File size: 7,177 Bytes
90f0b29 |
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 |
// This file is part of Eigen, a lightweight C++ template library
// for linear algebra.
//
// Copyright (C) 2008 Gael Guennebaud <gael.guennebaud@inria.fr>
//
// This Source Code Form is subject to the terms of the Mozilla
// Public License v. 2.0. If a copy of the MPL was not distributed
// with this file, You can obtain one at http://mozilla.org/MPL/2.0/.
#ifndef EIGEN_GPUHELPER_H
#define EIGEN_GPUHELPER_H
#include <Eigen/Geometry>
#include <GL/gl.h>
#include <vector>
using namespace Eigen;
typedef Vector4f Color;
class GpuHelper
{
public:
GpuHelper();
~GpuHelper();
enum ProjectionMode2D { PM_Normalized = 1, PM_Viewport = 2 };
void pushProjectionMode2D(ProjectionMode2D pm);
void popProjectionMode2D();
/** Multiply the OpenGL matrix \a matrixTarget by the matrix \a mat.
Essentially, this helper function automatically calls glMatrixMode(matrixTarget) if required
and does a proper call to the right glMultMatrix*() function according to the scalar type
and storage order.
\warning glMatrixMode() must never be called directly. If your're unsure, use forceMatrixMode().
\sa Matrix, loadMatrix(), forceMatrixMode()
*/
template<typename Scalar, int _Flags>
void multMatrix(const Matrix<Scalar,4,4, _Flags, 4,4>& mat, GLenum matrixTarget);
/** Load the matrix \a mat to the OpenGL matrix \a matrixTarget.
Essentially, this helper function automatically calls glMatrixMode(matrixTarget) if required
and does a proper call to the right glLoadMatrix*() or glLoadIdentity() function according to the scalar type
and storage order.
\warning glMatrixMode() must never be called directly. If your're unsure, use forceMatrixMode().
\sa Matrix, multMatrix(), forceMatrixMode()
*/
template<typename Scalar, int _Flags>
void loadMatrix(const Eigen::Matrix<Scalar,4,4, _Flags, 4,4>& mat, GLenum matrixTarget);
template<typename Scalar, typename Derived>
void loadMatrix(
const Eigen::CwiseNullaryOp<Eigen::internal::scalar_identity_op<Scalar>,Derived>&,
GLenum matrixTarget);
/** Make the matrix \a matrixTarget the current OpenGL matrix target.
Call this function before loadMatrix() or multMatrix() if you cannot guarantee that glMatrixMode()
has never been called after the last loadMatrix() or multMatrix() calls.
\todo provides a debug mode checking the sanity of the cached matrix mode.
*/
inline void forceMatrixTarget(GLenum matrixTarget) {glMatrixMode(mCurrentMatrixTarget=matrixTarget);}
inline void setMatrixTarget(GLenum matrixTarget);
/** Push the OpenGL matrix \a matrixTarget and load \a mat.
*/
template<typename Scalar, int _Flags>
inline void pushMatrix(const Matrix<Scalar,4,4, _Flags, 4,4>& mat, GLenum matrixTarget);
template<typename Scalar, typename Derived>
void pushMatrix(
const Eigen::CwiseNullaryOp<Eigen::internal::scalar_identity_op<Scalar>,Derived>&,
GLenum matrixTarget);
/** Push and clone the OpenGL matrix \a matrixTarget
*/
inline void pushMatrix(GLenum matrixTarget);
/** Pop the OpenGL matrix \a matrixTarget
*/
inline void popMatrix(GLenum matrixTarget);
void drawVector(const Vector3f& position, const Vector3f& vec, const Color& color, float aspect = 50.);
void drawVectorBox(const Vector3f& position, const Vector3f& vec, const Color& color, float aspect = 50.);
void drawUnitCube(void);
void drawUnitSphere(int level=0);
/// draw the \a nofElement first elements
