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Linear Regression

OptiVec for Delphi 2006/2007 5.2.4

OptiVec for Delphi 2006/2007 5.2.4: OptiVec: Fast vector and matrix library for Delphi 2006/2007 linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical






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OptiVec for Delphi 2006 5.2

linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical

function, math, linear systems, library, matrix, programming, curve fitting, vector, inversion





OptiVec for Delphi 2005 5.2.4: OptiVec: Fast vector and matrix library for Delphi 2005
OptiVec for Delphi 2005 5.2.4

linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical

function, math, linear systems, library, matrix, programming, curve fitting, vector, inversion



OptiVec for Delphi 7 5.2.4: OptiVec: Fast vector and matrix library for Delphi 7
OptiVec for Delphi 7 5.2.4

linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical

function, math, linear systems, library, matrix, programming, curve fitting, vector, inversion



OptiVec for Delphi 6 5.2.4: OptiVec: Fast vector and matrix library for Delphi 6
OptiVec for Delphi 6 5.2.4

linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical

function, math, linear systems, library, matrix, programming, curve fitting, vector, inversion



OptiVec for Delphi 5 5.2.4: OptiVec: Fast vector and matrix library for Delphi 5
OptiVec for Delphi 5 5.2.4

linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical

function, math, linear systems, library, matrix, programming, curve fitting, vector, inversion



OptiVec for Delphi 4 5.2.4: OptiVec: Fast vector and matrix library for Delphi 4
OptiVec for Delphi 4 5.2.4

linear regression to non-linear models with multiple data sets. 5. Statistics. 6. Analysis (derivatives, integrals, extrema, interpolation). 7. Graphical representation of data in Cartesian coordinates. 8. Complex number math, both in cartesian and polar format. The vectorized implementation in Assembler makes OptiVec functions, on the average, 2-3 times faster than compiled source code of the same functionality. In many instances, the numerical

function, math, linear systems, library, matrix, programming, curve fitting, vector, inversion


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