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Titlebook: Data Management, Analytics and Innovation; Proceedings of ICDMA Saptarsi Goswami,Inderjit Singh Barara,Alfred M. B Conference proceedings 2

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發(fā)表于 2025-3-21 16:55:03 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Data Management, Analytics and Innovation
副標題Proceedings of ICDMA
編輯Saptarsi Goswami,Inderjit Singh Barara,Alfred M. B
視頻videohttp://file.papertrans.cn/263/262879/262879.mp4
概述Presents research works in the field of data management, analytics, and innovation.Provides results of ICDMAI 2022 held online.Serves as a reference for researchers and practitioners in academia and i
叢書名稱Lecture Notes on Data Engineering and Communications Technologies
圖書封面Titlebook: Data Management, Analytics and Innovation; Proceedings of ICDMA Saptarsi Goswami,Inderjit Singh Barara,Alfred M. B Conference proceedings 2
描述.This book presents the latest findings in the areas of data management and smart computing, big data management, artificial intelligence, and data analytics, along with advances in network technologies. The book is a collection of peer-reviewed research papers presented at Sixth International Conference on Data Management, Analytics and Innovation (ICDMAI 2022),?held virtually during January 14–16, 2022. It addresses state-of-the-art topics and discusses challenges and solutions for future development. Gathering original, unpublished contributions by scientists from around the globe, the book is mainly intended for a professional audience of researchers and practitioners in academia and industry..
出版日期Conference proceedings 2023
關鍵詞Machine Learning; Big Data Management; Data Storage, Management and Innovation; Enabling Technologies; D
版次1
doihttps://doi.org/10.1007/978-981-19-2600-6
isbn_softcover978-981-19-2602-0
isbn_ebook978-981-19-2600-6Series ISSN 2367-4512 Series E-ISSN 2367-4520
issn_series 2367-4512
copyrightThe Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Singapor
The information of publication is updating

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Automated Structured Data Extraction from Scanned Document Imagestructured format. The solution is driven by a configuration file, which can help in fine-tuning different processes to improve extracted data. The solution generates an XML for the scanned document which can be used further for storing and processing the data present in paper-based documents by diff
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Hypothesis Testing of Tweet Text Using NLPs. Tweets are labeled as “believer” or “denier” for each country, and a hypothesis is being proved based on the statement made by rich and poor countries. The statistical result also shows that there exists a positive correlation between the GDP growth rate and the number of deniers and believers in
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Ontology-Driven Scientific Literature Classification Using Clustering and Self-supervised Learningaper, we propose an ontology-driven classification technique based on zero-shot learning in conjunction with agglomerative clustering to automatically label a scientific literature dataset related to CE and CS. We further study and compare the effectiveness of multiple text classifiers such as logis
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Modeling and Forecasting Tuberculosis Cases Using Machine Learning and Deep Learning Approaches: A C CNN-LSTM Hybrid and MLP networks achieved the lowest forecasting errors compared to the other models and were chosen for forecasting pulmonary negative, positive, and TB incidence cases from 2020 to 2029. The forecasting results revealed that there would be 117.861557 new pulmonary negative inciden
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Support Vector Machines and Random Forest Classification Models for Identification of Stability in Eon modes. We also used the Synthetic Minority Oversampling Technique (SMOTE) to handle data imbalance. Our simulation results indicate that prediction of stability/instability classes for different process parameters can be achieved with high degree of confidence with robust machine learning models.
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