383 lines
11 KiB
C++
383 lines
11 KiB
C++
// Copyright (C) 2003-2008 Dolphin Project.
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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, version 2.0.
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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 2.0 for more details.
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// A copy of the GPL 2.0 should have been included with the program.
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// If not, see http://www.gnu.org/licenses/
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// Official SVN repository and contact information can be found at
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// http://code.google.com/p/dolphin-emu/
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#ifdef _WIN32
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// =======================================================================================
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// Includes
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// --------------
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#include <iostream>
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#include <vector>
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#include <string> // So that we can test if std::string == abc
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#include <windows.h>
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#include "Common.h"
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#include "UCode_AXStructs.h" // they are only in a virtual dir called UCodes AX
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// =====================
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// =======================================================================================
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// Declarations and definitions
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// --------------
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// ----------------------------------
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// Settings
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// --------------
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#define NUMBER_OF_PBS 64 // Todo: move this to a logging class
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// -----------------------------------
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// Externals
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// --------------
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extern u32 m_addressPBs;
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float ratioFactor;
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int globaliSize;
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short globalpBuffer;
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u32 gLastBlock;
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// --------------
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// -----------------------------------
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// Vectors and other things
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// --------------
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std::vector<u32> gloopPos(64);
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std::vector<u32> gsampleEnd(64);
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std::vector<u32> gsamplePos(64);
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std::vector<u32> gratio(64);
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std::vector<u32> gratiohi(64);
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std::vector<u32> gratiolo(64);
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std::vector<u32> gfrac(64);
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std::vector<u32> gcoef(64);
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// PBSampleRateConverter mixer
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std::vector<u16> gvolume_left(64);
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std::vector<u16> gvolume_right(64);
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std::vector<u16> gmixer_control(64);
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std::vector<u16> gcur_volume(64);
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std::vector<u16> gcur_volume_delta(64);
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std::vector<u16> gaudioFormat(64);
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std::vector<u16> glooping(64);
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std::vector<u16> gsrc_type(64);
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std::vector<u16> gis_stream(64);
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// loop
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std::vector<u16> gloop1(64);
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std::vector<u16> gloop2(64);
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std::vector<u16> gloop3(64);
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std::vector<u16> gadloop1(64);
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std::vector<u16> gadloop2(64);
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std::vector<u16> gadloop3(64);
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// updates
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std::vector<u16> gupdates1(64);
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std::vector<u16> gupdates2(64);
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std::vector<u16> gupdates3(64);
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std::vector<u16> gupdates4(64);
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std::vector<u16> gupdates5(64);
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std::vector<u32> gupdates_addr(64);
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// Other things
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std::vector<u16> Jump(64); // this is 1 or 0
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std::vector<int> musicLength(64);
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std::vector< std::vector<int> > vector1(64, std::vector<int>(100,0));
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std::vector<int> numberRunning(64);
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int j = 0;
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int k = 0;
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__int64 l = 0;
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int iupd = 0;
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bool iupdonce = false;
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std::vector<u16> viupd(15); // the length of the update frequency bar
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int vectorLength = 15; // the length of the playback history bar and how long
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// old blocks are shown
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std::vector<u16> vector62(vectorLength);
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std::vector<u16> vector63(vectorLength);
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int ReadOutPBs(AXParamBlock * _pPBs, int _num);
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// =====================
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// =======================================================================================
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// Main logging function
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// --------------
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void Logging()
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{
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// ---------------------------------------------------------------------------------------
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// ---------------------------------------------------------------------------------------
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// Control how often the screen is updated
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j++;
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l++;
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if (j>1000000) // TODO: make the update frequency adjustable from the logging window
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{
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AXParamBlock PBs[NUMBER_OF_PBS];
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int numberOfPBs = ReadOutPBs(PBs, NUMBER_OF_PBS);
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// =======================================================================================
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// Vector1 is a vector1[64][100] vector
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/*
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Move all items back like this
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1 to 2
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2 3
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3 ...
