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Published in Proceedings of the 1st Workshop on NLP for COVID-19 (Part 2) at EMNLP 2020., 2020
Wikification of COVID-19 texts using large language models trained on scientific papers.
Recommended citation: Lymperopoulos, P., Qiu, H., & Min, B. (2020). Concept wikification for COVID-19. Proceedings of the 1st Workshop on NLP for COVID-19 (Part 2) at EMNLP 2020. https://www.aclweb.org/anthology/2020.nlpcovid19-2.29 https://www.aclweb.org/anthology/2020.nlpcovid19-2.29
Published in Imaging, Manipulation, and Analysis of Biomolecules, Cells, and Tissues XIX, 2021
Using denoising autoencoders to accelerate lable-free medical imaging.
Recommended citation: Polleys, C. M., Lymperopoulos, P., Thieu, H.-T., Genega, E., Liu, L., & Georgakoudi, I. (2021). Deep-learning-based image restoration of depth-resolved, label-free, two-photon images for the quantitative morphological and functional characterization of human cervical tissues. Imaging, Manipulation, and Analysis of Biomolecules, Cells, and Tissues XIX, 11647, 116470Z. https://spie.org/Publications/Proceedings/Paper/10.1117/12.2578650
Published in Poster in ICLR 2021 Workshop on Machine Learning for Preventing and Combating Pandemics, 2021
A bayesian model for forecasting the daily number of hospitalized COVID-19 patients at a single hospital site.
Recommended citation: Lee, A. H., Lymperopoulos, P., Cohen, J. T., Wong, J. B., & Hughes, M. C. (2021). Forecasting covid-19 counts at a single hospital: A hierarchical bayesian approach.Poster in ICLR 2021 Workshop on Machine Learning for Preventing and Combating Pandemics, arXiv preprint arXiv:2104.09327. https://arxiv.org/abs/2104.09327
Published in arxiv preprint, 2021
Monopoly-playing agent that operates in an Open world, where game rules, elements and concepts are subject to change at test time. Gopalakrishnan, Sriram, et al. "Integrating Planning, Execution and Monitoring in the presence of Open World Novelties: Case Study of an Open World Monopoly Solver."
Recommended citation: arXiv preprint arXiv:2107.04303 (2021). https://arxiv.org/abs/2107.04303
Published in Journal of the Royal Society Interface, 2021
Modelling the branching of vascular network tissue as asymmetric fractal structures. The model is further investigate in its ability to describe and discriminate between various species.
Recommended citation: Brummer, A. B., Lymperopoulos, P., Shen, J., Tekin, E., Bentley, L. P., Buzzard, V., Gray, A., Oliveras, I., Enquist, B. J., & Savage, V. M. (2021). Branching principles of animal and plant networks identified by combining extensive data, machine learning and modelling. Journal of the Royal Society Interface, 18 (174), 20200624. https://royalsocietypublishing.org/doi/10.1098/rsif.2020.0624
Published in arXiv preprint, 2022
A new Dataset for novelty detection in open worlds based on Minecraft.
Recommended citation: Feeney, P., Schneider, S., Lymperopoulos, P., Liu, L., Scheutz, M., & Hughes, M. C. (2022). Novelcraft: A dataset for novelty detection and discovery in open worlds. arXiv preprint arXiv:2206.11736. https://arxiv.org/abs/2206.11736
Published in Spotlight Presentation at RobustSeq @ NeurIPS 2022., 2022
Online anomaly detection in time series is a challenging task, especially when the time-series are stochastic. We propose a novel approach to exploit the correlation between variables in time series data to improve the performance of anomaly detection.
Recommended citation: Lymperopoulos, P., Li, Y., & Liu, L. (2022). Exploiting variable correlation with masked modeling for anomaly detection in time series. https://openreview.net/pdf?id=TCJuzs585W
Published in AAMAS2024, 2024
We propose a novel approach to learn agent models with internal states from observations.
Recommended citation: Lymperopoulos, P., & Scheutz, M. (2024). Oh, Now I See What You Want: Learning Agent Models with Internal States from Observations. In Proceedings of the 23rd International Conference on Autonomous Agents and Multiagent Systems (AAMAS 2024). https://www.ifaamas.org/Proceedings/aamas2024/pdfs/p1.pdf
Published in International Conference on Artificial Intelligence and Statistics, 2024
We propose a novel approach to enumerate minimal unsatisfiable subsets by pruning the search space using graph-based techniques.
Recommended citation: Lymperopoulos, P., & Liu, L. (2024). Graph Pruning for Enumeration of Minimal Unsatisfiable Subsets. International Conference on Artificial Intelligence and Statistics, 2647-2655. https://proceedings.mlr.press/v130/lymperopoulos21a.html
Published in Artificial Intelligence Journal, 2024
We propose a neurosymbolic cognitive architecture framework for handling novelties in open worlds.
Recommended citation: Goel, S., Lymperopoulos, P., Thielstrom, R., Krause, E., Feeney, P., Lorang, P., Schneider, S., Wei, Y., Kildebeck, E., Goss, S., & others (2024). A neurosymbolic cognitive architecture framework for handling novelties in open worlds. Artificial Intelligence, 331, 104111. https://www.sciencedirect.com/science/article/pii/S0004370224000866
Published:
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Undergraduate course, University 1, Department, 2014
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Workshop, University 1, Department, 2015
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