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Scientific Machine Learning

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Author :  Mark Temple-Raston

Affiliation :  LLC

Country :  USA

Category :  Machine Learning

Volume, Issue, Month, Year :  15, 18, September, 2025

Abstract :


Scientific Machine Learning implements the science-of-counting to analytically process any time-series and produce a complete set of thermodynamic measurements that define the state of the system. The scientific measurements are illustrated with a time-series of closing-prices for a stock (GE). Exact scientific measurements from Scientific Machine Learning (SML) are then used to create time-series decision services without model or bias. Services are built for a large class of Open allocation problems and applied to real optimal sales data for a consumer product good.

Keyword :  Machine Learning, Risk Analysis, Non-Equilibrium Thermodynamics, Information Theory, Decision Theory

Journal/ Proceedings Name :  CS&IT

URL :  https://aircconline.com/csit/abstract/v15n18/csit151807.html

User Name : alex
Posted 16-09-2026 on 14:59:10 AEDT



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