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Tanmoy Dam
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Year
Mixture of spectral generative adversarial networks for imbalanced hyperspectral image classification
T Dam, SG Anavatti, HA Abbass
IEEE Geoscience and Remote Sensing Letters 19, 1-5, 2020
152020
A clustering algorithm based TS fuzzy model for tracking dynamical system data
T Dam, AK Deb
Journal of the Franklin Institute 354 (13), 5617-5645, 2017
122017
Improving ClusterGAN Using Self-Augmented Information Maximization of Disentangling Latent Spaces
T Dam, SG Anavatti, HA Abbass
https://arxiv.org/abs/2107.12706, 0
12*
Block sparse representations in modified fuzzy c-regression model clustering algorithm for ts fuzzy model identification
T Dam, A Deb
2015 IEEE Symposium Series on Computational Intelligence, 1687-1694, 2015
112015
Interval type-2 modified fuzzy c-regression model clustering algorithm in ts fuzzy model identification
T Dam, AK Deb
2016 IEEE International Conference on Fuzzy Systems (FUZZ-IEEE), 1671-1676, 2016
82016
Latent preserving generative adversarial network for imbalance classification
T Dam, MM Ferdaus, M Pratama, SG Anavatti, S Jayavelu, H Abbass
2022 IEEE International Conference on Image Processing (ICIP), 3712-3716, 2022
72022
Does adversarial oversampling help us?
T Dam, MM Ferdaus, SG Anavatti, S Jayavelu, HA Abbass
Proceedings of the 30th ACM International Conference on Information …, 2021
72021
TS fuzzy model identification by a novel objective function based fuzzy clustering algorithm
T Dam, AK Deb
2014 IEEE Symposium on Computational Intelligence in Ensemble Learning (CIEL …, 2014
62014
D-FJ: Deep neural network based factuality judgment
A Mullick, S Pal, P Chanda, A Panigrahy, A Bharadwaj, S Singh, T Dam
Technology 50, 173, 2019
52019
WATT-EffNet: A Lightweight and Accurate Model for Classifying Aerial Disaster Images
GY Lee, T Dam, MM Ferdaus, DP Poenar, VN Duong
IEEE Geoscience and Remote Sensing Letters, 2023
42023
Rainfall-runoff prediction using a Gustafson-Kessel clustering based Takagi-Sugeno Fuzzy model
S Dey, T Dam
2021 IEEE Symposium Series on Computational Intelligence (SSCI), 1-8, 2021
42021
Interval type-2 recursive fuzzy C-means clustering algorithm in the TS fuzzy model identification
T Dam, AK Deb
2015 IEEE Symposium Series on Computational Intelligence, 22-29, 2015
42015
GATE: A guided approach for time series ensemble forecasting
MR Sarkar, SG Anavatti, T Dam, MM Ferdaus, M Tahtali, S Ramasamy, ...
Expert Systems with Applications 235, 121177, 2024
32024
Developing generative adversarial networks for classification and clustering: overcoming class imbalance and catastrophic forgetting
T Dam
UNSW Sydney, 2022
32022
A Web based Analog Signals, Network and Measurement Laboratory
TD A. K. Deb
Int. Conf. on Soft Computing, Artificial Intelligence, Pattern Recognition …, 2013
32013
Enhancing wind power forecast precision via multi-head attention transformer: An investigation on single-step and multi-step forecasting
MR Sarkar, SG Anavatti, T Dam, M Pratama, B Al Kindhi
2023 International Joint Conference on Neural Networks (IJCNN), 1-8, 2023
22023
Improving self-supervised learning for out-of-distribution task via auxiliary classifier
H Boonlia, T Dam, MM Ferdaus, SG Anavatti, A Mullick
2022 IEEE International Conference on Image Processing (ICIP), 3036-3040, 2022
22022
Scalable adversarial online continual learning
T Dam, M Pratama, MDM Ferdaus, S Anavatti, H Abbas
Joint European Conference on Machine Learning and Knowledge Discovery in …, 2022
22022
X-Fuzz: An Evolving and Interpretable Neurofuzzy Learner for Data Streams
MM Ferdaus, T Dam, S Alam, DT Pham
IEEE Transactions on Artificial Intelligence, 2024
12024
Unlocking the capabilities of explainable fewshot learning in remote sensing
GY Lee, T Dam, MM Ferdaus, DP Poenar, VN Duong
arXiv preprint arXiv:2310.08619, 2023
12023
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