inline void draw(GLenum mode, uint nofElement);
/// draw a range of elements
inline void draw(GLenum mode, uint start, uint end);
/// draw an indexed subset
inline void draw(GLenum mode, const std::vector<uint>* pIndexes);
protected:
void update(void);
GLuint mColorBufferId;
int mVpWidth, mVpHeight;
GLenum mCurrentMatrixTarget;
bool mInitialized;
};
/** Singleton shortcut
*/
extern GpuHelper gpu;
/** \internal
*/
template<bool RowMajor, int _Flags> struct GlMatrixHelper;
template<int _Flags> struct GlMatrixHelper<false,_Flags>
{
static void loadMatrix(const Matrix<float, 4,4, _Flags, 4,4>& mat) { glLoadMatrixf(mat.data()); }
static void loadMatrix(const Matrix<double,4,4, _Flags, 4,4>& mat) { glLoadMatrixd(mat.data()); }
static void multMatrix(const Matrix<float, 4,4, _Flags, 4,4>& mat) { glMultMatrixf(mat.data()); }
static void multMatrix(const Matrix<double,4,4, _Flags, 4,4>& mat) { glMultMatrixd(mat.data()); }
};
template<int _Flags> struct GlMatrixHelper<true,_Flags>
{
static void loadMatrix(const Matrix<float, 4,4, _Flags, 4,4>& mat) { glLoadMatrixf(mat.transpose().eval().data()); }
static void loadMatrix(const Matrix<double,4,4, _Flags, 4,4>& mat) { glLoadMatrixd(mat.transpose().eval().data()); }
static void multMatrix(const Matrix<float, 4,4, _Flags, 4,4>& mat) { glMultMatrixf(mat.transpose().eval().data()); }
static void multMatrix(const Matrix<double,4,4, _Flags, 4,4>& mat) { glMultMatrixd(mat.transpose().eval().data()); }
};
inline void GpuHelper::setMatrixTarget(GLenum matrixTarget)
{
if (matrixTarget != mCurrentMatrixTarget)
glMatrixMode(mCurrentMatrixTarget=matrixTarget);
}
template<typename Scalar, int _Flags>
void GpuHelper::multMatrix(const Matrix<Scalar,4,4, _Flags, 4,4>& mat, GLenum matrixTarget)
{
setMatrixTarget(matrixTarget);
GlMatrixHelper<_Flags&Eigen::RowMajorBit, _Flags>::multMatrix(mat);
}
template<typename Scalar, typename Derived>
void GpuHelper::loadMatrix(
const Eigen::CwiseNullaryOp<Eigen::internal::scalar_identity_op<Scalar>,Derived>&,
GLenum matrixTarget)
{
setMatrixTarget(matrixTarget);
glLoadIdentity();
}
template<typename Scalar, int _Flags>
void GpuHelper::loadMatrix(const Eigen::Matrix<Scalar,4,4, _Flags, 4,4>& mat, GLenum matrixTarget)
{
setMatrixTarget(matrixTarget);
GlMatrixHelper<(_Flags&Eigen::RowMajorBit)!=0, _Flags>::loadMatrix(mat);
}
inline void GpuHelper::pushMatrix(GLenum matrixTarget)
{
setMatrixTarget(matrixTarget);
glPushMatrix();
}
template<typename Scalar, int _Flags>
inline void GpuHelper::pushMatrix(const Matrix<Scalar,4,4, _Flags, 4,4>& mat, GLenum matrixTarget)
{
pushMatrix(matrixTarget);
GlMatrixHelper<_Flags&Eigen::RowMajorBit,_Flags>::loadMatrix(mat);
}
template<typename Scalar, typename Derived>
void GpuHelper::pushMatrix(
const Eigen::CwiseNullaryOp<Eigen::internal::scalar_identity_op<Scalar>,Derived>&,
GLenum matrixTarget)
{
pushMatrix(matrixTarget);
glLoadIdentity();
}
inline void GpuHelper::popMatrix(GLenum matrixTarget)
{
setMatrixTarget(matrixTarget);
glPopMatrix();
}
inline void GpuHelper::draw(GLenum mode, uint nofElement)
{
glDrawArrays(mode, 0, nofElement);
}
inline void GpuHelper::draw(GLenum mode, const std::vector<uint>* pIndexes)
{
glDrawElements(mode, pIndexes->size(), GL_UNSIGNED_INT, &(pIndexes->front()));
}
inline void GpuHelper::draw(GLenum mode, uint start, uint end)
{
glDrawArrays(mode, start, end-start);
}
#endif // EIGEN_GPUHELPER_H
|