Paper
10 April 2023 Experimental investigation on computational volumetric heat in real time neural pathways
Natrayan Lakshmaiya
Author Affiliations +
Proceedings Volume 12616, International Conference on Mathematical and Statistical Physics, Computational Science, Education, and Communication (ICMSCE 2022); 126160N (2023) https://doi.org/10.1117/12.2675555
Event: International Conference on Mathematical and Statistical Physics, Computational Science, Education, and Communication (ICMSCE 2022), 2022, Istanbul, Turkey
Abstract
This research presents an adaptive intelligence internet approach to the reverse heat flow issue of simultaneously identifying the thermally internal heat of vaporization and thermal diffusivity functions of a solid material. A reverse issue was created using the BICOND heat transfer characteristic measuring technique. Internal specific heat and thermal transfer vs temperature characteristics can always be calculated using the velocity and temperature histories of two devices. This work used an analytical simulation of the evet heat flow issue to construct noiseless and noisy fake observations. This reverse issue was handled using a multi-layer graze classifier with a rear method and a stochastic gradient descent type classifier using a complete historical classification algorithm. In light of the results, feedforward deep networks seem to be essential tools for non-iteratively solving component prediction opposite heat flux issues, and being extremely efficient in assessing real temperature variation past to all ascertain fluid flow specific heat and ductility as an arbitrarily defined function of pressure. Furthermore, whenever the temperature spectrum of observation changes, there is no need to retrain the networks.
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Natrayan Lakshmaiya "Experimental investigation on computational volumetric heat in real time neural pathways", Proc. SPIE 12616, International Conference on Mathematical and Statistical Physics, Computational Science, Education, and Communication (ICMSCE 2022), 126160N (10 April 2023); https://doi.org/10.1117/12.2675555
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KEYWORDS
Education and training

Neurons

Data modeling

Materials properties

Heat flux

Neural networks

Resistance

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