mirror of
https://github.com/libretro/scummvm.git
synced 2025-01-03 07:59:38 +00:00
cc0f8c4fb5
svn-id: r5384
274 lines
7.6 KiB
C++
274 lines
7.6 KiB
C++
/* ScummVM - Scumm Interpreter
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* Copyright (C) 2001/2002 The ScummVM project
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version 2
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* of the License, or (at your option) any later version.
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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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* 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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* $Header$
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*
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*/
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#include <stdafx.h>
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#include "channel.h"
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#include "chunk.h"
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#include "chunk_type.h"
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#include <assert.h>
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#include <string.h>
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void SaudChannel::handleStrk(Chunk & b) {
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int32 size = b.getSize();
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if(size != 14 && size != 10) {
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error("STRK has a invalid size : %d", size);
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}
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}
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void SaudChannel::handleSmrk(Chunk & b) {
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_markReached = true;
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}
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void SaudChannel::handleShdr(Chunk & b) {
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int32 size = b.getSize();
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if(size != 4) warning("SMRK has a invalid size : %d", size);
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}
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bool SaudChannel::handleSubTags(int32 & offset) {
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if(_tbufferSize - offset >= 8) {
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Chunk::type type = READ_BE_UINT32(_tbuffer + offset);
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uint32 size = READ_BE_UINT32(_tbuffer + offset + 4);
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uint32 available_size = _tbufferSize - offset;
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switch(type) {
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case TYPE_STRK:
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_inData = false;
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if(available_size >= (size + 8)) {
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ContChunk c((byte *)_tbuffer + offset);
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handleStrk(c);
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}
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else
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return false;
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break;
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case TYPE_SMRK:
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_inData = false;
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if(available_size >= (size + 8)) {
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ContChunk c((byte *)_tbuffer + offset);
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handleSmrk(c);
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}
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else
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return false;
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break;
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case TYPE_SHDR:
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_inData = false;
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if(available_size >= (size + 8)) {
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ContChunk c((byte *)_tbuffer + offset);
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handleShdr(c);
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}
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else
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return false;
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break;
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case TYPE_SDAT:
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_inData = true;
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_dataSize = size;
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offset += 8;
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return false;
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default:
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error("unknown Chunk in SAUD track : %s ", Chunk::ChunkString(type));
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}
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offset += size + 8;
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return true;
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}
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return false;
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}
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bool SaudChannel::processBuffer() {
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// At the start of this function, we have _tbuffer[0.._tbuffersize] containing possible data...
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// and _sbuffer is 0
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// At the end we have :
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// if(sound data) _sbuffer[0.._sbuffer_size] contains the sound data
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// the unprocessed data is kept in _tbuffer[0.._tbuffersize] (which may have changed)
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// if no unprocessed data, then _tbuffer is 0
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assert(_tbuffer != 0);
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assert(_tbufferSize != 0);
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assert(_sbuffer == 0);
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assert(_sbufferSize == 0);
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if(_inData) {
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if(_dataSize < _tbufferSize) {
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// I can't assume that the channel is finished after data is received... (this assumption failed in realride.san)
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int32 offset = _dataSize;
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while(handleSubTags(offset));
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_sbufferSize = _dataSize;
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_sbuffer = _tbuffer;
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if(offset < _tbufferSize) { // there is still some unprocessed data
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int new_size = _tbufferSize - offset;
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_tbuffer = new byte[new_size];
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if(!_tbuffer) error("SaudChannel failed to allocate memory");
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memcpy(_tbuffer, _sbuffer + offset, new_size);
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_tbufferSize = new_size;
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} else {
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_tbuffer = 0;
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_tbufferSize = 0;
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}
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if(_sbufferSize == 0) {
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// this never happened yet, but who knows
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delete []_sbuffer;
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_sbuffer = 0;
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}
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} else {
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// easy, swap the buffer
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_sbufferSize = _tbufferSize;
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_sbuffer = _tbuffer;
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_tbufferSize = 0;
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_tbuffer = 0;
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}
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} else {
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int32 offset = 0;
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while(handleSubTags(offset));
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if(_inData) {
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_sbufferSize = _tbufferSize - offset;
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assert(_sbufferSize);
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_sbuffer = new byte[_sbufferSize];
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if(!_sbuffer) error("saud_channel failed to allocate memory");
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memcpy(_sbuffer, _tbuffer + offset, _sbufferSize);
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delete []_tbuffer;
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_tbuffer = 0;
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_tbufferSize = 0;
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} else {
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if(offset) { // maybe I should assert() this to avoid a lock...
