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Titlebook: Big Scientific Data Management; First International Jianhui Li,Xiaofeng Meng,Zhihui Du Conference proceedings 2019 Springer Nature Switzer

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Neural Networks in Control Engineering,nical requirements for physical analysis are constantly increasing with the mass of physical events generated by high-energy physical colliders. The physical analysis for high-energy physics events refers to the selection of thousands of meaningful events from massive physical events. The analysis p
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https://doi.org/10.1007/978-3-7908-1852-9ced physical experimental devices can produce a large amount of Event data up to PB level. While Compared to these massive data generation, data storage system based on files at the moment is out of date. Event data are mostly random accessed, but searching a few specific Event in large files is an
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Introduction to Neuro-Fuzzy Systemsormance data access and large volume of data storage as well. Some enterprises and research organizations are beginning to use tiered storage architectures, using tapes, disks or solid drives at the same time to reduce hardware purchase costs and power consumption. Tiered storage requires data manag
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Nanoscale circuits and fluctuation problems, been widely used to process these data. In traditional computing model such as grid computing, computing job is usually scheduled to the sites where the input data was pre-staged in. This model will lead to some problems including low CPU utilization, inflexibility, and difficulty in highly dynamic
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Fundamentals of constrained optimization,s deal with the issues through R-Tree, KD-tree and space curves, but these structures are not suitable for default and discrete values of semi-structured data, and even require sampling before storage. We present MD-Index, a scalable multi-dimensional indexing system that supports high-throughput an
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Fundamentals of unconstrained optimization,proposes a new technology insight framework based on the text mining-Technology Dependency Graph (TDG). Firstly, an adversarial multitask learning model and distantly-supervised learning model are applied to extract the technology entities and dependency relations with a little labeled sample. Then,
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