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MRI India Journals Vol. 15 No. 1S (2026): Special Issue on Cognition, Human and Artificial Intelligence

Learning To Learn: A Survey of Recent Literature on Meta Learning

Authors

  • Mohan Pramod Patil SSBT’s College of Engineering and Technology, Jalgaon, Maharashtra, India 425001.
  • G .K. Patnaik Principal, SSBT’s College of Engineering and Technology, Jalgaon , Maharashtra, India 425001

DOI:

https://doi.org/10.65521/ijacte.v15i1S.1302

Keywords:

Meta Learning Meta training Evaluation metrics AutoML.

Abstract

The essence of Meta-learning is “learning to learn”. Meta Learning is a subset of machine learning. Meta-learning is the process of using knowledge gained from many tasks during meta-training to enable a model to quickly learn new tasks from few examples. Meta learning algorithm, or the learning method itself, such that the modified learner is better than the original learner at learning from additional experience. This paper explore introduction of Meta learning, how it works , the structure of literature survey of Meta learning, Meta Learning for few shot learning in specialized domains, evaluation metrics and benchmark datasets for meta learning and future direction and open problems in meta learning for few shot learning.

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Published

2026-01-18

How to Cite

Patil , M. P., & Patnaik , G. .K. (2026). Learning To Learn: A Survey of Recent Literature on Meta Learning. International Journal on Advanced Computer Theory and Engineering, 15(1S), 42–57. https://doi.org/10.65521/ijacte.v15i1S.1302

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