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TAM 1.2.5 documentation
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TAM 1.2.5 documentation

πŸš€ Getting Started

  • TAM (Time series Additive Model)
  • πŸ“š Theory Introduction of TAM and Cheatsheet

🧠 Theory: The Core Engine

  • The Exact Primal Resolution
  • The Theory of N-Dim Broadcasting and Normalization
  • Linear Algebra: Direct vs. Iterative Solvers
  • Computational Complexity (\(\mathcal{O}(D^3+T D^2)\) vs \(\mathcal{O}(T^3)\))
  • Hyperparameter Optimization: Generalized Cross-Validation (GCV)

🌈 Theory: The Spectrum Library

  • The Linear Effect (Ridge Regression)
  • The Spline Effect (P-Splines)
  • The Fourier Effect (Sobolev Spectral Basis)
  • The Wavelet Effect (Ricker)
  • The Chebyshev Effect (Polynomial Minimax Basis)
  • The Tree Effect (Random Forests & Binning Features)
  • The Neural Effect (NEPT)
  • The Radial Basis Function (RBF) Effect
  • The Categorical Effect (Discrete Topologies)
  • The Tensor Product Effect (Interactions)
  • Physics-Informed Kernel Learning (PIKL)
  • The PID Effect (Autoregressive Control Dynamics)
  • The Linear Tree Effect (Varying-Coefficient Models)

βš™οΈ Theory: Meta-Learners & Inference

  • Adaptive Online Learning (AdaptiveTAM)
  • Dynamic Tracking via Extended Kalman Filtering [BETA]
  • Hierarchical Joint Optimization [BETA]
  • Uncertainty Quantification via Conformal Prediction [EXP]
  • Online Prediction by Expert Aggregation (OPERA)
  • Deep-GAM Hybridization and Orthogonal Backfitting [EXP]
  • Statistical Inference and Diagnostics (Glass-Box) [EXP]
  • Evolutionary Orchestration and Multi-Fidelity AutoML
  • AutoTAM Data Topology and Structural Safeguards [EXP]
  • Empirical Evaluation and MLOps Diagnostics

πŸ’» Architecture: Core Implementation

  • The Additive API and Object-Oriented Architecture
  • The Engineering of Normalization and Padding
  • PyTorch Math Dispatcher & Matrix-Free Solvers
  • Hardware Memory Dispatch & Anti-OOM Systems
  • Auto-ML via Generalized Cross-Validation (GCV)
  • The Spectral Dictionary: PyTorch Implementations & Factory Assembly

πŸ› οΈ Architecture: Advanced Orchestration

  • Online Error Correction (AdaptiveTAM)
  • Kalman TorchScript Optimizations & Block Updates [BETA]
  • Hierarchical Engineering & Memory Assembly [BETA]
  • Diagnostics, Visualization & Utilities Engineering [EXP]
  • OPERA GPU Tensor Batching
  • DeepGAM Engineering & Sequential Encapsulation [EXP]
  • Diagnostics, Visualization & Utilities Engineering [EXP]
  • Orchestrator Pipeline and Evolutionary Hub-and-Spoke Engine [EXP]
  • AutoTAM Data Topology: Stateful Architecture & Pandas Vectorization [EXP]
  • MLOps Tracking and Empirical Benchmarking (Engineering)

πŸ§ͺ Gallery of Examples & Use Cases

  • πŸ§ͺ Gallery of Examples & Use Cases

πŸ“š References & Changelog

  • πŸ‘₯ Authors and Contributions
  • πŸ”¬ Scientific Background & Acknowledgments
  • Changelog
  • 🀝 Contributing to Time series Additive Model (TAM)
  • πŸ“˜ Documentation Generation Guide (TAM)
  • References
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