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*/
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// ----------------
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for (int i = 0; i < 64; i++)
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{
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for (int j = 1; j < vectorLength; j++)
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{
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vector1.at(i).at(j-1) = vector1.at(i).at(j);
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}
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}
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// =================
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// ---------------------------------------------------------------------------------------
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// Enter the latest value
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for (int i = 0; i < numberOfPBs; i++)
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{
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vector1.at(i).at(vectorLength-1) = PBs[i].running;
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}
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// -----------------
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// ---------------------------------------------------------------------------------------
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// Count how many blocks we have running now
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int jj = 0;
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for (int i = 0; i < 64; i++)
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{
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for (int j = 0; j < vectorLength-1; j++)
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{
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if (vector1.at(i).at(j) == 1)
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{
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jj++;
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}
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numberRunning.at(i) = jj;
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}
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}
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// --------------
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// ---------------------------------------------------------------------------------------
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// Write the first row
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char buffer [1000] = "";
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std::string sbuff;
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//sbuff = sbuff + " Nr | | frac ratio | old new \n"; // 5
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sbuff = sbuff + " Nr pos / end lpos | voll volr curv vold mix | isl[pre yn1 yn2] iss | frac ratio[hi lo] | 1 2 3 4 5\n";
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// --------------
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// ---------------------------------------------------------------------------------------
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// Read out values for all blocks
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for (int i = 0; i < numberOfPBs; i++)
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{
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if (numberRunning.at(i) > 0)
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{
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// =======================================================================================
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// Write the playback bar
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// -------------
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for (int j = 0; j < vectorLength; j++)
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{
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if(vector1.at(i).at(j) == 0)
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{
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sbuff = sbuff + " ";
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}
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else
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{
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sprintf(buffer, "%c", 177);
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sbuff = sbuff + buffer; strcpy(buffer, "");
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}
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}
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// ==============
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// ================================================================================================
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int sampleJump;
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int loopJump;
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//if (PBs[i].running && PBs[i].adpcm_loop_info.yn1 && PBs[i].mixer.volume_left)
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if (true)
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{
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// ---------------------------------------------------------------------------------------
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// AXPB base
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//int running = pb.running;
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gcoef[i] = PBs[i].unknown1;
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sampleJump = ((PBs[i].audio_addr.cur_addr_hi << 16) | PBs[i].audio_addr.cur_addr_lo) - gsamplePos[i];
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loopJump = ((PBs[i].audio_addr.loop_addr_hi << 16) | PBs[i].audio_addr.loop_addr_lo) - gloopPos[i];
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gloopPos[i] = (PBs[i].audio_addr.loop_addr_hi << 16) | PBs[i].audio_addr.loop_addr_lo;
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gsampleEnd[i] = (PBs[i].audio_addr.end_addr_hi << 16) | PBs[i].audio_addr.end_addr_lo;
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gsamplePos[i] = (PBs[i].audio_addr.cur_addr_hi << 16) | PBs[i].audio_addr.cur_addr_lo;
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// PBSampleRateConverter src
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gratio[i] = (u32)(((PBs[i].src.ratio_hi << 16) + PBs[i].src.ratio_lo) * ratioFactor);
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gratiohi[i] = PBs[i].src.ratio_hi;
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gratiolo[i] = PBs[i].src.ratio_lo;
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gfrac[i] = PBs[i].src.cur_addr_frac;
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// adpcm_loop_info
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gadloop1[i] = PBs[i].adpcm.pred_scale;
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gadloop2[i] = PBs[i].adpcm.yn1;
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gadloop3[i] = PBs[i].adpcm.yn2;
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gloop1[i] = PBs[i].adpcm_loop_info.pred_scale;
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gloop2[i] = PBs[i].adpcm_loop_info.yn1;
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gloop3[i] = PBs[i].adpcm_loop_info.yn2;
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// updates
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gupdates1[i] = PBs[i].updates.num_updates[0];
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gupdates2[i] = PBs[i].updates.num_updates[1];
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gupdates3[i] = PBs[i].updates.num_updates[2];
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gupdates4[i] = PBs[i].updates.num_updates[3];
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gupdates5[i] = PBs[i].updates.num_updates[4];
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gupdates_addr[i] = (PBs[i].updates.data_hi << 16) | PBs[i].updates.data_lo;
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gaudioFormat[i] = PBs[i].audio_addr.sample_format;
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glooping[i] = PBs[i].audio_addr.looping;
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gsrc_type[i] = PBs[i].src_type;
