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Titlebook: Handbuch Innovationsforschung; Sozialwissenschaftli Birgit Blättel-Mink,Ingo Schulz-Schaeffer,Arnold W Book 2021 Springer Fachmedien Wiesba

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the demands on high productivity and consideration of environmental issues require that the processes still be strictly controlled. Due to the complexity and non-ideality of the processes, it is often not feasible to develop mechanistic models. An alternative is to use neural networks as black-box
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e, and similar tasks are identified based on this metric. A function estimating models performance on the new task from both the time and error point of view is evolved by means of genetic programming. The approach is verified on data containing results of several hundred thousands machine learning
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Ingo Schulz-Schaeffer,Arnold Windeler,Birgit Blättel-Mink. By . concepts we mean concepts that are not explicitly observable in the measured data, such as the notions of obstacle, stability or a tool. We consider mechanisms of machine learning that enable the discovery of abstract concepts. Such mechanisms are provided by the logic based approach to machi
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Ingo Schulz-Schaeffered from thermodynamic perception, the used evolutionary framework undertakes the optimal configuration problem as a Bi-objective optimization problem. The first objective aims to learn optimal layer topology by considering optimal nodes and optimal connections by nodes. Second objective aims to lear
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Werner Rammertrm of the model the prediction can be described by analytical formulas and the proposed algorithm is numerically efficient. It is shown that thanks to a clever tuning of the controller most of calculations needed to derive the control value can be performed off–line. Thus, the proposed algorithm has
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