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20182022
most citedAnalyzing Worldwide Social Distancing through Large-Scale Computer Vision

15 citations · 33 across the 7 of their papers we have counts for

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7 papers · 1 filter

cs.CV20222 cited

Restructurable Activation Networks

Kartikeya Bhardwaj, James Ward, Caleb Tung +6

Is it possible to restructure the non-linear activation functions in a deep network to create hardware-efficient models? To address this question, we propose a new paradigm called…

cs.CV2021

Efficient Computer Vision on Edge Devices with Pipeline-Parallel Hierarchical Neural Networks

Abhinav Goel, Caleb Tung, Xiao Hu +3

Computer vision on low-power edge devices enables applications including search-and-rescue and security. State-of-the-art computer vision algorithms, such as Deep Neural Networks (…

cs.CV20211 cited

Low-Power Multi-Camera Object Re-Identification using Hierarchical Neural Networks

Abhinav Goel, Caleb Tung, Xiao Hu +4

Low-power computer vision on embedded devices has many applications. This paper describes a low-power technique for the object re-identification (reID) problem: matching a query im…

cs.CV202015 cited

Analyzing Worldwide Social Distancing through Large-Scale Computer Vision

Isha Ghodgaonkar, Subhankar Chakraborty, Vishnu Banna +15

In order to contain the COVID-19 pandemic, countries around the world have introduced social distancing guidelines as public health interventions to reduce the spread of the diseas…

cs.CV20208 cited

Low-Power Object Counting with Hierarchical Neural Networks

Abhinav Goel, Caleb Tung, Sara Aghajanzadeh +4

Deep Neural Networks (DNNs) can achieve state-of-the-art accuracy in many computer vision tasks, such as object counting. Object counting takes two inputs: an image and an object q…

cs.CV2020

A Survey of Methods for Low-Power Deep Learning and Computer Vision

Abhinav Goel, Caleb Tung, Yung-Hsiang Lu +1

Deep neural networks (DNNs) are successful in many computer vision tasks. However, the most accurate DNNs require millions of parameters and operations, making them energy, computa…