mirror of https://github.com/wb2osz/direwolf.git
592 lines
16 KiB
C
592 lines
16 KiB
C
//
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// This file is part of Dire Wolf, an amateur radio packet TNC.
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//
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// Copyright (C) 2011, 2014, 2015, 2016, 2019 John Langner, WB2OSZ
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//
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// This program 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 2 of the License, or
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// (at your option) any later version.
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//
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// This program 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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//
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// You should have received a copy of the GNU General Public License
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// along with this program. If not, see <http://www.gnu.org/licenses/>.
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//
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/*------------------------------------------------------------------
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*
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* Module: gen_tone.c
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*
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* Purpose: Convert bits to AFSK for writing to .WAV sound file
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* or a sound device.
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*
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*
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*---------------------------------------------------------------*/
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#include "direwolf.h"
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#include <stdio.h>
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#include <math.h>
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#include <unistd.h>
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#include <string.h>
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#include <stdlib.h>
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#include <assert.h>
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#include "audio.h"
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#include "gen_tone.h"
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#include "textcolor.h"
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#include "fsk_demod_state.h" /* for MAX_FILTER_SIZE which might be overly generous for here. */
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/* but safe if we use same size as for receive. */
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#include "dsp.h"
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// Properties of the digitized sound stream & modem.
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static struct audio_s *save_audio_config_p = NULL;
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/*
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* 8 bit samples are unsigned bytes in range of 0 .. 255.
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*
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* 16 bit samples are signed short in range of -32768 .. +32767.
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*/
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/* Constants after initialization. */
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#define TICKS_PER_CYCLE ( 256.0 * 256.0 * 256.0 * 256.0 )
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static int ticks_per_sample[MAX_CHANS]; /* Same for both channels of same soundcard */
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/* because they have same sample rate */
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/* but less confusing to have for each channel. */
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static int ticks_per_bit[MAX_CHANS];
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static int f1_change_per_sample[MAX_CHANS];
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static int f2_change_per_sample[MAX_CHANS];
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static short sine_table[256];
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/* Accumulators. */
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static unsigned int tone_phase[MAX_CHANS]; // Phase accumulator for tone generation.
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// Upper bits are used as index into sine table.
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#define PHASE_SHIFT_180 ( 128u << 24 )
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#define PHASE_SHIFT_90 ( 64u << 24 )
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#define PHASE_SHIFT_45 ( 32u << 24 )
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static int bit_len_acc[MAX_CHANS]; // To accumulate fractional samples per bit.
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static int lfsr[MAX_CHANS]; // Shift register for scrambler.
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static int bit_count[MAX_CHANS]; // Counter incremented for each bit transmitted
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// on the channel. This is only used for QPSK.
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// The LSB determines if we save the bit until
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// next time, or send this one with the previously saved.
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// The LSB+1 position determines if we add an
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// extra 180 degrees to the phase to compensate
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// for having 1.5 carrier cycles per symbol time.
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// For 8PSK, it has a different meaning. It is the
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// number of bits in 'save_bit' so we can accumulate
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// three for each symbol.
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static int save_bit[MAX_CHANS];
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static int prev_dat[MAX_CHANS]; // Previous data bit. Used for G3RUH style.
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/*------------------------------------------------------------------
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*
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* Name: gen_tone_init
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*
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* Purpose: Initialize for AFSK tone generation which might
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* be used for RTTY or amateur packet radio.
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*
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* Inputs: audio_config_p - Pointer to modem parameter structure, modem_s.
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*
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* The fields we care about are:
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*
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* samples_per_sec
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* baud
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* mark_freq
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* space_freq
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* samples_per_sec
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*
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* amp - Signal amplitude on scale of 0 .. 100.
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*
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* 100% uses the full 16 bit sample range of +-32k.
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*
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* gen_packets - True if being called from "gen_packets" utility
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* rather than the "direwolf" application.
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*
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* Returns: 0 for success.
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* -1 for failure.
