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309 lines
8.9 KiB
309 lines
8.9 KiB
// ---------------------------------------------------------------------------
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// This file is part of reSID, a MOS6581 SID emulator engine.
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// Copyright (C) 2004 Dag Lem <resid@nimrod.no>
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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, write to the Free Software
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// Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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// ---------------------------------------------------------------------------
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#ifndef __ENVELOPE_H__
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#define __ENVELOPE_H__
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#include "siddefs.h"
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RESID_NAMESPACE_START
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// ----------------------------------------------------------------------------
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// A 15 bit counter is used to implement the envelope rates, in effect
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// dividing the clock to the envelope counter by the currently selected rate
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// period.
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// In addition, another counter is used to implement the exponential envelope
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// decay, in effect further dividing the clock to the envelope counter.
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// The period of this counter is set to 1, 2, 4, 8, 16, 30 at the envelope
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// counter values 255, 93, 54, 26, 14, 6, respectively.
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// ----------------------------------------------------------------------------
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class EnvelopeGenerator
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{
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public:
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EnvelopeGenerator();
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enum State { ATTACK, DECAY_SUSTAIN, RELEASE };
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RESID_INLINE void clock();
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RESID_INLINE void clock(cycle_count delta_t);
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void reset();
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void writeCONTROL_REG(reg8);
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void writeATTACK_DECAY(reg8);
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void writeSUSTAIN_RELEASE(reg8);
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reg8 readENV();
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// 8-bit envelope output.
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RESID_INLINE reg8 output();
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protected:
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reg16 rate_counter;
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reg16 rate_period;
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reg8 exponential_counter;
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reg8 exponential_counter_period;
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reg8 envelope_counter;
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bool hold_zero;
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reg4 attack;
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reg4 decay;
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reg4 sustain;
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reg4 release;
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reg8 gate;
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State state;
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// Lookup table to convert from attack, decay, or release value to rate
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// counter period.
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static reg16 rate_counter_period[];
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// The 16 selectable sustain levels.
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static reg8 sustain_level[];
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friend class SID;
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};
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// ----------------------------------------------------------------------------
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// Inline functions.
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// The following functions are defined inline because they are called every
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// time a sample is calculated.
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// ----------------------------------------------------------------------------
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#if RESID_INLINING || defined(__ENVELOPE_CC__)
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// ----------------------------------------------------------------------------
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// SID clocking - 1 cycle.
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// ----------------------------------------------------------------------------
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RESID_INLINE
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void EnvelopeGenerator::clock()
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{
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// Check for ADSR delay bug.
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// If the rate counter comparison value is set below the current value of the
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// rate counter, the counter will continue counting up until it wraps around
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// to zero at 2^15 = 0x8000, and then count rate_period - 1 before the
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// envelope can finally be stepped.
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// This has been verified by sampling ENV3.
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//
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if (++rate_counter & 0x8000) {
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++rate_counter &= 0x7fff;
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}
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if (rate_counter != rate_period) {
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return;
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}
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rate_counter = 0;
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// The first envelope step in the attack state also resets the exponential
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// counter. This has been verified by sampling ENV3.
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//
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if (state == ATTACK || ++exponential_counter == exponential_counter_period)
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{
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exponential_counter = 0;
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// Check whether the envelope counter is frozen at zero.
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if (hold_zero) {
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return;
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}
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switch (state) {
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case ATTACK:
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// The envelope counter can flip from 0xff to 0x00 by changing state to
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// release, then to attack. The envelope counter is then frozen at
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// zero; to unlock this situation the state must be changed to release,
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// then to attack. This has been verified by sampling ENV3.
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//
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++envelope_counter &= 0xff;
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if (envelope_counter == 0xff) {
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state = DECAY_SUSTAIN;
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rate_period = rate_counter_period[decay];
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}
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break;
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case DECAY_SUSTAIN:
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if (envelope_counter != sustain_level[sustain]) {
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--envelope_counter;
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}
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break;
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case RELEASE:
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// The envelope counter can flip from 0x00 to 0xff by changing state to
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// attack, then to release. The envelope counter will then continue
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// counting down in the release state.
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// This has been verified by sampling ENV3.
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// NB! The operation below requires two's complement integer.
