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Titlebook: Machine Learning for Advanced Functional Materials; Nirav Joshi,Vinod Kushvaha,Priyanka Madhushri Book 2023 The Editor(s) (if applicable)

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Humaira Rashid Khan,Fahd Sikandar Khan,Javeed Akhtartions, yet each has subtle shades of meaning causing them to differ in certain situations—in which they should . be used as translation-equivalent. For instance, for the German word Sympathie dictionaries give the straightforward translation .; but since the English word is ambiguous, it is a fallac
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Elsa M. Materón,Filipe S. R. Silva Benvenuto,Lucas C. Ribas,Nirav Joshi,Odemir Martinez Bruno,Emanuetions, yet each has subtle shades of meaning causing them to differ in certain situations—in which they should . be used as translation-equivalent. For instance, for the German word Sympathie dictionaries give the straightforward translation .; but since the English word is ambiguous, it is a fallac
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Ramandeep Kaur,Rajan Saini,Janpreet Singhed Phrase Structure Grammar sought to provide a nontransformational syntactic framework, by employing metarules over a context-free grammar. Gazdar et al. (1985) constrained the power of those metarules by restricting them to lexically-headed phrase structure rules. Pollard and Sag (1987, 1994) buil
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Solar Cells and Relevant Machine Learning,ctically. In this chapter, we will comprehensively review ML about organic and inorganic solar cells, making a discussion about the use of machine learning, various classes of machine learning, common algorithms, and basic steps for ML. A detailed discussion about specific types of ML for solar cell
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Machine Learning-Driven Gas Identification in Gas Sensors,oduce the general approaches to enhance the selectivity of gas sensors implemented by machine learning techniques, which consists of the architecture scheme design of gas sensors (sensor array and single sensor architecture), the selection of gas sensing response features (steady-state feature and t
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Potential of Machine Learning Algorithms in Material Science: Predictions in Design, Properties, anEmbedding ML in material science research also provides distinctions between simulated data and experimental results. It has put the research of physical and chemical science at the forefront with the advancements in image processing, photonics, optoelectronics, and other emerging areas of material
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Perovskite-Based Materials for Photovoltaic Applications: A Machine Learning Approach,erials for photovoltaic applications. Halide perovskites have been reported to exhibit a power efficiency of 25.5% due to their excellent defect tolerance, high optical absorption, the minimization of recombination, and long carrier diffusion lengths. Furthermore, halide perovskite materials are mor
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