Torch modules and utilities of equivariant/invariant learning
Project description
Symmetric Learning
Lightweight python package for doing geometric deep learning using ESCNN. This package simply holds:
- Generic equivariant torch models and modules that are not present in ESCNN.
- Linear algebra utilities when working with symmetric vector spaces.
- Statistics utilities for symmetric random variables.
Installation
pip install symm-learning
# or
git clone https://github.com/Danfoa/symmetric_learning
cd symmetric_learning
pip install -e .
Structure:
Linear Algebra
- lstsq: Symmetry-aware computation of the least-squares solution to a linear system of equations with symmetric input-output data.
- invariant_orthogonal_projector: Computes the orthogonal projection to the invariant subspace of a symmetric vector space.
Statistics
- var_mean: Symmetry-aware computation of the variance and mean of a symmetric random variable.
- cov: Symmetry-aware computation of the covariance / cross-covariance of two symmetric random variables.
Models
- iMLP: Invariant MLP for learning invariant functions.
- eMLP: Equivariant MLP for learning equivariant functions.
Torch Modules
- Change2DisentangledBasis: Module for changing the basis of a tensor to a disentangled / isotypic basis.
- IrrepSubspaceNormPooling: Module for extracting invariant features from a geometric tensor, giving one feature per irreducible subspace/representation.
Project details
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