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Nandan Kumar Jha
Nandan Kumar Jha
Overená e-mailová adresa na: nyu.edu - Domovská stránka
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Citované v
Citované v
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Ulsam: Ultra-lightweight subspace attention module for compact convolutional neural networks
R Saini*, NK Jha*, B Das, S Mittal, CKC Mohan
Proceedings of the IEEE/CVF Winter Conference on Applications of Computer …, 2020
117*2020
DeepReDuce: ReLU Reduction for Fast Private Inference
NK Jha, Z Ghodsi, S Garg, B Reagen
🏆 38th International Conference on Machine Learning (ICML, Spotlight), 2021 …, 2021
1032021
Circa: Stochastic ReLUs for Private Deep Learning
Z Ghodsi, NK Jha, B Reagen, S Garg
35th Conference on Neural Information Processing Systems (NeurIPS 2021) 34, 2021
412021
Sisyphus: A cautionary tale of using low-degree polynomial activations in privacy-preserving deep learning
K Garimella, NK Jha, B Reagen
Privacy Preserving Machine Learning Workshop (PPML@ACM CCS), 2021, 2021
282021
Characterizing and optimizing end-to-end systems for private inference
K Garimella, Z Ghodsi, NK Jha, S Garg, B Reagen
Proceedings of the 28th ACM International Conference on Architectural …, 2023
252023
Modeling data reuse in deep neural networks by taking data-types into cognizance
NK Jha, S Mittal
IEEE Transactions on Computers 70 (9), 2020
212020
The ramifications of making deep neural networks compact
NK Jha, S Mittal, G Mattela
2019 32nd International Conference on VLSI Design and 2019 18th …, 2019
182019
Deeppeep: Exploiting design ramifications to decipher the architecture of compact dnns
NK Jha, S Mittal, B Kumar, G Mattela
ACM Journal on Emerging Technologies in Computing Systems (JETC) 17 (1), 1-25, 2020
17*2020
DRACO: Co-optimizing hardware utilization, and performance of DNNs on systolic accelerator
NK Jha, S Ravishankar, S Mittal, A Kaushik, D Mandal, M Chandra
2020 IEEE Computer Society Annual Symposium on VLSI (ISVLSI), 574-579, 2020
132020
E2GC: Energy-efficient group convolution in deep neural networks
NK Jha*, R Saini*, S Nag, SC Mittal
2020 33rd International Conference on VLSI Design and 2020 19th …, 2020
122020
DeepReShape: Redesigning neural networks for efficient private inference
NK Jha, B Reagen
Transactions on Machine Learning Research (TMLR), 2024, 2024
92024
On the demystification of knowledge distillation: A residual network perspective
NK Jha*, R Saini*, SC Mittal
arXiv preprint arXiv:2006.16589, 2020
52020
Cryptonite: Revealing the pitfalls of end-to-end private inference at scale
K Garimella, NK Jha, Z Ghodsi, S Garg, B Reagen
arXiv preprint arXiv:2111.02583, 2021
42021
Data-type aware arithmetic intensity for deep neural networks
NK Jha, S Mittal, S Avancha
37th IEEE International Conference on Computer Design (ICCD'19), 1-2, 2019
42019
Hardware-Aware Co-Optimization of Deep Convolutional Neural Networks
NK Jha
Indian Institute of Technology Hyderabad, 2020
22020
Entropy-Guided Attention for Private LLMs
NK Jha, B Reagen
The 6th AAAI Workshop on Privacy-Preserving Artificial Intelligence (PPAI), 2025, 2025
2025
TruncFormer: Private LLM Inference Using Only Truncations
P Yubeaton, JC Mo, K Garimella, NK Jha, B Reagen, C Hegde, S Garg
arXiv preprint arXiv:2412.01042, 2024
2024
AERO: Softmax-Only LLMs for Efficient Private Inference
NK Jha, B Reagen
arXiv preprint arXiv:2410.13060, 2024
2024
ReLU's Revival: On the Entropic Overload in Normalization-Free Large Language Models
NK Jha, B Reagen
2nd Workshop on Attributing Model Behavior at Scale (NeurIPS 2024), 2024
2024
ICCD 2019 Poster Session List
M Li, H Lin, Q Jiang, H An, CT Do, CH Kim, SW Chung, K Oh, J Park, ...
Systém momentálne nemôže vykonať operáciu. Skúste to neskôr.
Články 1–20