INSTITUTIONAL DIGITAL REPOSITORY

Modified Knowledge-Based Neural Networks Using Control Variates for the Fast Uncertainty Quantification of On-Chip MWCNT Interconnects

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dc.contributor.author Dimple, K M
dc.contributor.author Guglani, S
dc.contributor.author Dasgupta, A
dc.contributor.author Sharma, R
dc.contributor.author Roy, S
dc.contributor.author Kaushik, B K
dc.date.accessioned 2024-07-02T16:37:51Z
dc.date.available 2024-07-02T16:37:51Z
dc.date.issued 2024-07-02
dc.identifier.uri http://dspace.iitrpr.ac.in:8080/xmlui/handle/123456789/4650
dc.description.abstract Abstract: In this article, a modified knowledge-based artificial neural network (KBANN) metamodel is developed for the efficient uncertainty quantification of on-chip multiwalled carbon nanotube (MWCNT) interconnects. The proposed KBANN metamodel utilizes the notion of control variates to enable much faster training than what is possible with standard KBANNs. Importantly, techniques to calculate the optimal value of the control variates in an a priori manner without augmenting the training dataset have been developed in this article. Furthermore, techniques to exploit the control variates depending on whether one or multiple low-fidelity models of the MWCNT interconnects are available have also been developed in this article. The benefits of the proposed KBANN metamodel using control variates over standard KBANN metamodels have been validated using multiple MWCNT interconnect examples spanning multiple technology nodes. en_US
dc.language.iso en_US en_US
dc.subject ficial neural networks (ANNs) en_US
dc.subject control variates en_US
dc.subject multiwalled carbon nanotubes (MWCNTs) en_US
dc.subject on-chip interconnects en_US
dc.subject signal integrity (SI) analysis en_US
dc.subject uncertainty quantification (UQ) en_US
dc.title Modified Knowledge-Based Neural Networks Using Control Variates for the Fast Uncertainty Quantification of On-Chip MWCNT Interconnects en_US
dc.type Article en_US


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