Alert button
Picture for Jan M. Rabaey

Jan M. Rabaey

Alert button

Computing with Hypervectors for Efficient Speaker Identification

Add code
Bookmark button
Alert button
Aug 28, 2022
Ping-Chen Huang, Denis Kleyko, Jan M. Rabaey, Bruno A. Olshausen, Pentti Kanerva

Figure 1 for Computing with Hypervectors for Efficient Speaker Identification
Figure 2 for Computing with Hypervectors for Efficient Speaker Identification
Figure 3 for Computing with Hypervectors for Efficient Speaker Identification
Figure 4 for Computing with Hypervectors for Efficient Speaker Identification
Viaarxiv icon

Generalized Key-Value Memory to Flexibly Adjust Redundancy in Memory-Augmented Networks

Add code
Bookmark button
Alert button
Mar 11, 2022
Denis Kleyko, Geethan Karunaratne, Jan M. Rabaey, Abu Sebastian, Abbas Rahimi

Figure 1 for Generalized Key-Value Memory to Flexibly Adjust Redundancy in Memory-Augmented Networks
Figure 2 for Generalized Key-Value Memory to Flexibly Adjust Redundancy in Memory-Augmented Networks
Figure 3 for Generalized Key-Value Memory to Flexibly Adjust Redundancy in Memory-Augmented Networks
Figure 4 for Generalized Key-Value Memory to Flexibly Adjust Redundancy in Memory-Augmented Networks
Viaarxiv icon

Generalized Learning Vector Quantization for Classification in Randomized Neural Networks and Hyperdimensional Computing

Add code
Bookmark button
Alert button
Jun 17, 2021
Cameron Diao, Denis Kleyko, Jan M. Rabaey, Bruno A. Olshausen

Figure 1 for Generalized Learning Vector Quantization for Classification in Randomized Neural Networks and Hyperdimensional Computing
Figure 2 for Generalized Learning Vector Quantization for Classification in Randomized Neural Networks and Hyperdimensional Computing
Figure 3 for Generalized Learning Vector Quantization for Classification in Randomized Neural Networks and Hyperdimensional Computing
Figure 4 for Generalized Learning Vector Quantization for Classification in Randomized Neural Networks and Hyperdimensional Computing
Viaarxiv icon

Vector Symbolic Architectures as a Computing Framework for Nanoscale Hardware

Add code
Bookmark button
Alert button
Jun 09, 2021
Denis Kleyko, Mike Davies, E. Paxon Frady, Pentti Kanerva, Spencer J. Kent, Bruno A. Olshausen, Evgeny Osipov, Jan M. Rabaey, Dmitri A. Rachkovskij, Abbas Rahimi, Friedrich T. Sommer

Figure 1 for Vector Symbolic Architectures as a Computing Framework for Nanoscale Hardware
Figure 2 for Vector Symbolic Architectures as a Computing Framework for Nanoscale Hardware
Figure 3 for Vector Symbolic Architectures as a Computing Framework for Nanoscale Hardware
Figure 4 for Vector Symbolic Architectures as a Computing Framework for Nanoscale Hardware
Viaarxiv icon

Efficient emotion recognition using hyperdimensional computing with combinatorial channel encoding and cellular automata

Add code
Bookmark button
Alert button
Apr 06, 2021
Alisha Menon, Anirudh Natarajan, Reva Agashe, Daniel Sun, Melvin Aristio, Harrison Liew, Yakun Sophia Shao, Jan M. Rabaey

Figure 1 for Efficient emotion recognition using hyperdimensional computing with combinatorial channel encoding and cellular automata
Figure 2 for Efficient emotion recognition using hyperdimensional computing with combinatorial channel encoding and cellular automata
Figure 3 for Efficient emotion recognition using hyperdimensional computing with combinatorial channel encoding and cellular automata
Figure 4 for Efficient emotion recognition using hyperdimensional computing with combinatorial channel encoding and cellular automata
Viaarxiv icon

Adaptive EMG-based hand gesture recognition using hyperdimensional computing

Add code
Bookmark button
Alert button
Jan 02, 2019
Ali Moin, Andy Zhou, Simone Benatti, Abbas Rahimi, George Alexandrov, Alisha Menon, Senam Tamakloe, Jonathan Ting, Natasha Yamamoto, Yasser Khan, Fred Burghardt, Ana C. Arias, Luca Benini, Jan M. Rabaey

Figure 1 for Adaptive EMG-based hand gesture recognition using hyperdimensional computing
Figure 2 for Adaptive EMG-based hand gesture recognition using hyperdimensional computing
Figure 3 for Adaptive EMG-based hand gesture recognition using hyperdimensional computing
Figure 4 for Adaptive EMG-based hand gesture recognition using hyperdimensional computing
Viaarxiv icon

Hyperdimensional Computing Nanosystem

Add code
Bookmark button
Alert button
Nov 23, 2018
Abbas Rahimi, Tony F. Wu, Haitong Li, Jan M. Rabaey, H. -S. Philip Wong, Max M. Shulaker, Subhasish Mitra

Figure 1 for Hyperdimensional Computing Nanosystem
Figure 2 for Hyperdimensional Computing Nanosystem
Figure 3 for Hyperdimensional Computing Nanosystem
Figure 4 for Hyperdimensional Computing Nanosystem
Viaarxiv icon

An EMG Gesture Recognition System with Flexible High-Density Sensors and Brain-Inspired High-Dimensional Classifier

Add code
Bookmark button
Alert button
Apr 05, 2018
Ali Moin, Andy Zhou, Abbas Rahimi, Simone Benatti, Alisha Menon, Senam Tamakloe, Jonathan Ting, Natasha Yamamoto, Yasser Khan, Fred Burghardt, Luca Benini, Ana C. Arias, Jan M. Rabaey

Figure 1 for An EMG Gesture Recognition System with Flexible High-Density Sensors and Brain-Inspired High-Dimensional Classifier
Figure 2 for An EMG Gesture Recognition System with Flexible High-Density Sensors and Brain-Inspired High-Dimensional Classifier
Figure 3 for An EMG Gesture Recognition System with Flexible High-Density Sensors and Brain-Inspired High-Dimensional Classifier
Figure 4 for An EMG Gesture Recognition System with Flexible High-Density Sensors and Brain-Inspired High-Dimensional Classifier
Viaarxiv icon