Arbitrary-scale super-resolution (ASSR) aims to learn a single model for image super-resolution at arbitrary magnifying scales. Existing ASSR networks typically comprise an off-the-shelf scale-agnostic feature extract...
In this paper, an optimized mechanism for Semiconductor wafer fabrication (SWF) by integrating the Adaptive neuro-fuzzy inference system (ANFIS) with Simulated annealing (SA) algorithm is proposed. In this approach, a...
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In this paper, an optimized mechanism for Semiconductor wafer fabrication (SWF) by integrating the Adaptive neuro-fuzzy inference system (ANFIS) with Simulated annealing (SA) algorithm is proposed. In this approach, aiming to solve the rush order problem which significantly affect the cycle time and impact the Work in process (WIP) of lots due to the high priority, we build an ANFIS based prediction model which will be embedded into releasing to forecast product codes and quantities of the contingent rush orders. Then a scheduler based on SA algorithm is constructed, the coding of which represents a combination of scheduling policies, including lot releasing policies, dispatching rules, batching rules and settingup rules. When the SA finished its optimization process, an optimal scheduling policy is produced. By using the proposed approach, we will find that the system can be optimized to a large extent and give a better performance.
In this study, we investigate the robust feedback stability problem for multiple-input-multiple-output linear time-invariant systems involving sectored-disk uncertainty, namely, dynamic uncertainty subject to simultan...
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Recently, biological perception has been a powerful tool for handling the camouflaged object detection (COD) task. However, most existing methods are heavily dependent on the local spatial information of diverse scale...
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Stationarity in time series is a key property for practical data analysis, inferences, and predictions particularly in biosciences. Stationarity can be either deterministic or stochastic. If a time series data is not ...
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Big data technology is the next frontier for innovation, competition, and productivity. Big data analytics in the manufacturing industry is mainly used to process massive data in various manufacturing activities. Toda...
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Big data technology is the next frontier for innovation, competition, and productivity. Big data analytics in the manufacturing industry is mainly used to process massive data in various manufacturing activities. Today, many industrial companies are starting discussions on the importance of DSS (Decision Support systems) and its cloud processing capability. In recent years different approaches have been developed to provide appropriate solutions for big data and DSS. In this work, we will carry out detailed bibliographical research on the methods and applications of big data for decision making and provide a classification for them. Even if this bibliographic review does not call on all the studies carried out in this field, we believe that it can constitute a valuable source of information, particularly for practitioners in big data and Intelligent Decision-Making.
The Web applications often handle confidential data such as Internet account passwords, credit card numbers, and so on. These sensitive data are generally transmitted over the Internet and therefore, exposed to the pu...
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Positional encodings (PEs) are essential for effective graph representation learning because they provide position awareness in inherently position-agnostic transformer architectures and increase the expressive capaci...
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One major challenge for autonomous attitude takeover control for on-orbit servicing of spacecraft is that an accurate dynamic motion model of the combined vehicles is highly nonlinear, complex and often costly to iden...
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3D face reconstruction technology aims to generate a face stereo model naturally and realistically. Previous deep face reconstruction approaches are typically designed to generate convincing textures and cannot genera...
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