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- #pragma once
- #include <Mathematics/GMatrix.h>
- #include <array>
- namespace WwiseGTE
- {
- template <typename Real>
- class IntpThinPlateSpline3
- {
- public:
-
-
- IntpThinPlateSpline3(int numPoints, Real const* X, Real const* Y,
- Real const* Z, Real const* F, Real smooth, bool transformToUnitCube)
- :
- mNumPoints(numPoints),
- mX(numPoints),
- mY(numPoints),
- mZ(numPoints),
- mSmooth(smooth),
- mA(numPoints),
- mInitialized(false)
- {
- LogAssert(numPoints >= 4 && X != nullptr && Y != nullptr
- && Z != nullptr && F != nullptr && smooth >= (Real)0, "Invalid input.");
- int i, row, col;
- if (transformToUnitCube)
- {
-
-
-
- auto extreme = std::minmax_element(X, X + mNumPoints);
- mXMin = *extreme.first;
- mXMax = *extreme.second;
- mXInvRange = (Real)1 / (mXMax - mXMin);
- for (i = 0; i < mNumPoints; ++i)
- {
- mX[i] = (X[i] - mXMin) * mXInvRange;
- }
- extreme = std::minmax_element(Y, Y + mNumPoints);
- mYMin = *extreme.first;
- mYMax = *extreme.second;
- mYInvRange = (Real)1 / (mYMax - mYMin);
- for (i = 0; i < mNumPoints; ++i)
- {
- mY[i] = (Y[i] - mYMin) * mYInvRange;
- }
- extreme = std::minmax_element(Z, Z + mNumPoints);
- mZMin = *extreme.first;
- mZMax = *extreme.second;
- mZInvRange = (Real)1 / (mZMax - mZMin);
- for (i = 0; i < mNumPoints; ++i)
- {
- mZ[i] = (Z[i] - mZMin) * mZInvRange;
- }
- }
- else
- {
-
-
-
- mXMin = (Real)0;
- mXMax = (Real)1;
- mXInvRange = (Real)1;
- mYMin = (Real)0;
- mYMax = (Real)1;
- mYInvRange = (Real)1;
- mZMin = (Real)0;
- mZMax = (Real)1;
- mZInvRange = (Real)1;
- std::copy(X, X + mNumPoints, mX.begin());
- std::copy(Y, Y + mNumPoints, mY.begin());
- std::copy(Z, Z + mNumPoints, mZ.begin());
- }
-
- GMatrix<Real> AMat(mNumPoints, mNumPoints);
- for (row = 0; row < mNumPoints; ++row)
- {
- for (col = 0; col < mNumPoints; ++col)
- {
- if (row == col)
- {
- AMat(row, col) = mSmooth;
- }
- else
- {
- Real dx = mX[row] - mX[col];
- Real dy = mY[row] - mY[col];
- Real dz = mZ[row] - mZ[col];
- Real t = std::sqrt(dx * dx + dy * dy + dz * dz);
- AMat(row, col) = Kernel(t);
- }
- }
- }
-
- GMatrix<Real> BMat(mNumPoints, 4);
- for (row = 0; row < mNumPoints; ++row)
- {
- BMat(row, 0) = (Real)1;
- BMat(row, 1) = mX[row];
- BMat(row, 2) = mY[row];
- BMat(row, 3) = mZ[row];
- }
-
- bool invertible;
- GMatrix<Real> invAMat = Inverse(AMat, &invertible);
- if (!invertible)
- {
- return;
- }
-
- GMatrix<Real> PMat = MultiplyATB(BMat, invAMat);
-
- GMatrix<Real> QMat = PMat * BMat;
-
- GMatrix<Real> invQMat = Inverse(QMat, &invertible);
- if (!invertible)
- {
- return;
- }
-
- std::array<Real, 4> prod;
- for (row = 0; row < 4; ++row)
- {
- prod[row] = (Real)0;
- for (i = 0; i < mNumPoints; ++i)
- {
- prod[row] += PMat(row, i) * F[i];
- }
- }
-
- for (row = 0; row < 4; ++row)
- {
- mB[row] = (Real)0;
- for (i = 0; i < 4; ++i)
- {
- mB[row] += invQMat(row, i) * prod[i];
- }
- }
-
- std::vector<Real> tmp(mNumPoints);
- for (row = 0; row < mNumPoints; ++row)
- {
- tmp[row] = F[row];
- for (i = 0; i < 4; ++i)
- {
- tmp[row] -= BMat(row, i) * mB[i];
- }
- }
-
- for (row = 0; row < mNumPoints; ++row)
- {
- mA[row] = (Real)0;
- for (i = 0; i < mNumPoints; ++i)
- {
- mA[row] += invAMat(row, i) * tmp[i];
- }
- }
- mInitialized = true;
- }
-
-
-
-
- inline bool IsInitialized() const
- {
- return mInitialized;
- }
-
-
- Real operator()(Real x, Real y, Real z) const
- {
- if (mInitialized)
- {
-
- x = (x - mXMin) * mXInvRange;
- y = (y - mYMin) * mYInvRange;
- z = (z - mZMin) * mZInvRange;
- Real result = mB[0] + mB[1] * x + mB[2] * y + mB[3] * z;
- for (int i = 0; i < mNumPoints; ++i)
- {
- Real dx = x - mX[i];
- Real dy = y - mY[i];
- Real dz = z - mZ[i];
- Real t = std::sqrt(dx * dx + dy * dy + dz * dz);
- result += mA[i] * Kernel(t);
- }
- return result;
- }
- return std::numeric_limits<Real>::max();
- }
-
-
-
- Real ComputeFunctional() const
- {
- Real functional = (Real)0;
- for (int row = 0; row < mNumPoints; ++row)
- {
- for (int col = 0; col < mNumPoints; ++col)
- {
- if (row == col)
- {
- functional += mSmooth * mA[row] * mA[col];
- }
- else
- {
- Real dx = mX[row] - mX[col];
- Real dy = mY[row] - mY[col];
- Real dz = mZ[row] - mZ[col];
- Real t = std::sqrt(dx * dx + dy * dy + dz * dz);
- functional += Kernel(t) * mA[row] * mA[col];
- }
- }
- }
- if (mSmooth > (Real)0)
- {
- functional *= mSmooth;
- }
- return functional;
- }
- private:
-
- static Real Kernel(Real t)
- {
- return -std::fabs(t);
- }
-
- int mNumPoints;
- std::vector<Real> mX;
- std::vector<Real> mY;
- std::vector<Real> mZ;
- Real mSmooth;
-
-
-
- std::vector<Real> mA;
- std::array<Real, 4> mB;
-
- Real mXMin, mXMax, mXInvRange;
- Real mYMin, mYMax, mYInvRange;
- Real mZMin, mZMax, mZInvRange;
- bool mInitialized;
- };
- }
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