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A Python library for Hyperdimensional Computing

Project description

PyHDC

PyPI version Tests Coverage License: MIT Python

A Python library for Hyperdimensional Computing (HDC) and Vector Symbolic Architectures (VSA).

Full documentation: https://pyhdc.readthedocs.io/en/latest/


Overview

PyHDC provides a unified interface for working with high-dimensional binary and continuous vectors used in HDC/VSA-based computing. It supports multiple encoding schemes, pluggable pseudorandom generators, and both NumPy and PyTorch backends.

Installation

pip install PyHDC

Quick Start

import pyhdc as hdc

# Create an encoding
enc = hdc.MAP_C(dimension=10_000)

# Generate hypervectors
v1 = enc.generate()
v2 = enc.generate()

# Core operations
bundled = v1.bundle(v2)        # superposition
bound   = v1.bind(v2)          # association
sim     = v1.similarity(v2)    # similarity score

Features

  • 14 encoding schemes: MAP-C, MAP-I, MAP-I Bits, MAP-B, HRR, HRR (no norm), HRR (const norm), FHRR, VTB, MBAT, BSC, BSDC-CDT, BSDC-S, BSDC-SEG
  • 7 generator families: LCG, Fibonacci/Galois LFSR, DLFSR, LCA, PCG, Xorshift, Shifted Counter
  • NumPy and PyTorch backends with optional GPU support
  • Composable operations: bind, bundle, unbind, similarity, thinning
  • Custom encodings: extend Encoding with your own EncodingSpec
  • Type-annotated throughout

License

MIT LICENSE.

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