Ikuti
Aakash Kaku
Aakash Kaku
Google, PhD @ NYU
Email yang diverifikasi di google.com - Beranda
Judul
Dikutip oleh
Dikutip oleh
Tahun
Gemini: a family of highly capable multimodal models
G Team, R Anil, S Borgeaud, JB Alayrac, J Yu, R Soricut, J Schalkwyk, ...
arXiv preprint arXiv:2312.11805, 2023
25562023
An artificial intelligence system for predicting the deterioration of COVID-19 patients in the emergency department
FE Shamout, Y Shen, N Wu, A Kaku, J Park, T Makino, S Jastrzębski, ...
NPJ digital medicine 4 (1), 80, 2021
1452021
Towards data-driven stroke rehabilitation via wearable sensors and deep learning
A Kaku, A Parnandi, A Venkatesan, N Pandit, H Schambra, ...
Machine Learning for Healthcare Conference, 143-171, 2020
392020
DARTS: DenseUnet-based automatic rapid tool for brain segmentation
A Kaku, CV Hegde, J Huang, S Chung, X Wang, M Young, A Radmanesh, ...
arXiv preprint arXiv:1911.05567, 2019
372019
Intermediate layers matter in momentum contrastive self supervised learning
A Kaku, S Upadhya, N Razavian
Advances in Neural Information Processing Systems 34, 24063-24074, 2021
292021
Deep probability estimation
S Liu, A Kaku, W Zhu, M Leibovich, S Mohan, B Yu, H Huang, L Zanna, ...
arXiv preprint arXiv:2111.10734, 2021
182021
Be like water: Robustness to extraneous variables via adaptive feature normalization
A Kaku, S Mohan, A Parnandi, H Schambra, C Fernandez-Granda
arXiv preprint arXiv:2002.04019, 2020
152020
PrimSeq: A deep learning-based pipeline to quantitate rehabilitation training
A Parnandi, A Kaku, A Venkatesan, N Pandit, A Wirtanen, H Rajamohan, ...
PLOS digital health 1 (6), e0000044, 2022
132022
Strokerehab: A benchmark dataset for sub-second action identification
A Kaku, K Liu, A Parnandi, HR Rajamohan, K Venkataramanan, ...
Advances in neural information processing systems 35, 1671-1684, 2022
92022
Data-driven quantitation of movement abnormality after stroke
A Parnandi, A Kaku, A Venkatesan, N Pandit, E Fokas, B Yu, G Kim, ...
Bioengineering 10 (6), 648, 2023
62023
Sequence-to-sequence modeling for action identification at high temporal resolution
A Kaku, K Liu, A Parnandi, HR Rajamohan, K Venkataramanan, ...
arXiv preprint arXiv:2111.02521, 2021
62021
An artificial intelligence system for predicting the deterioration of covid-19 patients in the emergency department. npj Digital Medicine, 4 (1): 80, May 2021
FE Shamout, Y Shen, N Wu, A Kaku, J Park, T Makino, S law Jastrzebski, ...
ISSN, 0
3
Knee Cartilage Segmentation Using Diffusion-Weighted MRI
A Duarte, CV Hegde, A Kaku, S Mohan, JG Raya
arXiv preprint arXiv:1912.01838, 2019
22019
Quantifying impairment and disease severity using AI models trained on healthy subjects
B Yu, A Kaku, K Liu, A Parnandi, E Fokas, A Venkatesan, N Pandit, ...
npj Digital Medicine 7 (1), 180, 2024
12024
Harnessing Data and Deep Learning for Stroke Rehabilitation
A Kaku
New York University, 2024
2024
An artificial intelligence system for predicting the deterioration of COVID-19 patients in the emergency
FE Shamout, Y Shen, N Wu, A Kaku, J Park, T Makino, S Jastrzebski, ...
arXiv preprint arXiv:2008.01774, 2020
2020
Knee Cartilage Segmentation Using Diffusion Weighted
A Duarte, CV Hegde, A Kaku, S Mohan
arXiv preprint arXiv:1912.01838, 0
Scheduling Cross Entropy and Dice Loss for Optimal Training of Segmentation Models
CV Hegde, AR Kaku, S Chung, X Wang, YW Lui, N Razavian
Towards quantitative rehabilitation of stroke patients via deep learning
A Kaku
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