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gis_stream[i] = PBs[i].is_stream;
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// mixer
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gvolume_left[i] = PBs[i].mixer.volume_left;
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gvolume_right[i] = PBs[i].mixer.volume_right;
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gmixer_control[i] = PBs[i].mixer_control;
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gcur_volume[i] = PBs[i].vol_env.cur_volume;
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gcur_volume_delta[i] = PBs[i].vol_env.cur_volume_delta;
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// other stuff
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Jump[i] = (gfrac[i] >> 16); // This is 1 or 0
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musicLength[i] = gsampleEnd[i] - gloopPos[i];
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}
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// ================================================================================================
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// =======================================================================================
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// PRESETS
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// ---------------------------------------------------------------------------------------
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/*
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/" Nr pos / end lpos | voll volr curv vold mix | isl[pre yn1 yn2] iss | frac ratio[hi lo] | 1 2 3 4 5\n";
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"---------------|00 12341234/12341234 12341234 | 00000 00000 00000 0000 00000 | 0[000 00000 00000] 0 | 00000 00000[0 00000] |
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*/
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sprintf(buffer,"%c%i %08i/%08i %08i | %05i %05i %05i %04i %05i | %i[%03i %05i %05i] %i | %05i %05i[%i %05i] | %i %i %i %i %i",
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223, i, gsamplePos[i], gsampleEnd[i], gloopPos[i],
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gvolume_left[i], gvolume_right[i], gcur_volume[i], gcur_volume_delta[i], gmixer_control[i],
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glooping[i], gloop1[i], gloop2[i], gloop3[i], gis_stream[i],
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gfrac[i], gratio[i], gratiohi[i], gratiolo[i],
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gupdates1[i], gupdates2[i], gupdates3[i], gupdates4[i], gupdates5[i]
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);
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// =======================================================================================
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// write a new line
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sbuff = sbuff + buffer; strcpy(buffer, "");
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sbuff = sbuff + "\n";
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} // end of if (true)
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} // end of big loop - for (int i = 0; i < numberOfPBs; i++)
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// =======================================================================================
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// Write global values
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sprintf(buffer, "\nParameter blocks span from %08x | to %08x | distance %i %i\n", m_addressPBs, gLastBlock, (gLastBlock-m_addressPBs), (gLastBlock-m_addressPBs) / 192);
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sbuff = sbuff + buffer; strcpy(buffer, "");
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// ==============
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// =======================================================================================
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// Show update frequency
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// ---------------
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sbuff = sbuff + "\n";
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if(!iupdonce)
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{
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/*
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for (int i = 0; i < 10; i++)
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{
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viupd.at(i) == 0;
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}
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*/
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viupd.at(0) = 1;
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viupd.at(1) = 1;
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viupd.at(2) = 1;
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iupdonce = true;
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}
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for (int i = 0; i < (int)viupd.size(); i++) // 0, 1,..., 9
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{
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if (i < (int)viupd.size()-1)
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{
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viupd.at(viupd.size()-i-1) = viupd.at(viupd.size()-i-2); // move all forward
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}
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else
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{
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viupd.at(0) = viupd.at(viupd.size()-1);
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}
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// Correction
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if (viupd.at(viupd.size()-3) == 1 && viupd.at(viupd.size()-2) == 1 && viupd.at(viupd.size()-1) == 1)
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{
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viupd.at(0) = 0;
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}
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if(viupd.at(0) == 0 && viupd.at(1) == 1 && viupd.at(2) == 1 && viupd.at(3) == 0)
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{
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viupd.at(0) = 1;
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}
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}
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for (int i = 0; i < (int)viupd.size(); i++)
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{
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if(viupd.at(i) == 0)
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sbuff = sbuff + " ";
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else
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sbuff = sbuff + ".";
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}
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// ================
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// =======================================================================================
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// Print
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// ---------------
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// Console::ClearScreen();
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INFO_LOG(DSPHLE, "%s", sbuff.c_str());
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sbuff.clear(); strcpy(buffer, "");
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// ---------------
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k=0;
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j=0;
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// ---------------
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}
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// ---------------------------------------------------------------------------------------
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}
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// =======================================================================================
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#endif
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