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//
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--envelope_counter &= 0xff;
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break;
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}
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// Check for change of exponential counter period.
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switch (envelope_counter) {
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case 0xff:
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exponential_counter_period = 1;
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break;
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case 0x5d:
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exponential_counter_period = 2;
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break;
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case 0x36:
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exponential_counter_period = 4;
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break;
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case 0x1a:
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exponential_counter_period = 8;
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break;
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case 0x0e:
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exponential_counter_period = 16;
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break;
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case 0x06:
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exponential_counter_period = 30;
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break;
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case 0x00:
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exponential_counter_period = 1;
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// When the envelope counter is changed to zero, it is frozen at zero.
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// This has been verified by sampling ENV3.
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hold_zero = true;
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break;
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}
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}
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}
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// ----------------------------------------------------------------------------
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// SID clocking - delta_t cycles.
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// ----------------------------------------------------------------------------
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RESID_INLINE
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void EnvelopeGenerator::clock(cycle_count delta_t)
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{
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// Check for ADSR delay bug.
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// If the rate counter comparison value is set below the current value of the
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// rate counter, the counter will continue counting up until it wraps around
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// to zero at 2^15 = 0x8000, and then count rate_period - 1 before the
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// envelope can finally be stepped.
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// This has been verified by sampling ENV3.
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//
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// NB! This requires two's complement integer.
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int rate_step = rate_period - rate_counter;
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if (rate_step <= 0) {
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rate_step += 0x7fff;
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}
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while (delta_t) {
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if (delta_t < rate_step) {
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rate_counter += delta_t;
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if (rate_counter & 0x8000) {
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++rate_counter &= 0x7fff;
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}
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return;
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}
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rate_counter = 0;
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delta_t -= rate_step;
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// The first envelope step in the attack state also resets the exponential
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// counter. This has been verified by sampling ENV3.
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//
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if (state == ATTACK || ++exponential_counter == exponential_counter_period)
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{
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exponential_counter = 0;
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// Check whether the envelope counter is frozen at zero.
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if (hold_zero) {
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rate_step = rate_period;
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continue;
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}
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switch (state) {
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case ATTACK:
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// The envelope counter can flip from 0xff to 0x00 by changing state to
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// release, then to attack. The envelope counter is then frozen at
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// zero; to unlock this situation the state must be changed to release,
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// then to attack. This has been verified by sampling ENV3.
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//
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++envelope_counter &= 0xff;
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if (envelope_counter == 0xff) {
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state = DECAY_SUSTAIN;
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rate_period = rate_counter_period[decay];
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}
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break;
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case DECAY_SUSTAIN:
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if (envelope_counter != sustain_level[sustain]) {
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--envelope_counter;
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}
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break;
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case RELEASE:
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// The envelope counter can flip from 0x00 to 0xff by changing state to
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// attack, then to release. The envelope counter will then continue
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// counting down in the release state.
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// This has been verified by sampling ENV3.
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// NB! The operation below requires two's complement integer.
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//
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--envelope_counter &= 0xff;
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break;
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}
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// Check for change of exponential counter period.
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switch (envelope_counter) {
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case 0xff:
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exponential_counter_period = 1;
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break;
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case 0x5d:
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exponential_counter_period = 2;
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break;
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case 0x36:
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exponential_counter_period = 4;
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break;
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case 0x1a:
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exponential_counter_period = 8;
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break;
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case 0x0e:
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exponential_counter_period = 16;
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break;
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case 0x06:
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exponential_counter_period = 30;
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break;
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case 0x00:
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exponential_counter_period = 1;
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// When the envelope counter is changed to zero, it is frozen at zero.
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// This has been verified by sampling ENV3.
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hold_zero = true;
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break;
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}
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}
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rate_step = rate_period;
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}
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}
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// ----------------------------------------------------------------------------
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// Read the envelope generator output.
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// ----------------------------------------------------------------------------
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RESID_INLINE
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reg8 EnvelopeGenerator::output()
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{
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return envelope_counter;
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}
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#endif // RESID_INLINING || defined(__ENVELOPE_CC__)
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RESID_NAMESPACE_STOP
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#endif // not __ENVELOPE_H__
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