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Titlebook: Data Science; Third International Beiji Zou,Min Li,Zeguang Lu Conference proceedings 2017 Springer Nature Singapore Pte Ltd. 2017 Data ana

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發(fā)表于 2025-3-21 18:12:23 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Data Science
副標(biāo)題Third International
編輯Beiji Zou,Min Li,Zeguang Lu
視頻videohttp://file.papertrans.cn/264/263040/263040.mp4
叢書名稱Communications in Computer and Information Science
圖書封面Titlebook: Data Science; Third International  Beiji Zou,Min Li,Zeguang Lu Conference proceedings 2017 Springer Nature Singapore Pte Ltd. 2017 Data ana
描述This two volume set (CCIS 727 and 728) constitutes the refereed proceedings of the Third International Conference of Pioneering Computer Scientists, Engineers and Educators, ICPCSEE 2017 (originally ICYCSEE)?held in Changsha, China, in September 2017.?.The 112 revised full papers presented in these two volumes were carefully reviewed and selected from 987 submissions. The papers cover a wide range of topics related to Basic Theory and Techniques for Data Science including Mathematical Issues in Data Science, Computational Theory for Data Science, Big Data Management and Applications, Data Quality and Data Preparation, Evaluation and Measurement in Data Science, Data Visualization, Big Data Mining and Knowledge Management, Infrastructure for Data Science, Machine Learning for Data Science, Data Security and Privacy, Applications of Data Science, Case Study of Data Science, Multimedia Data Management and Analysis, Data-driven Scientific Research, Data-driven Bioinformatics, Data-driven Healthcare, Data-driven Management, Data-driven eGovernment, Data-driven Smart City/Planet, Data Marketing and Economics, Social Media and Recommendation Systems, Data-driven Security, Data-driven Busi
出版日期Conference proceedings 2017
關(guān)鍵詞Data analysis; Recommender system; Deep learning; Social media; Social networks; Emotion analysis; Pattern
版次1
doihttps://doi.org/10.1007/978-981-10-6385-5
isbn_softcover978-981-10-6384-8
isbn_ebook978-981-10-6385-5Series ISSN 1865-0929 Series E-ISSN 1865-0937
issn_series 1865-0929
copyrightSpringer Nature Singapore Pte Ltd. 2017
The information of publication is updating

書目名稱Data Science影響因子(影響力)




書目名稱Data Science影響因子(影響力)學(xué)科排名




書目名稱Data Science網(wǎng)絡(luò)公開度




書目名稱Data Science網(wǎng)絡(luò)公開度學(xué)科排名




書目名稱Data Science被引頻次




書目名稱Data Science被引頻次學(xué)科排名




書目名稱Data Science年度引用




書目名稱Data Science年度引用學(xué)科排名




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發(fā)表于 2025-3-22 00:04:30 | 只看該作者
Research of Detection Algorithm for Time Series Abnormal Subsequence,rom time series data plays a very important role in data mining. In this paper, we focus on the abnormal subsequence detection. The original definition of . subsequences is defective for some kind of time series, in this paper we give a more robust definition which is based on the k nearest neighbor
板凳
發(fā)表于 2025-3-22 03:22:26 | 只看該作者
An Improved SVM Based Wind Turbine Multi-fault Detection Method, was used to reduce the dimension of target features to 1-D, so that PCA output 1-D data can be used as label of support vector machine (SVM). Thus on the premise of not losing the prediction correctness, one model can detect the fault of 2 to 4 features, largely reduce the complexity of model build
地板
發(fā)表于 2025-3-22 08:17:11 | 只看該作者
GPU Based Hash Segmentation Index for Fast T-overlap Query,fication framework, thus in low efficiency. Modern GPU has much higher parallelism as well as memory bandwidth than CPU and can be used to accelerate T-overlap query. In this paper, we use hash segmentation to divide inverted lists into segments, then design an efficient inverted index called GHSII
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,Further Analysis of Candlestick Patterns’ Predictive Power,lp resolve the debate, this paper uses the data mining methods of pattern recognition, pattern clustering and pattern knowledge mining to research the predictive power of candlestick patterns. In addition, we propose the similarity match model and nearest neighbor-clustering algorithm to solve the p
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Disease Prediction Based on Transfer Learning in Individual Healthcare,present disease prediction models based on transfer learning. Breast cancer disease data has been used to build our model. According to the neural networks, the basic model has been provided. With unlabeled data, transfer learning is a appropriate way to revise the module to increase accuracy. The t
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