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*
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* Description: Calculate various constants for use by the direct digital synthesis
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* audio tone generation.
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*
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*----------------------------------------------------------------*/
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static int amp16bit; /* for 9600 baud */
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int gen_tone_init (struct audio_s *audio_config_p, int amp, int gen_packets)
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{
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int j;
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int chan = 0;
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#if DEBUG
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text_color_set(DW_COLOR_DEBUG);
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dw_printf ("gen_tone_init ( audio_config_p=%p, amp=%d, gen_packets=%d )\n",
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audio_config_p, amp, gen_packets);
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#endif
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/*
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* Save away modem parameters for later use.
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*/
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save_audio_config_p = audio_config_p;
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amp16bit = (int)((32767 * amp) / 100);
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for (chan = 0; chan < MAX_CHANS; chan++) {
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if (audio_config_p->achan[chan].valid) {
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int a = ACHAN2ADEV(chan);
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#if DEBUG
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text_color_set(DW_COLOR_DEBUG);
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dw_printf ("gen_tone_init: chan=%d, modem_type=%d, bps=%d, samples_per_sec=%d\n",
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chan,
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save_audio_config_p->achan[chan].modem_type,
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audio_config_p->achan[chan].baud,
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audio_config_p->adev[a].samples_per_sec);
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#endif
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tone_phase[chan] = 0;
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bit_len_acc[chan] = 0;
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lfsr[chan] = 0;
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ticks_per_sample[chan] = (int) ((TICKS_PER_CYCLE / (double)audio_config_p->adev[a].samples_per_sec ) + 0.5);
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// The terminology is all wrong here. Didn't matter with 1200 and 9600.
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// The config speed should be bits per second rather than baud.
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// ticks_per_bit should be ticks_per_symbol.
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switch (save_audio_config_p->achan[chan].modem_type) {
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case MODEM_QPSK:
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audio_config_p->achan[chan].mark_freq = 1800;
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audio_config_p->achan[chan].space_freq = audio_config_p->achan[chan].mark_freq; // Not Used.
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// symbol time is 1 / (half of bps)
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ticks_per_bit[chan] = (int) ((TICKS_PER_CYCLE / ((double)audio_config_p->achan[chan].baud * 0.5)) + 0.5);
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f1_change_per_sample[chan] = (int) (((double)audio_config_p->achan[chan].mark_freq * TICKS_PER_CYCLE / (double)audio_config_p->adev[a].samples_per_sec ) + 0.5);
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f2_change_per_sample[chan] = f1_change_per_sample[chan]; // Not used.
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tone_phase[chan] = PHASE_SHIFT_45; // Just to mimic first attempt.
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break;
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case MODEM_8PSK:
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audio_config_p->achan[chan].mark_freq = 1800;
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audio_config_p->achan[chan].space_freq = audio_config_p->achan[chan].mark_freq; // Not Used.
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// symbol time is 1 / (third of bps)
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ticks_per_bit[chan] = (int) ((TICKS_PER_CYCLE / ((double)audio_config_p->achan[chan].baud / 3.)) + 0.5);
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f1_change_per_sample[chan] = (int) (((double)audio_config_p->achan[chan].mark_freq * TICKS_PER_CYCLE / (double)audio_config_p->adev[a].samples_per_sec ) + 0.5);
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f2_change_per_sample[chan] = f1_change_per_sample[chan]; // Not used.
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break;
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case MODEM_BASEBAND:
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case MODEM_SCRAMBLE:
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// Tone is half baud.
