scholarly journals An Energy-Efficient Fine-grained Deep Neural Network Partitioning Scheme for Wireless Collaborative Fog Computing

IEEE Access ◽  
2021 ◽  
pp. 1-1
Author(s):  
Emre Kilcioglu ◽  
Hamed Mirghasemi ◽  
Ivan Stupia ◽  
Luc Vandendorpe
2019 ◽  
Vol 2 (11) ◽  
pp. 232-235 ◽  
Author(s):  
Jinsu Lee ◽  
Juhyoung Lee ◽  
Donghyeon Han ◽  
Jinmook Lee ◽  
Gwangtae Park ◽  
...  

2020 ◽  
Vol 10 (4) ◽  
pp. 33
Author(s):  
Pramesh Pandey ◽  
Noel Daniel Gundi ◽  
Prabal Basu ◽  
Tahmoures Shabanian ◽  
Mitchell Craig Patrick ◽  
...  

AI evolution is accelerating and Deep Neural Network (DNN) inference accelerators are at the forefront of ad hoc architectures that are evolving to support the immense throughput required for AI computation. However, much more energy efficient design paradigms are inevitable to realize the complete potential of AI evolution and curtail energy consumption. The Near-Threshold Computing (NTC) design paradigm can serve as the best candidate for providing the required energy efficiency. However, NTC operation is plagued with ample performance and reliability concerns arising from the timing errors. In this paper, we dive deep into DNN architecture to uncover some unique challenges and opportunities for operation in the NTC paradigm. By performing rigorous simulations in TPU systolic array, we reveal the severity of timing errors and its impact on inference accuracy at NTC. We analyze various attributes—such as data–delay relationship, delay disparity within arithmetic units, utilization pattern, hardware homogeneity, workload characteristics—and uncover unique localized and global techniques to deal with the timing errors in NTC.


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