk_modulator_generate_bit(fsk_modulator_t *fsk_trans, int8_t bit, int16_t *buf, size_t buflen)
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{
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size_t i;
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for(i = 0 ; i < buflen; i++) {
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fsk_trans->bit_accum += fsk_trans->bit_factor;
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if (fsk_trans->bit_accum >= FSK_MOD_FACTOR) {
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fsk_trans->bit_accum -= (FSK_MOD_FACTOR + fsk_trans->bit_factor);
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break;
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}
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buf[i] = teletone_dds_state_modulate_sample(&fsk_trans->dds, bit);
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}
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return i;
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}
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int32_t fsk_modulator_generate_carrier_bits(fsk_modulator_t *fsk_trans, uint32_t bits)
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{
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uint32_t i = 0;
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size_t r = 0;
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int8_t bit = 1;
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for (i = 0; i < bits; i++) {
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if ((r = fsk_modulator_generate_bit(fsk_trans, bit, fsk_trans->sample_buffer, sizeof(fsk_trans->sample_buffer) / 2))) {
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if (fsk_trans->write_sample_callback(fsk_trans->sample_buffer, r, fsk_trans->user_data) != SWITCH_STATUS_SUCCESS) {
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break;
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}
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} else {
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break;
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}
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}
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return i;
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}
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void fsk_modulator_generate_chan_sieze(fsk_modulator_t *fsk_trans)
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{
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uint32_t i = 0;
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size_t r = 0;
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int8_t bit = 0;
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for (i = 0; i < fsk_trans->chan_sieze_bits; i++) {
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if ((r = fsk_modulator_generate_bit(fsk_trans, bit, fsk_trans->sample_buffer, sizeof(fsk_trans->sample_buffer) / 2))) {
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if (fsk_trans->write_sample_callback(fsk_trans->sample_buffer, r, fsk_trans->user_data) != SWITCH_STATUS_SUCCESS) {
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break;
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}
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} else {
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break;
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}
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bit = !bit;
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}
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}
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void fsk_modulator_send_data(fsk_modulator_t *fsk_trans)
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{
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size_t r = 0;
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int8_t bit = 0;
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while((bit = bitstream_get_bit(&fsk_trans->bs)) > -1) {
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if ((r = fsk_modulator_generate_bit(fsk_trans, bit, fsk_trans->sample_buffer, sizeof(fsk_trans->sample_buffer) / 2))) {
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if (fsk_trans->write_sample_callback(fsk_trans->sample_buffer, r, fsk_trans->user_data) != SWITCH_STATUS_SUCCESS) {
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break;
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}
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} else {
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break;
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}
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}
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}
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switch_status_t fsk_modulator_init(fsk_modulator_t *fsk_trans,
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fsk_modem_types_t modem_type,
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uint32_t sample_rate,
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fsk_data_state_t *fsk_data,
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float db_level,
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uint32_t carrier_bits_start,
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uint32_t carrier_bits_stop,
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uint32_t chan_sieze_bits,
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fsk_write_sample_t write_sample_callback,
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void *user_data)
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{
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memset(fsk_trans, 0, sizeof(*fsk_trans));
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fsk_trans->modem_type = modem_type;
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teletone_dds_state_set_tone(&fsk_trans->dds, fsk_modem_definitions[fsk_trans->modem_type].freq_space, sample_rate, 0);
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teletone_dds_state_set_tone(&fsk_trans->dds, fsk_modem_definitions[fsk_trans->modem_type].freq_mark, sample_rate, 1);
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fsk_trans->bit_factor = (uint32_t)((fsk_modem_definitions[fsk_trans->modem_type].baud_rate * FSK_MOD_FACTOR) / (float)sample_rate);
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fsk_trans->samples_per_bit = (uint32_t) (sample_rate / fsk_modem_definitions[fsk_trans->modem_type].baud_rate);
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fsk_trans->est_bytes = (int32_t)(((fsk_data->dlen * 10) + carrier_bits_start + carrier_bits_stop + chan_sieze_bits) * ((fsk_trans->samples_per_bit + 1) * 2));
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fsk_trans->bit_accum = 0;
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fsk_trans->fsk_data = fsk_data;
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teletone_dds_state_set_tx_level(&fsk_trans->dds, db_level);
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bitstream_init(&fsk_trans->bs, fsk_trans->fsk_data->buf, (uint32_t)fsk_trans->fsk_data->dlen, ENDIAN_BIG, 1);
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fsk_trans->carrier_bits_start = carrier_bits_start;
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fsk_trans->carrier_bits_stop = carrier_bits_stop;
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fsk_trans->chan_sieze_bits = chan_sieze_bits;
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fsk_trans->write_sample_callback = write_sample_callback;
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fsk_trans->user_data = user_data;
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return SWITCH_STATUS_SUCCESS;
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}
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