We have hosted the application meta learning papers in order to run this application in our online workstations with Wine or directly.


Quick description about meta learning papers:

Meta-Learning-Papers is a curated bibliography focused specifically on meta-learning, learning-to-learn, one-shot learning, and few-shot learning, intended for researchers and practitioners interested in this rapidly evolving subfield of machine learning. It catalogs foundational �legacy� papers that introduced key concepts, as well as more recent work that extends meta-learning to new domains or architectures. The list spans topics such as gradient-based meta-learning, metric-based and relation-based methods, optimization-based approaches, and meta-reinforcement learning. By collecting these references in one place, the repository helps newcomers quickly get an overview of the intellectual history and main research directions in meta-learning. It is also useful for experienced researchers who need a convenient reference when writing surveys, proposals, or literature reviews.

Features:
  • Curated list of meta-learning, learning-to-learn, one-shot, and few-shot learning papers
  • Includes early foundational work and more recent state-of-the-art methods
  • Covers gradient-based, metric-based, optimization-based, and meta-RL approaches
  • Serves as a literature map for students and researchers entering the field
  • Useful as a reference when writing surveys, theses, or research proposals
  • Simple text organization that is easy to browse and update



Categories:
Deep Learning Frameworks

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