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unsigned char * old = _tbuffer;
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int32 new_size = _tbufferSize - offset;
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_tbuffer = new byte[new_size];
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if(!_tbuffer) error("SaudChannel failed to allocate memory");
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memcpy(_tbuffer, old + offset, new_size);
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_tbufferSize = new_size;
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delete []old;
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}
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}
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}
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return true;
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}
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SaudChannel::SaudChannel(int32 track, int32 freq) :
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_track(track),
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_nbframes(0),
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_dataSize(-1),
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_frequency(freq),
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_inData(false),
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_markReached(false),
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_tbuffer(0),
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_tbufferSize(0),
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_sbuffer(0),
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_sbufferSize(0)
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{
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}
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SaudChannel::~SaudChannel() {
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if(_tbuffer) delete []_tbuffer;
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if(_sbuffer) {
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warning("this should never happen !!!! (_sbuffer not NULL here)");
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delete []_sbuffer;
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}
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}
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bool SaudChannel::isTerminated() const {
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return (_markReached && _dataSize == 0 && _sbuffer == 0);
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}
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void SaudChannel::recalcVolumeTable() {
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const int32 MAX_BALANCE = 100;
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int32 volume_left, volume_right;
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if(_balance < -MAX_BALANCE || _balance > MAX_BALANCE) {
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warning("balance is out of range ! : %d", _balance);
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return;
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}
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int32 left_multiplier = MAX_BALANCE - _balance;
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int32 right_multiplier = MAX_BALANCE + _balance;
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volume_left = _volume * left_multiplier / (MAX_BALANCE * 2);
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volume_right = _volume * right_multiplier / (MAX_BALANCE * 2);
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if(volume_left < 0) volume_left = 0;
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if(volume_left > 128) volume_left = 128;
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if(volume_right < 0) volume_right = 0;
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if(volume_right > 128) volume_right = 128;
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for(int32 i = 0; i < 256; i++) {
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int16 value = volume_left * (int8)i;
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_voltable[0][i] = TO_BE_16(value);
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value = volume_right * (int8)i;
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_voltable[1][i] = TO_BE_16(value);
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}
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}
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bool SaudChannel::setParameters(int32 nb, int32 flags, int32 volume, int32 balance) {
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_nbframes = nb;
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_flags = flags; // bit 7 == IS_VOICE, bit 6 == IS_BACKGROUND_MUSIC, other ??
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_volume = volume;
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_balance = balance;
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_index = 0;
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recalcVolumeTable();
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return true;
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}
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bool SaudChannel::checkParameters(int32 index, int32 nb, int32 flags, int32 volume, int32 balance) {
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if(++_index != index) error("invalid index in SaudChannel::checkParameters()");
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if(_nbframes != nb) error("invalid duration in SaudChannel::checkParameters()");
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if(_flags != flags) error("invalid flags in SaudChannel::checkParameters()");
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if(_volume != volume || _balance != balance) {
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_volume = volume;
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_balance = balance;
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recalcVolumeTable();
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}
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return true;
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}
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bool SaudChannel::appendData(Chunk & b, int32 size) {
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if(_dataSize == -1) { // First call
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assert(size > 8);
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Chunk::type saud_type = b.getDword(); saud_type = SWAP_BYTES(saud_type);
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uint32 saud_size = b.getDword(); saud_size = SWAP_BYTES(saud_size);
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if(saud_type != TYPE_SAUD) error("Invalid Chunk for SaudChannel : %X", saud_type);
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size -= 8;
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_dataSize = -2; // We don't get here again...
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}
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if(_tbuffer) {
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byte * old = _tbuffer;
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_tbuffer = new byte[_tbufferSize + size];
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if(!_tbuffer) error("saud_channel failed to allocate memory");
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memcpy(_tbuffer, old, _tbufferSize);
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delete []old;
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b.read(_tbuffer + _tbufferSize, size);
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_tbufferSize += size;
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} else {
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_tbufferSize = size;
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_tbuffer = new byte[_tbufferSize];
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if(!_tbuffer) error("saud_channel failed to allocate memory");
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b.read(_tbuffer, _tbufferSize);
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}
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return processBuffer();
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}
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int32 SaudChannel::availableSoundData(void) const {
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return _sbufferSize;
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}
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void SaudChannel::getSoundData(int16 * snd, int32 size) {
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for(int32 i = 0; i < size; i++) {
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snd[2 * i] = _voltable[0][_sbuffer[i] ^ 0x80];
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snd[2 * i + 1] = _voltable[1][_sbuffer[i] ^ 0x80];
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}
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_dataSize -= size;
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delete []_sbuffer;
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_sbuffer = 0;
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_sbufferSize = 0;
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}
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