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Arijit Sehanobish
Arijit Sehanobish
Postdoctoral Associate, Yale School of Medicine
Verified email at yale.edu
Title
Cited by
Cited by
Year
Disease state prediction from single-cell data using graph attention networks
N Ravindra, A Sehanobish, JL Pappalardo, DA Hafler, D van Dijk
Proceedings of the ACM conference on health, inference, and learning, 121-130, 2020
422020
Using chinese glyphs for named entity recognition (student abstract)
CH Song, A Sehanobish
Proceedings of the AAAI Conference on Artificial Intelligence 34 (10), 13921 …, 2020
26*2020
From block-Toeplitz matrices to differential equations on graphs: towards a general theory for scalable masked Transformers
K Choromanski, H Lin, H Chen, T Zhang, A Sehanobish, V Likhosherstov, ...
39th International Conference on Machine Learning (ICML), 2022, 2022
182022
Hybrid Random Features
K Choromanski, H Chen, H Lin, Y Ma, A Sehanobish, D Jain, MS Ryoo, ...
Tenth International Conference on Learning Representations (ICLR), 2022
182022
Gaining Insight into Sars-Cov-2 Infection and Covid-19 Severity using Self-supervised Edge Features and Graph Neural Networks
A Sehanobish, NG Ravindra, D van Dijk
THIRTY-FIFTH AAAI CONFERENCE ON ARTIFICIAL INTELLIGENCE 35 (6), 4864-4873, 2021
162021
Learning Potentials of Quantum Systems using Deep Neural Networks
A Sehanobish, HH Corzo, O Kara, D van Dijk
Proceedings of the AAAI 2021 Spring Symposium on Combining Artificial …, 2021
112021
Patient factors associated with SARS‐CoV‐2 in an admitted emergency department population
AD Haimovich, F Warner, HP Young, NG Ravindra, A Sehanobish, ...
Journal of the American College of Emergency Physicians Open 1 (4), 569-577, 2020
112020
Proceedings of the 2019 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies, Volume 2 (Industry Papers)
A Loukina, M Morales, R Kumar
Proceedings of the 2019 Conference of the North American Chapter of the …, 2019
102019
Self-supervised edge features for improved graph neural network training
A Sehanobish, NG Ravindra, D van Dijk
arXiv preprint arXiv:2007.04777, 2020
52020
Explaining the Effectiveness of Multi-Task Learning for Efficient Knowledge Extraction from Spine MRI Reports
A Sehanobish, MC Sandora, N Abraham, J Pawar, D Torres, A Das, ...
Proceedings of the 2022 Conference of the North American Chapter of the …, 2022
3*2022
Learning Full Configuration Interaction Electron Correlations with Deep Learning
HH Corzo, A Sehanobish, O Kara
Fourth Workshop on Machine Learning and the Physical Sciences (NeurIPS 2021 …, 2021
32021
Fine-tuning Vision Transformers for the Prediction of State Variables in Ising Models
O Kara, A Sehanobish, HH Corzo
Fourth Workshop on Machine Learning and the Physical Sciences (NeurIPS 2021 …, 2021
22021
Efficient Graph Field Integrators Meet Point Clouds
K Choromanski, A Sehanobish, H Lin, Y Zhao, E Berger, T Parshakova, ...
40th International Conference on Machine Learning (ICML), 5978-6004, 2023
12023
Efficient extraction of pathologies from C-Spine radiology reports using multi-task learning
A Sehanobish, N Brown, I Daga, J Pawar, D Torres, A Das, M Becker, ...
Multimodal AI in healthcare: A paradigm shift in health intelligence, 335-346, 2022
12022
Proceedings of the 1st Conference of the Asia-Pacific Chapter of the Association for Computational Linguistics and the 10th International Joint Conference on Natural Language …
B Shmueli, YJ Huang
Proceedings of the 1st Conference of the Asia-Pacific Chapter of the …, 2020
12020
Meta-learning of pathologies from radiology reports using variance-aware prototypical networks
A Sehanobish, K Kannan, N Abraham, A Das, B Odry
US Patent App. 18/226,008, 2024
2024
Scalable Neural Network Kernels
A Sehanobish, K Choromanski, Y Zhao, A Dubey, V Likhosherstov
The Twelfth International Conference on Learning Representations (ICLR), 2024
2024
Multi-task adapters and task similarity for efficient extraction of pathologies from medical reports
A Sehanobish, A Das, B Odry
US Patent App. 17/992,212, 2023
2023
Proceedings of the 2022 Conference on Empirical Methods in Natural Language Processing: Industry Track
Y Li, A Lazaridou
Proceedings of the 2022 Conference on Empirical Methods in Natural Language …, 2022
2022
Meta-learning Pathologies from Radiology Reports using Variance Aware Prototypical Networks
A Sehanobish, K Kannan, N Abraham, A Das, B Odry
Proceedings of the 2022 Conference on Empirical Methods in Natural Language …, 2022
2022
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Articles 1–20