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Titlebook: Designing Modern Embedded Systems: Software, Hardware, and Applications; 7th IFIP TC 10 Inter Stefan Henkler,Márcio Kreutz,Achim Rettberg C

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Synthetic Data for Machine Learning on Embedded Systems in Precision Agriculturelearning models. For plant classification and monitoring, it is easier to collect data of healthy plants than it is to collect data of plants that are infected by various diseases, because they are simply more common. Sufficient data are therefore often lacking for the accurate detection of diseased
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https://doi.org/10.1007/978-3-031-34214-1Embedded Software; Embedded Hardware; Cyber-Physical Systems; System C; Machine Learning; Edge Computing;
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Structural Obstacles Slow Business Lending. Techniques, such as ., propose units of modularization to encapsulate their handling. A key design issue in embedded software is related to the process of locating, identifying, and specifying the . (CCOP). This paper reports on an empirical evaluation that compares four notations, namely JPDD, Th
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Taissiya Sutormina,Tobias Stapf resource contention. However, runtime adaptation of system services in these systems is motivated by energy efficiency without detriment to system performance. Too frequent adaptation result in more communication overhead. This work introduces a meta-scheduling technique with sample points to compu
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Taissiya Sutormina,Tobias Stapfes. Near-data or Processing in Memory (PIM) approach has been revisited to tackle this problem, along with a wide variety of architectural designs. However, these devices commonly rely on Application Specific Integrated Circuit (ASIC) designs, which in turn fail to cover the heterogeneity found in s
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