Projekt
THDC: Training Hyperdimensional Computing Models with Backpropagation
Hyperdimensional computing (HDC) offers lightweight learning for energy-constrained devices by encoding data into high-dimensional vectors.However, its reliance on ultra-high dimensionality and static, randomly initialized hypervectors limits memory efficiency and learning capacity.Therefore, we propose Trainable Hype…
Hyperdimensional computing (HDC) offers lightweight learning for energy-constrained devices by encoding data into high-dimensional vectors.However, its reliance on ultra-high dimensionality and static, randomly initialized hypervectors limits memory efficiency and learning capacity.Therefore, we propose Trainable Hyperdimensional Computing (THDC), which enables end-to-end HDC via backpropagation.THDC replaces randomly initialized vectors with trainable embeddings and introduces a one-layer binary neural network to optimize class representations.Evaluated on MNIST, Fashion-MNIST and CIFAR-10, THDC achieves equal or better accuracy than state-of-the-art HDC, with dimensionality reduced from 10.000 to 64.
Technologien
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Hochschulen
- HOGENT University of Applied Sciences and Arts HOGENT University of Applied Sciences and Arts – Hochschule bzw. Forschungseinrichtung mit Aktivitäten in For…
- Ghent University Ghent University – Hochschule bzw. Forschungseinrichtung mit Aktivitäten in Forschung und Innovation.