Domain-Specific Knowledge Graph Construction
暫譯: 領域特定知識圖譜構建

Kejriwal, Mayank

  • 出版商: Springer
  • 出版日期: 2019-03-15
  • 售價: $3,370
  • 貴賓價: 9.5$3,202
  • 語言: 英文
  • 頁數: 107
  • 裝訂: Quality Paper - also called trade paper
  • ISBN: 303012374X
  • ISBN-13: 9783030123741
  • 海外代購書籍(需單獨結帳)

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商品描述

The vast amounts of ontologically unstructured information on the Web, including HTML, XML and JSON documents, natural language documents, tweets, blogs, markups, and even structured documents like CSV tables, all contain useful knowledge that can present a tremendous advantage to the Artificial Intelligence community if extracted robustly, efficiently and semi-automatically as knowledge graphs. Domain-specific Knowledge Graph Construction (KGC) is an active research area that has recently witnessed impressive advances due to machine learning techniques like deep neural networks and word embeddings. This book will synthesize Knowledge Graph Construction over Web Data in an engaging and accessible manner.

The book will describe a timely topic for both early -and mid-career researchers. Every year, more papers continue to be published on knowledge graph construction, especially for difficult Web domains. This work would serve as a useful reference, as well as an accessible but rigorous overview of this body of work. The book will present interdisciplinary connections when possible to engage researchers looking for new ideas or synergies. This will allow the book to be marketed in multiple venues and conferences. The book will also appeal to practitioners in industry and data scientists since it will have chapters on both data collection, as well as a chapter on querying and off-the-shelf implementations.

The author has, and continues to, present on this topic at large and important conferences. He plans to make the powerpoint he presents available as a supplement to the work. This will draw a natural audience for the book. Some of the reviewers are unsure about his position in the community but that seems to be more a function of his age rather than his relative expertise. I agree with some of the reviewers that the title is a little complicated. I would recommend "Domain Specific Knowledge Graphs."

商品描述(中文翻譯)

網路上存在大量本體論上未結構化的信息,包括 HTML、XML 和 JSON 文件、自然語言文件、推文、部落格、標記,甚至像 CSV 表格這樣的結構化文件,這些都包含有用的知識,如果能夠以穩健、高效和半自動的方式提取出來,將對人工智慧社群帶來巨大的優勢,這些提取的知識稱為知識圖譜(knowledge graphs)。特定領域的知識圖譜構建(Knowledge Graph Construction, KGC)是一個活躍的研究領域,最近因為深度神經網絡和詞嵌入等機器學習技術而取得了顯著的進展。本書將以引人入勝且易於理解的方式綜合網路數據上的知識圖譜構建。

本書將描述一個對於早期和中期研究者來說的「及時主題」。每年,關於知識圖譜構建的論文不斷發表,特別是在困難的網路領域。這項工作將作為一個「有用的參考」,以及一個「可接觸但嚴謹的概述」這一領域的工作。本書將在可能的情況下呈現「跨學科的連結」,以吸引尋找新想法或協同效應的研究者。這將使本書能夠在多個場域和會議中進行「市場推廣」。本書也將吸引「業界從業者和數據科學家」,因為它將包含有關數據收集的章節,以及一個關於查詢和現成實現的章節。

作者曾在大型和重要的會議上發表過這個主題的演講,並計劃將他所展示的 PowerPoint 作為本工作的補充資料,這將自然吸引讀者的關注。一些評審對他的社群地位感到不確定,但這似乎更多是因為他的年齡,而非相對的專業知識。我同意一些評審的看法,認為書名有點複雜。我建議使用「特定領域的知識圖譜」。

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