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@ILS-UI

Intelligent and Learning Systems (ILS) Research Laboratory

Developing innovative learning algorithms for intelligent systems, with a focus on deep, multimodal, geometric, and data-compensating approaches.

Intelligent and Learning Systems (ILS) Research Laboratory

Artificial Intelligence Department, Faculty of Computer Engineering, University of Isfahan

About Us

As a main objective in Artificial Intelligence, there are increasing need for building intelligent agents with learning capability, in many applications like Medical Diagnosis, Text/Web classification, Computer Vision, Voice-related Analysis and Applications, Spoken Language Understanding, Data Mining, Economical Predictions, Natural Language Processing/Understanding, Machine Translation, Autonomous Navigation, and Business Software. Recently, Intelligent Learning Systems, including Deep Learning models, have been successfully applied in most of the above mentioned applications, and achieved significant superior results.

From the theoretical point of view, design and analysis of intelligent models and algorithms in Machine Learning field, have close relationships with several fundamental mathematical subjects like Linear/Non-Linear Optimization, Convergence Study of Iterative Numerical Methods, Estimation Theory, Euclidean and Riemannian Vector Spaces Geometry, Statistical Learning Theory, Stochastic Processes, Decision Theory, and Performance Evaluation of Predictive Models. From the other viewpoint, a prominent approach in implementing intelligent systems in real-world environments with high complexities, is applying Computational Intelligence algorithms. These algorithms typically work by avoiding the simplifying assumptions about the problem in hand, which are usual in machine learning algorithms, and provide possibilities to achieve more practical solutions.

The mission of Intelligent and Learning Systems (ILS) Research Laboratory is to develop learning algorithms in intelligent systems from both of the theoretical and practical aspects. ILS Lab has currently been focused on development of novel learning methods with deep, multimodal, geometric, and data insufficiency compensating approaches.

Research Areas

  • Machine Learning
  • Computational Intelligence
  • Data Science
  • Image/Video/Signal/Speech/Text Analysis and Understanding

Lab Members

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  1. .github .github Public

  2. ILS-UI.github.io ILS-UI.github.io Public

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  3. AK_SSL AK_SSL Public

    Forked from audrina-ebrahimi/AK_SSL

    A python library for self-supervised learning

    Python

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