Search Results for author: Shayan Hassantabar

Found 5 papers, 0 papers with code

MHDeep: Mental Health Disorder Detection System based on Body-Area and Deep Neural Networks

no code implementations20 Feb 2021 Shayan Hassantabar, Joe Zhang, Hongxu Yin, Niraj K. Jha

At the patient level, MHDeep DNNs achieve an accuracy of 100%, 100%, and 90. 0% for the three mental health disorders, respectively.

Synthetic Data Generation

STEERAGE: Synthesis of Neural Networks Using Architecture Search and Grow-and-Prune Methods

no code implementations12 Dec 2019 Shayan Hassantabar, Xiaoliang Dai, Niraj K. Jha

On MNIST dataset, our CNN architecture achieves an error rate of 0. 66%, with 8. 6x fewer parameters compared to the LeNet-5 baseline.

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SCANN: Synthesis of Compact and Accurate Neural Networks

no code implementations19 Apr 2019 Shayan Hassantabar, Zeyu Wang, Niraj K. Jha

To address these challenges, we propose a two-step neural network synthesis methodology, called DR+SCANN, that combines two complementary approaches to design compact and accurate DNNs.

Dimensionality Reduction Neural Network Compression +1

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