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ticks_per_bit[chan] = (int) ((TICKS_PER_CYCLE / (double)audio_config_p->achan[chan].baud ) + 0.5);
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f1_change_per_sample[chan] = (int) (((double)audio_config_p->achan[chan].baud * 0.5 * TICKS_PER_CYCLE / (double)audio_config_p->adev[a].samples_per_sec ) + 0.5);
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break;
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default: // AFSK
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ticks_per_bit[chan] = (int) ((TICKS_PER_CYCLE / (double)audio_config_p->achan[chan].baud ) + 0.5);
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f1_change_per_sample[chan] = (int) (((double)audio_config_p->achan[chan].mark_freq * TICKS_PER_CYCLE / (double)audio_config_p->adev[a].samples_per_sec ) + 0.5);
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f2_change_per_sample[chan] = (int) (((double)audio_config_p->achan[chan].space_freq * TICKS_PER_CYCLE / (double)audio_config_p->adev[a].samples_per_sec ) + 0.5);
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break;
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}
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}
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}
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for (j=0; j<256; j++) {
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double a;
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int s;
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a = ((double)(j) / 256.0) * (2 * M_PI);
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s = (int) (sin(a) * 32767 * amp / 100.0);
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/* 16 bit sound sample must fit in range of -32768 .. +32767. */
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if (s < -32768) {
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text_color_set(DW_COLOR_ERROR);
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dw_printf ("gen_tone_init: Excessive amplitude is being clipped.\n");
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s = -32768;
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}
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else if (s > 32767) {
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text_color_set(DW_COLOR_ERROR);
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dw_printf ("gen_tone_init: Excessive amplitude is being clipped.\n");
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s = 32767;
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}
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sine_table[j] = s;
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}
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return (0);
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} /* end gen_tone_init */
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/*-------------------------------------------------------------------
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*
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* Name: tone_gen_put_bit
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*
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* Purpose: Generate tone of proper duration for one data bit.
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*
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* Inputs: chan - Audio channel, 0 = first.
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*
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* dat - 0 for f1, 1 for f2.
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*
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* -1 inserts half bit to test data
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* recovery PLL.
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*
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* Assumption: fp is open to a file for write.
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*
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* Version 1.4: Attempt to implement 2400 and 4800 bps PSK modes.
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*
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* Version 1.6: For G3RUH, rather than generating square wave and low
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* pass filtering, generate the waveform directly.
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* This avoids overshoot, ringing, and adding more jitter.
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* Alternating bits come out has sine wave of baud/2 Hz.
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*
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*--------------------------------------------------------------------*/
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static const int gray2phase_v26[4] = {0, 1, 3, 2};
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static const int gray2phase_v27[8] = {1, 0, 2, 3, 6, 7, 5, 4};
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void tone_gen_put_bit (int chan, int dat)
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{
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int a = ACHAN2ADEV(chan); /* device for channel. */
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assert (save_audio_config_p != NULL);
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assert (save_audio_config_p->achan[chan].valid);
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if (dat < 0) {
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/* Hack to test receive PLL recovery. */
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bit_len_acc[chan] -= ticks_per_bit[chan];
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dat = 0;
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}
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if (save_audio_config_p->achan[chan].modem_type == MODEM_QPSK) {
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int dibit;
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int symbol;
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dat &= 1; // Keep only LSB to be extra safe.
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if ( ! (bit_count[chan] & 1)) {
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save_bit[chan] = dat;
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bit_count[chan]++;
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return;
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}
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// All zero bits should give us steady 1800 Hz.
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// All one bits should flip phase by 180 degrees each time.
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dibit = (save_bit[chan] << 1) | dat;
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symbol = gray2phase_v26[dibit];
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tone_phase[chan] += symbol * PHASE_SHIFT_90;
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bit_count[chan]++;
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}
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if (save_audio_config_p->achan[chan].modem_type == MODEM_8PSK) {
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int tribit;
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int symbol;
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dat &= 1; // Keep only LSB to be extra safe.
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if (bit_count[chan] < 2) {
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save_bit[chan] = (save_bit[chan] << 1) | dat;
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bit_count[chan]++;
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return;
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}
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// The bit pattern 001 should give us steady 1800 Hz.
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// All one bits should flip phase by 180 degrees each time.
