388 lines
11 KiB
C++
388 lines
11 KiB
C++
/**
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* @file llwlparamset.cpp
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* @brief Implementation for the LLWLParamSet class.
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*
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* $LicenseInfo:firstyear=2005&license=viewergpl$
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*
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* Copyright (c) 2005-2009, Linden Research, Inc.
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*
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* Second Life Viewer Source Code
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* The source code in this file ("Source Code") is provided by Linden Lab
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* to you under the terms of the GNU General Public License, version 2.0
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* ("GPL"), unless you have obtained a separate licensing agreement
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* ("Other License"), formally executed by you and Linden Lab. Terms of
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* the GPL can be found in doc/GPL-license.txt in this distribution, or
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* online at http://secondlifegrid.net/programs/open_source/licensing/gplv2
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*
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* There are special exceptions to the terms and conditions of the GPL as
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* it is applied to this Source Code. View the full text of the exception
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* in the file doc/FLOSS-exception.txt in this software distribution, or
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* online at
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* http://secondlifegrid.net/programs/open_source/licensing/flossexception
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*
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* By copying, modifying or distributing this software, you acknowledge
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* that you have read and understood your obligations described above,
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* and agree to abide by those obligations.
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*
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* ALL LINDEN LAB SOURCE CODE IS PROVIDED "AS IS." LINDEN LAB MAKES NO
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* WARRANTIES, EXPRESS, IMPLIED OR OTHERWISE, REGARDING ITS ACCURACY,
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* COMPLETENESS OR PERFORMANCE.
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* $/LicenseInfo$
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*/
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#include "llviewerprecompiledheaders.h"
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#include "llwlparamset.h"
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#include "llwlanimator.h"
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#include "llfloaterwindlight.h"
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#include "llwlparammanager.h"
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#include "lluictrlfactory.h"
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#include "llsliderctrl.h"
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#include <llgl.h>
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#include <sstream>
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LLWLParamSet::LLWLParamSet(void) :
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mName("Unnamed Preset"),
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mCloudScrollXOffset(0.f), mCloudScrollYOffset(0.f)
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{
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/* REMOVE or init the LLSD
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const std::map<std::string, LLVector4>::value_type hardcodedPreset[] = {
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std::make_pair("lightnorm", LLVector4(0.f, 0.707f, -0.707f, 0.f)),
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std::make_pair("sunlight_color", LLVector4(0.6f, 0.6f, 2.83f, 2.27f)),
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std::make_pair("ambient", LLVector4(0.27f, 0.33f, 0.44f, 1.19f)),
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std::make_pair("blue_horizon", LLVector4(0.3f, 0.4f, 0.9f, 1.f)),
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std::make_pair("blue_density", LLVector4(0.3f, 0.4f, 0.8f, 1.f)),
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std::make_pair("haze_horizon", LLVector4(0.6f, 0.6f, 0.6f, 1.f)),
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std::make_pair("haze_density", LLVector4(0.3f, 0.3f, 0.3f, 1.f)),
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std::make_pair("cloud_shadow", LLVector4(0.f, 0.f, 0.f, 0.f)),
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std::make_pair("density_multiplier", LLVector4(0.001f, 0.001f, 0.001f, 0.001f)),
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std::make_pair("distance_multiplier", LLVector4(1.f, 1.f, 1.f, 1.f)),
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std::make_pair("max_y", LLVector4(600.f, 600.f, 600.f, 0.f)),
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std::make_pair("glow", LLVector4(15.f, 0.001f, -0.03125f, 0.f)),
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std::make_pair("cloud_color", LLVector4(0.0f, 0.0f, 0.0f, 0.0f)),
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std::make_pair("cloud_pos_density1", LLVector4(0.f, 0.f, 0.f, 1.f)),
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std::make_pair("cloud_pos_density2", LLVector4(0.f, 0.f, 0.f, 1.f)),
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std::make_pair("cloud_scale", LLVector4(0.42f, 0.f, 0.f, 1.f)),
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std::make_pair("gamma", LLVector4(2.0f, 2.0f, 2.0f, 0.0f)),
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};
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std::map<std::string, LLVector4>::value_type const * endHardcodedPreset =
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hardcodedPreset + LL_ARRAY_SIZE(hardcodedPreset);
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mParamValues.insert(hardcodedPreset, endHardcodedPreset);
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*/
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}
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void LLWLParamSet::update(LLGLSLShader * shader) const
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{
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for(LLSD::map_const_iterator i = mParamValues.beginMap();
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i != mParamValues.endMap();
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++i)
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{
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const std::string& param = i->first;
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if( param == "star_brightness" || param == "preset_num" || param == "sun_angle" ||
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param == "east_angle" || param == "enable_cloud_scroll" ||
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param == "cloud_scroll_rate" || param == "lightnorm" )
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{
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continue;
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}
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if(param == "cloud_pos_density1")
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{
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LLVector4 val;
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val.mV[0] = F32(i->second[0].asReal()) + mCloudScrollXOffset;
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val.mV[1] = F32(i->second[1].asReal()) + mCloudScrollYOffset;
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val.mV[2] = (F32) i->second[2].asReal();
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val.mV[3] = (F32) i->second[3].asReal();
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shader->uniform4fv(param, 1, val.mV);
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}
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else
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{
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LLVector4 val;
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// handle all the different cases
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if(i->second.isArray() && i->second.size() == 4)
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{
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val.mV[0] = (F32) i->second[0].asReal();
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val.mV[1] = (F32) i->second[1].asReal();
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val.mV[2] = (F32) i->second[2].asReal();
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val.mV[3] = (F32) i->second[3].asReal();
