A lightweight machine learning library inspired by PyTorch
Project description
Features
- Tensor Operations: Automatic differentiation for addition, multiplication, subtraction, division, and summation.
- Neural Network Layers: Linear, LeakyReLU, ReLU, Sigmoid, Tanh, Softmax, Dropout, BatchNorm1D, Sequential.
- Loss Functions: MSE, BCE, Cross Entropy.
- Optimizer: Adam with learning rate scheduling.
- Pipeline: Training pipeline with early stopping and metrics (accuracy, R², F1, MAE).
- Synthetic Datasets: Mixed, classification, quadratic, and nonlinear data generation.
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