Python‐based scikit‐learn machine learning models for thermal and electrical performance prediction of high‐capacity lithium‐ion battery

Author(s):  
Manh‐Kien Tran ◽  
Satyam Panchal ◽  
Vedang Chauhan ◽  
Niku Brahmbhatt ◽  
Anosh Mevawalla ◽  
...  
Author(s):  
Weihan Li ◽  
Damas W. Limoge ◽  
Jiawei Zhang ◽  
Dirk Uwe Sauer ◽  
Anuradha M. Annaswamy

2021 ◽  
Vol 2021 (1) ◽  
pp. 188-208
Author(s):  
Sameer Wagh ◽  
Shruti Tople ◽  
Fabrice Benhamouda ◽  
Eyal Kushilevitz ◽  
Prateek Mittal ◽  
...  

AbstractWe propose Falcon, an end-to-end 3-party protocol for efficient private training and inference of large machine learning models. Falcon presents four main advantages – (i) It is highly expressive with support for high capacity networks such as VGG16 (ii) it supports batch normalization which is important for training complex networks such as AlexNet (iii) Falcon guarantees security with abort against malicious adversaries, assuming an honest majority (iv) Lastly, Falcon presents new theoretical insights for protocol design that make it highly efficient and allow it to outperform existing secure deep learning solutions. Compared to prior art for private inference, we are about 8× faster than SecureNN (PETS’19) on average and comparable to ABY3 (CCS’18). We are about 16 − 200× more communication efficient than either of these. For private training, we are about 6× faster than SecureNN, 4.4× faster than ABY3 and about 2−60× more communication efficient. Our experiments in the WAN setting show that over large networks and datasets, compute operations dominate the overall latency of MPC, as opposed to the communication.


IEEE Access ◽  
2020 ◽  
Vol 8 ◽  
pp. 116321-116335
Author(s):  
Musa Oytun ◽  
Cevdet Tinazci ◽  
Boran Sekeroglu ◽  
Caner Acikada ◽  
Hasan Ulas Yavuz

2020 ◽  
Vol 2 (1) ◽  
pp. 3-6
Author(s):  
Eric Holloway

Imagination Sampling is the usage of a person as an oracle for generating or improving machine learning models. Previous work demonstrated a general system for using Imagination Sampling for obtaining multibox models. Here, the possibility of importing such models as the starting point for further automatic enhancement is explored.


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