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cs.LG2026

From Arithmetic to Logic: The Resilience of Logic and Lookup-Based Neural Networks Under Parameter Bit-Flips

Alan T. L. Bacellar, Sathvik Chemudupati, Shashank Nag +4

The deployment of deep neural networks (DNNs) in safety-critical edge environments necessitates robustness against hardware-induced bit-flip errors. While empirical studies indicat…

cs.LG2026

Pitfalls of Unlabeled Disagreement-Based Drift Detection in Streaming Tree Ensembles

Lara Sá Neves, Afonso Lourenço, Lizy K. John +1

Detecting concept drift in high-speed data streams remains challenging, particularly when models must operate on unlabeled data and avoid false alarms caused by benign shifts. Whil…

cs.LG2025

LL-ViT: Edge Deployable Vision Transformers with Look Up Table Neurons

Shashank Nag, Alan T. L. Bacellar, Zachary Susskind +9

Vision Transformers have been tremendously successful in computer vision tasks. However, their large computational, memory, and energy demands are a challenge for edge inference on…

cs.LG2025

Differentiable Weightless Neural Networks

Alan T. L. Bacellar, Zachary Susskind, Mauricio Breternitz +4

We introduce the Differentiable Weightless Neural Network (DWN), a model based on interconnected lookup tables. Training of DWNs is enabled by a novel Extended Finite Difference te…

cs.LG2025

nanoML for Human Activity Recognition

Alan T. L. Bacellar, Mugdha P. Jadhao, Shashank Nag +3

Human Activity Recognition (HAR) is critical for applications in healthcare, fitness, and IoT, but deploying accurate models on resource-constrained devices remains challenging due…

cs.LG2024

Shrinking the Giant : Quasi-Weightless Transformers for Low Energy Inference

Shashank Nag, Alan T. L. Bacellar, Zachary Susskind +9

Transformers are set to become ubiquitous with applications ranging from chatbots and educational assistants to visual recognition and remote sensing. However, their increasing com…