CSR: Small: Evolution of Computer Vision for Low Power Devices, Breaking its Power Wall and Computational Complexity
CSR: Small: Evolution of Computer Vision for Low Power Devices, Breaking its Power Wall and Computational Complexity
批准号:
2146726
负责人:
Avesta Sasan
金额:
$49.98万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2021
资助国家:
美国
项目状态:
已结题
起止时间:
2021-07-01 至 2022-09-30
中文摘要
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英文摘要
The accuracy of computer vision for object recognition and classification has surpassed human capabilities. Adoption of brain-inspired Convolutional Neural Network (CNN) models and the ability to train and execute these complex networks by modern graphical processing units (GPUs) are the backbone of this progress. However, in terms of computational requirement, memory usage, and power consumption, the CNN solutions are extremely demanding. Meanwhile, many interesting applications of computer vision - such as small robotics, a wide range of Cyber-Physical Systems, and many smart devices on the Internet of Things - are resource constrained. This project aims to substantially lower the computational complexity, the average-case classification power and the latency of CNN-based vision, enabling its deployment to a much wider range of platforms. From a societal viewpoint, this study enhances the research, education, and diversity at George Mason University (GMU) by involving graduate, undergraduate, minority and female students, and enriches several courses that are offered at GMU.The goals of this research project are as follows: (1) Reformulating the CNN-based learning model into an Iterative Convolutional Neural Network (ICNN) learning model that allows early classification and permits early termination via various thresholding mechanisms and developing a framework to use the contextual knowledge that could be extracted from earlier iterations to guide and reduce the computation of future iterations. (2) Developing an approximate ICNN coprocessor that supports approximation in memory and logic by exploring new approximation opportunities created by ICNN, and enhancing the ICNN to adjust and learn the approximate hardware behavior in addition to its intended functionality.
期刊论文(10)
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DOI:
10.23919/date.2018.8342068
发表时间:
2018-03
期刊:
2018 Design, Automation & Test in Europe Conference & Exhibition (DATE)
影响因子:
--
作者:
[Katayoun Neshatpour;F. Behnia;H. Homayoun;Avesta Sasan]
通讯作者:
Katayoun Neshatpour;F. Behnia;H. Homayoun;Avesta Sasan
DOI:
10.1109/isqed.2019.8697497
发表时间:
2019-03
期刊:
20th International Symposium on Quality Electronic Design (ISQED)
影响因子:
--
作者:
[Katayoun Neshatpour;F. Behnia;H. Homayoun;Avesta Sasan]
通讯作者:
Katayoun Neshatpour;F. Behnia;H. Homayoun;Avesta Sasan
DOI:
10.1109/isqed48828.2020.9136987
发表时间:
2020-01
期刊:
2020 21st International Symposium on Quality Electronic Design (ISQED)
影响因子:
--
作者:
[F. Behnia;Ali Mirzaeian;M. Sabokrou;S. Manoj;T. Mohsenin;Khaled N. Khasawneh;Liang Zhao;H. Homayoun;Avesta Sasan]
通讯作者:
F. Behnia;Ali Mirzaeian;M. Sabokrou;S. Manoj;T. Mohsenin;Khaled N. Khasawneh;Liang Zhao;H. Homayoun;Avesta Sasan
DOI:
10.1145/3355553
发表时间:
2020-01-01
期刊:
ACM TRANSACTIONS ON EMBEDDED COMPUTING SYSTEMS
影响因子:
2
作者:
[Neshatpour, Katayoun, Homayoun, Houman, Sasan, Avesta]
通讯作者:
Sasan, Avesta
DOI:
10.1109/reconfig48160.2019.8994751
发表时间:
2019-10
期刊:
2019 International Conference on ReConFigurable Computing and FPGAs (ReConFig)
影响因子:
--
作者:
[Ali Mirzaeian;H. Homayoun;Avesta Sasan]
通讯作者:
Ali Mirzaeian;H. Homayoun;Avesta Sasan
共 9 条
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CSR: Small: Evolution of Computer Vision for Low Power Devices, Breaking its Power Wall and Computational Complexity
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批准号:1718538
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项目类别:Standard Grant
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资助金额:$49.98万
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财政年份:2017
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负责人:Avesta Sasan
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依托单位:
国内基金
海外基金
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