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}
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else if(i->second.isReal())
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{
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val.mV[0] = (F32) i->second.asReal();
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}
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else if(i->second.isInteger())
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{
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val.mV[0] = (F32) i->second.asReal();
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}
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else if(i->second.isBoolean())
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{
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val.mV[0] = i->second.asBoolean();
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}
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shader->uniform4fv(param, 1, val.mV);
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}
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}
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}
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void LLWLParamSet::set(const std::string& paramName, float x)
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{
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// handle case where no array
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if(mParamValues[paramName].isReal())
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{
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mParamValues[paramName] = x;
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}
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// handle array
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else if(mParamValues[paramName].isArray() &&
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mParamValues[paramName][0].isReal())
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{
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mParamValues[paramName][0] = x;
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}
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}
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void LLWLParamSet::set(const std::string& paramName, float x, float y) {
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mParamValues[paramName][0] = x;
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mParamValues[paramName][1] = y;
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}
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void LLWLParamSet::set(const std::string& paramName, float x, float y, float z)
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{
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mParamValues[paramName][0] = x;
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mParamValues[paramName][1] = y;
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mParamValues[paramName][2] = z;
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}
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void LLWLParamSet::set(const std::string& paramName, float x, float y, float z, float w)
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{
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mParamValues[paramName][0] = x;
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mParamValues[paramName][1] = y;
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mParamValues[paramName][2] = z;
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mParamValues[paramName][3] = w;
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}
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void LLWLParamSet::set(const std::string& paramName, const float * val)
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{
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mParamValues[paramName][0] = val[0];
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mParamValues[paramName][1] = val[1];
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mParamValues[paramName][2] = val[2];
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mParamValues[paramName][3] = val[3];
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}
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void LLWLParamSet::set(const std::string& paramName, const LLVector4 & val)
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{
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mParamValues[paramName][0] = val.mV[0];
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mParamValues[paramName][1] = val.mV[1];
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mParamValues[paramName][2] = val.mV[2];
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mParamValues[paramName][3] = val.mV[3];
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}
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void LLWLParamSet::set(const std::string& paramName, const LLColor4 & val)
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{
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mParamValues[paramName][0] = val.mV[0];
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mParamValues[paramName][1] = val.mV[1];
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mParamValues[paramName][2] = val.mV[2];
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mParamValues[paramName][3] = val.mV[3];
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}
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LLVector4 LLWLParamSet::getVector(const std::string& paramName, bool& error)
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{
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// test to see if right type
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LLSD cur_val = mParamValues.get(paramName);
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if (!cur_val.isArray())
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{
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error = true;
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return LLVector4(0,0,0,0);
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}
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LLVector4 val;
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val.mV[0] = (F32) cur_val[0].asReal();
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val.mV[1] = (F32) cur_val[1].asReal();
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val.mV[2] = (F32) cur_val[2].asReal();
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val.mV[3] = (F32) cur_val[3].asReal();
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error = false;
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return val;
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}
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F32 LLWLParamSet::getFloat(const std::string& paramName, bool& error)
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{
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// test to see if right type
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LLSD cur_val = mParamValues.get(paramName);
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if (cur_val.isArray() && cur_val.size() != 0)
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{
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error = false;
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return (F32) cur_val[0].asReal();
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}
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if(cur_val.isReal())
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{
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error = false;
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return (F32) cur_val.asReal();
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}
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error = true;
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return 0;
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}
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void LLWLParamSet::setSunAngle(float val)
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{
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// keep range 0 - 2pi
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if(val > F_TWO_PI || val < 0)
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{
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F32 num = val / F_TWO_PI;
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num -= floor(num);
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val = F_TWO_PI * num;
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}
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mParamValues["sun_angle"] = val;
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}
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void LLWLParamSet::setEastAngle(float val)
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{
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// keep range 0 - 2pi
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if(val > F_TWO_PI || val < 0)
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{
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F32 num = val / F_TWO_PI;
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num -= floor(num);
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val = F_TWO_PI * num;
