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    • Department of Computational and Data Sciences (CDS)
    • Browsing Department of Computational and Data Sciences (CDS) by Subject
    •   etd@IISc
    • Division of Interdisciplinary Research
    • Department of Computational and Data Sciences (CDS)
    • Browsing Department of Computational and Data Sciences (CDS) by Subject
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    Browsing Department of Computational and Data Sciences (CDS) by Subject "Machine Learning"

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      • Data Driven Stabilization Schemes for Singularly Perturbed Differential Equations 

        Yadav, Sangeeta
        This thesis presents a novel way of leveraging Artificial Neural Network (ANN) to aid conventional numerical techniques for solving Singularly Perturbed Differential Equation (SPDE). SPDEs are challenging to solve with ...
      • Data-efficient Deep Learning Algorithms for Computer Vision Applications 

        Nayak, Gaurav Kumar
        The performance of any deep learning model depends heavily on the quantity and quality of the available training data. The generalization of the trained deep models improves with the availability of a large number of ...
      • Epistasis Detection and Phenotype Prediction in GWAS Using Machine Learning Methods 

        Chaudhary, Diksha
        Genome-wide association studies (GWAS) are used to find the association between genetic variants, Single Nucleotide Polymorphisms (SNPs), and phenotypic traits or diseases in a population. The number of GWAS has increased ...
      • Learning Compact Architectures for Deep Neural Networks 

        Srinivas, Suraj (2018-05-22)
        Deep neural networks with millions of parameters are at the heart of many state of the art computer vision models. However, recent works have shown that models with much smaller number of parameters can often perform just ...
      • Methods for Improving Data-efficiency and Trustworthiness using Natural Language Supervision 

        Kumar, Sawan
        Traditional strategies to build machine learning based classification systems employ discrete labels as targets. This limits the usefulness of such systems in two ways. First, the generalizability of these systems is limited ...
      • Relating Representations in Deep Learning and the Brain 

        Jat, Sharmistha
        Deep Neural Networks (DNN) inspired by the human brain have redefined the state-of-the-art performance in AI during the past decade. Much of the research is still trying to understand and explain the function of these ...

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