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Designing and Training of Lightweight Neural Networks on Edge Devices using Early Halting in Knowledge Distillation

dc.contributor.authorMishra, Rahul
dc.contributor.authorGupta, Hari Prabhat
dc.date.accessioned2024-02-13T06:49:58Z
dc.date.available2024-02-13T06:49:58Z
dc.date.issued2023-07-19
dc.descriptionThis paper published with affiliation IIT (BHU), Varanasi in Open Access Mode.en_US
dc.description.abstractAutomated feature extraction capability and significant performance of Deep Neural Networks (DNN) make them suitable for Internet of Things (IoT) applications. However, deploying DNN on edge devices becomes prohibitive due to the colossal computation, energy, and storage requirements. This paper presents a novel approach, EarlyLight, for designing and training lightweight DNN using large-size DNN. The approach considers the available storage, processing speed, and maximum allowable processing time to execute the task on edge devices. We present a knowledge distillation based training procedure to train the lightweight DNN to achieve adequate accuracy. During the training of lightweight DNN, we introduce a novel early halting technique, which preserves network resources; thus, speedups the training procedure. Finally, we present the empirically and real-world evaluations to verify the effectiveness of the proposed approach under different constraints using various edge devices.en_US
dc.identifier.issn15361233
dc.identifier.urihttps://idr-sdlib.iitbhu.ac.in/handle/123456789/2891
dc.language.isoenen_US
dc.publisherInstitute of Electrical and Electronics Engineers Inc.en_US
dc.relation.ispartofseriesIEEE Transactions on Mobile Computing;
dc.subjectArtificial neural networksen_US
dc.subjectDeep neural networksen_US
dc.subjectInternet of Thingsen_US
dc.subjectknowledge distillationen_US
dc.subjectKnowledge engineeringen_US
dc.subjectMobile computingen_US
dc.subjectPerformance evaluationen_US
dc.subjectTask analysisen_US
dc.subjectTrainingen_US
dc.titleDesigning and Training of Lightweight Neural Networks on Edge Devices using Early Halting in Knowledge Distillationen_US
dc.typeArticleen_US

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