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tribit = (save_bit[chan] << 1) | dat;
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symbol = gray2phase_v27[tribit];
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tone_phase[chan] += symbol * PHASE_SHIFT_45;
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save_bit[chan] = 0;
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bit_count[chan] = 0;
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}
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if (save_audio_config_p->achan[chan].modem_type == MODEM_SCRAMBLE) {
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int x;
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x = (dat ^ (lfsr[chan] >> 16) ^ (lfsr[chan] >> 11)) & 1;
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lfsr[chan] = (lfsr[chan] << 1) | (x & 1);
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dat = x;
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}
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do { /* until enough audio samples for this symbol. */
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int sam;
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switch (save_audio_config_p->achan[chan].modem_type) {
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case MODEM_AFSK:
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#if DEBUG2
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text_color_set(DW_COLOR_DEBUG);
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dw_printf ("tone_gen_put_bit %d AFSK\n", __LINE__);
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#endif
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tone_phase[chan] += dat ? f2_change_per_sample[chan] : f1_change_per_sample[chan];
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sam = sine_table[(tone_phase[chan] >> 24) & 0xff];
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gen_tone_put_sample (chan, a, sam);
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break;
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case MODEM_QPSK:
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case MODEM_8PSK:
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#if DEBUG2
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text_color_set(DW_COLOR_DEBUG);
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dw_printf ("tone_gen_put_bit %d PSK\n", __LINE__);
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#endif
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tone_phase[chan] += f1_change_per_sample[chan];
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sam = sine_table[(tone_phase[chan] >> 24) & 0xff];
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gen_tone_put_sample (chan, a, sam);
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break;
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case MODEM_BASEBAND:
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case MODEM_SCRAMBLE:
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if (dat != prev_dat[chan]) {
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tone_phase[chan] += f1_change_per_sample[chan];
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}
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else {
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if (tone_phase[chan] & 0x80000000)
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tone_phase[chan] = 0xc0000000; // 270 degrees.
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else
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tone_phase[chan] = 0x40000000; // 90 degrees.
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}
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sam = sine_table[(tone_phase[chan] >> 24) & 0xff];
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gen_tone_put_sample (chan, a, sam);
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break;
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default:
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text_color_set(DW_COLOR_ERROR);
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dw_printf ("INTERNAL ERROR: %s %d achan[%d].modem_type = %d\n",
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__FILE__, __LINE__, chan, save_audio_config_p->achan[chan].modem_type);
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exit (EXIT_FAILURE);
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}
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/* Enough for the bit time? */
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bit_len_acc[chan] += ticks_per_sample[chan];
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} while (bit_len_acc[chan] < ticks_per_bit[chan]);
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bit_len_acc[chan] -= ticks_per_bit[chan];
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prev_dat[chan] = dat; // Only needed for G3RUH baseband/scrambled.
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} /* end tone_gen_put_bit */
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void gen_tone_put_sample (int chan, int a, int sam) {
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/* Ship out an audio sample. */
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/* 16 bit is signed, little endian, range -32768 .. +32767 */
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/* 8 bit is unsigned, range 0 .. 255 */
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assert (save_audio_config_p != NULL);
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assert (save_audio_config_p->adev[a].num_channels == 1 || save_audio_config_p->adev[a].num_channels == 2);
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assert (save_audio_config_p->adev[a].bits_per_sample == 16 || save_audio_config_p->adev[a].bits_per_sample == 8);
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// Bad news if we are clipping and distorting the signal.
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// We are using the full range.
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// Too late to change now because everyone would need to recalibrate their
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// transmit audio level.
