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Information Retrieval and Natural Language Processing = A Graph Theory Approach /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Information Retrieval and Natural Language Processing/ by Sheetal S. Sonawane, Parikshit N. Mahalle, Archana S. Ghotkar.
其他題名:
A Graph Theory Approach /
作者:
Sonawane, Sheetal S.
其他作者:
Ghotkar, Archana S.
面頁冊數:
XIX, 176 p. 171 illus., 118 illus. in color.online resource. :
Contained By:
Springer Nature eBook
標題:
Data Science. -
電子資源:
https://doi.org/10.1007/978-981-16-9995-5
ISBN:
9789811699955
Information Retrieval and Natural Language Processing = A Graph Theory Approach /
Sonawane, Sheetal S.
Information Retrieval and Natural Language Processing
A Graph Theory Approach /[electronic resource] :by Sheetal S. Sonawane, Parikshit N. Mahalle, Archana S. Ghotkar. - 1st ed. 2022. - XIX, 176 p. 171 illus., 118 illus. in color.online resource. - Studies in Big Data,1042197-6511 ;. - Studies in Big Data,8.
Part A -- Chapter 1. Graph theory basics -- Chapter 2. Graph Algorithms -- Chapter 3. Networks using graph -- Part B -- Chapter 4. Information retrieval -- Chapter 5. Text document preprocessing using graph theory -- Chapter 6. Text analytics using graph theory -- Chapter 7. Knowledge graph -- Part C -- Chapter 8. Emerging Applications and development -- Chapter 9. Conclusion and future scope.
This book gives a comprehensive view of graph theory in informational retrieval (IR) and natural language processing(NLP). This book provides number of graph techniques for IR and NLP applications with examples. It also provides understanding of graph theory basics, graph algorithms and networks using graph. The book is divided into three parts and contains nine chapters. The first part gives graph theory basics and graph networks, and the second part provides basics of IR with graph-based information retrieval. The third part covers IR and NLP recent and emerging applications with case studies using graph theory. This book is unique in its way as it provides a strong foundation to a beginner in applying mathematical structure graph for IR and NLP applications. All technical details that include tools and technologies used for graph algorithms and implementation in Information Retrieval and Natural Language Processing with its future scope are explained in a clear and organized format.
ISBN: 9789811699955
Standard No.: 10.1007/978-981-16-9995-5doiSubjects--Topical Terms:
1174436
Data Science.
LC Class. No.: QA166-166.247
Dewey Class. No.: 511.5
Information Retrieval and Natural Language Processing = A Graph Theory Approach /
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