A collection of Machine Learning techniques for data management and augmentation.
Project description
DeepCoreML is a collection of Machine Learning techniques for data management, engineering, and augmentation. More specifically, DeepCoreML includes modules for:
- Dataset management
- Text data preprocessing
- Text representation, vectorization, embeddings
- Dimensionality Reduction
- Generative Modeling
- Imbalanced Datasets
Licence: Apache License, 2.0 (Apache-2.0)
Dependencies: scikit-learn, imblearn, pytorch, numpy, pandas, transformers, nltk, matplotlib
GitHub repository: https://github.com/lakritidis/DeepCoreML
Publications:
- L. Akritidis, A. Fevgas, M. Alamaniotis, P. Bozanis, "Conditional Data Synthesis with Deep Generative Models for Imbalanced Dataset Oversampling", In Proceedings of the 35th IEEE International Conference on Tools with Artificial Intelligence (ICTAI), to appear, 2023.
- L. Akritidis, P. Bozanis, "A Multi-Dimensional Survey on Learning from Imbalanced Data", Chapter in Machine Learning Paradigms - Advances in Theory and Applications of Learning from Imbalanced Data, to appear, 2023.
- L. Akritidis, P. Bozanis, "Low Dimensional Text Representations for Sentiment Analysis NLP Tasks", Springer Nature (SN) Computer Science, vol. 4, no. 5, 474, 2023.
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