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Continual Domain Incremental Learning during Test-time

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dc.contributor.advisor Biswas, Soma
dc.contributor.author CHAKRABARTY, GOIRIK
dc.date.accessioned 2023-05-12T05:32:41Z
dc.date.available 2023-05-12T05:32:41Z
dc.date.issued 2023-05
dc.identifier.citation 57 en_US
dc.identifier.uri http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/7830
dc.description.abstract This thesis focuses on the problem of continual test time domain adaptation in deep learning, where a trained model needs to adapt to new and changing environments during deployment. The first contribution of this work is the development of a novel strategy for obtaining a signal for domain shift, which enables the model to overfit without compromising its ability to adapt to future domains. The second contribution is the presentation of a novel framework called SATA, which uses self-knowledge distillation and contrastive learning to adapt a pre-trained model to continual domain shift. The proposed framework improves the accuracy, time complexity, space complexity, and stability of the machine learning model. The research conducted in this thesis contributes to the ongoing effort to develop more robust and reliable deep learning models that can adapt to new and changing environments. en_US
dc.language.iso en_US en_US
dc.subject Continual Learning en_US
dc.subject Domain Adaptation en_US
dc.subject Computer Vision en_US
dc.subject Knowledge distillation en_US
dc.subject Contrastive Learning en_US
dc.subject Unsupervised Machine Learning en_US
dc.subject Test time adaptation en_US
dc.title Continual Domain Incremental Learning during Test-time en_US
dc.type Thesis en_US
dc.description.embargo no embargo en_US
dc.type.degree BS-MS en_US
dc.contributor.department Dept. of Data Science en_US
dc.contributor.registration 20181079 en_US


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  • MS THESES [1705]
    Thesis submitted to IISER Pune in partial fulfilment of the requirements for the BS-MS Dual Degree Programme/MSc. Programme/MS-Exit Programme

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