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Thi Kieu Khanh Ho
Thi Kieu Khanh Ho
在 mcgill.ca 的电子邮件经过验证
标题
引用次数
引用次数
年份
Multiple feature integration for classification of thoracic disease in chest radiography
TKK Ho, J Gwak
Applied Sciences 9 (19), 4130, 2019
972019
Discrimination of mental workload levels from multi-channel fNIRS using deep leaning-based approaches
TKK Ho, J Gwak, CM Park, JI Song
IEEE Access 7, 24392-24403, 2019
562019
Utilizing knowledge distillation in deep learning for classification of chest X-ray abnormalities
TKK Ho, J Gwak
IEEE Access 8, 160749-160761, 2020
542020
Utilizing pretrained deep learning models for automated pulmonary tuberculosis detection using chest radiography
TKK Ho, J Gwak, O Prakash, JI Song, CM Park
Intelligent Information and Database Systems: 11th Asian Conference, ACIIDS …, 2019
512019
Self-supervised anomaly detection in computer vision and beyond: A survey and outlook
H Hojjati, TKK Ho, N Armanfard
Neural Networks, 106106, 2024
37*2024
Deep leaning-based approach for mental workload discrimination from multi-channel fNIRS
TKK Ho, J Gwak, CM Park, A Khare, JI Song
Recent Trends in Communication, Computing, and Electronics: Select …, 2019
222019
Self-supervised learning for anomalous channel detection in eeg graphs: Application to seizure analysis
TKK Ho, N Armanfard
Proceedings of the AAAI conference on artificial intelligence 37 (7), 7866-7874, 2023
212023
Deep learning-based multilevel classification of Alzheimer’s disease using non-invasive functional near-infrared spectroscopy
TKK Ho, M Kim, Y Jeon, BC Kim, JG Kim, KH Lee, JI Song, J Gwak
Frontiers in aging neuroscience 14, 810125, 2022
152022
Graph-based time-series anomaly detection: A survey and Outlook
TKK Ho, A Karami, N Armanfard
arXiv preprint arXiv:2302.00058, 2023
112023
Feature-level ensemble approach for COVID-19 detection using chest X-ray images
TKK Ho, J Gwak
Plos one 17 (7), e0268430, 2022
102022
DeepADNet: A CNN‐LSTM model for the multi‐class classification of Alzheimer’s disease using multichannel EEG
TKK Ho, YH Jeon, E Na, Z Ullah, BC Kim, KH Lee, JI Song, J Gwak
Alzheimer's & Dementia 17, e057573, 2021
92021
Toward deep learning approaches for learning structure motifs and classifying biological sequences from RNA A-to-I editing events
TKK Ho, J Gwak
IEEE Access 7, 127464-127474, 2019
52019
Multivariate time-series anomaly detection with contaminated data
TKK Ho, N Armanfard
arXiv preprint arXiv:2308.12563, 2023
22023
Improving the multi‐class classification of Alzheimer’s disease with machine learning‐based techniques: An EEG‐fNIRS hybridization study
TKK Ho, M Kim, YH Jeon, E Na, Z Ullah, BC Kim, KH Lee, JI Song, JG Kim, ...
Alzheimer's & Dementia 17, e057565, 2021
22021
Using artificial intelligence methods for dental image analysis: state-of-the-art reviews
J Ahn, TKK Ho, J Kang, J Gwak
Journal of Medical Imaging and Health Informatics 10 (11), 2532-2542, 2020
22020
Noise removal of functional Near Infrared Spectroscopy signals using Emperical Mode Decomposition and Independent Component Analysis
PTK Chi, VN Tuan, NH Thuong, HTK Khanh, H Yu, ND Thang
6th International Conference on the Development of Biomedical Engineering in …, 2018
22018
Graph-Jigsaw Conditioned Diffusion Model for Skeleton-based Video Anomaly Detection
A Karami, TKK Ho, N Armanfard
arXiv preprint arXiv:2403.12172, 2024
12024
Open-Set Multivariate Time-Series Anomaly Detection
T Lai, TKK Ho, N Armanfard
arXiv preprint arXiv:2310.12294, 2023
12023
An EEG-fNIRS Hybridization Technique in the Multi-class Classification of Alzheimer's Disease Facilitated by Machine Learning
TKK Ho, I Kim, Y Jeon, JI Song, J Gwak
한국컴퓨터정보학회 학술발표논문집 29 (2), 305-307, 2021
12021
Human Organ Classifications from Computed Tomography Images Using Deep-Convolutional Neural Network
HTK Khanh, TC Hung, VH Dang, ND Thang
6th International Conference on the Development of Biomedical Engineering in …, 2018
12018
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