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if (sam < -32767) {
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text_color_set(DW_COLOR_ERROR);
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dw_printf ("Warning: Audio sample %d clipped to -32767.\n", sam);
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sam = -32767;
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}
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else if (sam > 32767) {
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text_color_set(DW_COLOR_ERROR);
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dw_printf ("Warning: Audio sample %d clipped to +32767.\n", sam);
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sam = 32767;
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}
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if (save_audio_config_p->adev[a].num_channels == 1) {
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/* Mono */
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if (save_audio_config_p->adev[a].bits_per_sample == 8) {
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audio_put (a, ((sam+32768) >> 8) & 0xff);
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}
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else {
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audio_put (a, sam & 0xff);
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audio_put (a, (sam >> 8) & 0xff);
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}
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}
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else {
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if (chan == ADEVFIRSTCHAN(a)) {
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/* Stereo, left channel. */
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if (save_audio_config_p->adev[a].bits_per_sample == 8) {
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audio_put (a, ((sam+32768) >> 8) & 0xff);
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audio_put (a, 0);
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}
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else {
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audio_put (a, sam & 0xff);
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audio_put (a, (sam >> 8) & 0xff);
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audio_put (a, 0);
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audio_put (a, 0);
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}
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}
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else {
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/* Stereo, right channel. */
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if (save_audio_config_p->adev[a].bits_per_sample == 8) {
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audio_put (a, 0);
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audio_put (a, ((sam+32768) >> 8) & 0xff);
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}
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else {
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audio_put (a, 0);
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audio_put (a, 0);
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audio_put (a, sam & 0xff);
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audio_put (a, (sam >> 8) & 0xff);
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}
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}
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}
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}
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/*-------------------------------------------------------------------
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*
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* Name: main
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*
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* Purpose: Quick test program for above.
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*
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* Description: Compile like this for unit test:
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*
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* gcc -Wall -DMAIN -o gen_tone_test gen_tone.c audio.c textcolor.c
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*
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* gcc -Wall -DMAIN -o gen_tone_test.exe gen_tone.c audio_win.c textcolor.c -lwinmm
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*
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*--------------------------------------------------------------------*/
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#if MAIN
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int main ()
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{
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int n;
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int chan1 = 0;
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int chan2 = 1;
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int r;
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struct audio_s my_audio_config;
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/* to sound card */
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/* one channel. 2 times: one second of each tone. */
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memset (&my_audio_config, 0, sizeof(my_audio_config));
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strlcpy (my_audio_config.adev[0].adevice_in, DEFAULT_ADEVICE, sizeof(my_audio_config.adev[0].adevice_in));
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strlcpy (my_audio_config.adev[0].adevice_out, DEFAULT_ADEVICE, sizeof(my_audio_config.adev[0].adevice_out));
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audio_open (&my_audio_config);
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gen_tone_init (&my_audio_config, 100);
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for (r=0; r<2; r++) {
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for (n=0; n<my_audio_config.baud[0] * 2 ; n++) {
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tone_gen_put_bit ( chan1, 1 );
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}
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for (n=0; n<my_audio_config.baud[0] * 2 ; n++) {
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tone_gen_put_bit ( chan1, 0 );
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}
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}
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audio_close();
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/* Now try stereo. */
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memset (&my_audio_config, 0, sizeof(my_audio_config));
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strlcpy (my_audio_config.adev[0].adevice_in, DEFAULT_ADEVICE, sizeof(my_audio_config.adev[0].adevice_in));
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strlcpy (my_audio_config.adev[0].adevice_out, DEFAULT_ADEVICE, , sizeof(my_audio_config.adev[0].adevice_out));
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my_audio_config.adev[0].num_channels = 2;
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audio_open (&my_audio_config);
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gen_tone_init (&my_audio_config, 100);
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for (r=0; r<4; r++) {
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for (n=0; n<my_audio_config.baud[0] * 2 ; n++) {
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tone_gen_put_bit ( chan1, 1 );
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}
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for (n=0; n<my_audio_config.baud[0] * 2 ; n++) {
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tone_gen_put_bit ( chan1, 0 );
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}
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for (n=0; n<my_audio_config.baud[0] * 2 ; n++) {
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tone_gen_put_bit ( chan2, 1 );
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}
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for (n=0; n<my_audio_config.baud[0] * 2 ; n++) {
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tone_gen_put_bit ( chan2, 0 );
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}
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}
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audio_close();
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return(0);
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}
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#endif
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/* end gen_tone.c */
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