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}
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mParamValues["east_angle"] = val;
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}
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void LLWLParamSet::mix(LLWLParamSet& src, LLWLParamSet& dest, F32 weight)
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{
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// set up the iterators
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// keep cloud positions and coverage the same
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/// TODO masking will do this later
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F32 cloudPos1X = (F32) mParamValues["cloud_pos_density1"][0].asReal();
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F32 cloudPos1Y = (F32) mParamValues["cloud_pos_density1"][1].asReal();
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F32 cloudPos2X = (F32) mParamValues["cloud_pos_density2"][0].asReal();
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F32 cloudPos2Y = (F32) mParamValues["cloud_pos_density2"][1].asReal();
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F32 cloudCover = (F32) mParamValues["cloud_shadow"][0].asReal();
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LLSD srcVal;
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LLSD destVal;
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// Iterate through values
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for(LLSD::map_iterator iter = mParamValues.beginMap(); iter != mParamValues.endMap(); ++iter)
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{
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// If param exists in both src and dest, set the holder variables, otherwise skip
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if(src.mParamValues.has(iter->first) && dest.mParamValues.has(iter->first))
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{
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srcVal = src.mParamValues[iter->first];
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destVal = dest.mParamValues[iter->first];
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}
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else
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{
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continue;
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}
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if(iter->second.isReal()) // If it's a real, interpolate directly
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{
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iter->second = srcVal.asReal() + ((destVal.asReal() - srcVal.asReal()) * weight);
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}
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else if(iter->second.isArray() && iter->second[0].isReal() // If it's an array of reals, loop through the reals and interpolate on those
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&& iter->second.size() == srcVal.size() && iter->second.size() == destVal.size())
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{
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// Actually do interpolation: old value + (difference in values * factor)
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for(int i=0; i < iter->second.size(); ++i)
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{
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// iter->second[i] = (1.f-weight)*(F32)srcVal[i].asReal() + weight*(F32)destVal[i].asReal(); // old way of doing it -- equivalent but one more operation
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iter->second[i] = srcVal[i].asReal() + ((destVal[i].asReal() - srcVal[i].asReal()) * weight);
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}
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}
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else // Else, skip
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{
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continue;
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}
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}
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// now mix the extra parameters
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setStarBrightness((1 - weight) * (F32) src.getStarBrightness()
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+ weight * (F32) dest.getStarBrightness());
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llassert(src.getSunAngle() >= - F_PI &&
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src.getSunAngle() <= 3 * F_PI);
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llassert(dest.getSunAngle() >= - F_PI &&
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dest.getSunAngle() <= 3 * F_PI);
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llassert(src.getEastAngle() >= 0 &&
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src.getEastAngle() <= 4 * F_PI);
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llassert(dest.getEastAngle() >= 0 &&
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dest.getEastAngle() <= 4 * F_PI);
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// sun angle and east angle require some handling to make sure
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// they go in circles. Yes quaternions would work better.
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F32 srcSunAngle = src.getSunAngle();
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F32 destSunAngle = dest.getSunAngle();
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F32 srcEastAngle = src.getEastAngle();
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F32 destEastAngle = dest.getEastAngle();
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if(fabsf(srcSunAngle - destSunAngle) > F_PI)
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{
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if(srcSunAngle > destSunAngle)
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{
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destSunAngle += 2 * F_PI;
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}
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else
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{
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srcSunAngle += 2 * F_PI;
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}
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}
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if(fabsf(srcEastAngle - destEastAngle) > F_PI)
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{
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if(srcEastAngle > destEastAngle)
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{
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destEastAngle += 2 * F_PI;
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}
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else
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{
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srcEastAngle += 2 * F_PI;
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}
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}
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setSunAngle((1 - weight) * srcSunAngle + weight * destSunAngle);
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setEastAngle((1 - weight) * srcEastAngle + weight * destEastAngle);
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// now setup the sun properly
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// reset those cloud positions
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mParamValues["cloud_pos_density1"][0] = cloudPos1X;
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mParamValues["cloud_pos_density1"][1] = cloudPos1Y;
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mParamValues["cloud_pos_density2"][0] = cloudPos2X;
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mParamValues["cloud_pos_density2"][1] = cloudPos2Y;
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mParamValues["cloud_shadow"][0] = cloudCover;
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}
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void LLWLParamSet::updateCloudScrolling(void)
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{
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static LLTimer s_cloud_timer;
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F64 delta_t = s_cloud_timer.getElapsedTimeAndResetF64();
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if(getEnableCloudScrollX())
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{
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mCloudScrollXOffset += F32(delta_t * (getCloudScrollX() - 10.f) / 100.f);
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}
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if(getEnableCloudScrollY())
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{
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mCloudScrollYOffset += F32(delta_t * (getCloudScrollY() - 10.f) / 100.f);
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}
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}
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