Spectral Feature Selection for Data Mining (Chapman & Hall/CRC Data Mining and Knowledge Discovery Series)
暫譯: 數據挖掘的光譜特徵選擇 (Chapman & Hall/CRC 數據挖掘與知識發現系列)

Zheng Alan Zhao, Huan Liu

  • 出版商: Chapman and Hall/CRC
  • 出版日期: 2018-04-18
  • 售價: $3,540
  • 貴賓價: 9.5$3,363
  • 語言: 英文
  • 頁數: 224
  • 裝訂: Paperback
  • ISBN: 1138112623
  • ISBN-13: 9781138112629
  • 相關分類: Data-mining
  • 海外代購書籍(需單獨結帳)

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商品描述

Spectral Feature Selection for Data Mining introduces a novel feature selection technique that establishes a general platform for studying existing feature selection algorithms and developing new algorithms for emerging problems in real-world applications. This technique represents a unified framework for supervised, unsupervised, and semisupervised feature selection.

The book explores the latest research achievements, sheds light on new research directions, and stimulates readers to make the next creative breakthroughs. It presents the intrinsic ideas behind spectral feature selection, its theoretical foundations, its connections to other algorithms, and its use in handling both large-scale data sets and small sample problems. The authors also cover feature selection and feature extraction, including basic concepts, popular existing algorithms, and applications.

A timely introduction to spectral feature selection, this book illustrates the potential of this powerful dimensionality reduction technique in high-dimensional data processing. Readers learn how to use spectral feature selection to solve challenging problems in real-life applications and discover how general feature selection and extraction are connected to spectral feature selection.

商品描述(中文翻譯)

《光譜特徵選擇於資料探勘》介紹了一種新穎的特徵選擇技術,建立了一個通用平台,用於研究現有的特徵選擇演算法並開發針對現實應用中新興問題的新演算法。這項技術代表了一個統一的框架,適用於監督式、非監督式和半監督式的特徵選擇。

本書探討了最新的研究成果,闡明了新的研究方向,並激勵讀者進行下一步的創新突破。它呈現了光譜特徵選擇背後的內在思想、其理論基礎、與其他演算法的關聯,以及在處理大規模資料集和小樣本問題中的應用。作者還涵蓋了特徵選擇和特徵提取,包括基本概念、流行的現有演算法和應用。

這本書及時介紹了光譜特徵選擇,說明了這種強大的降維技術在高維資料處理中的潛力。讀者將學習如何使用光譜特徵選擇來解決現實應用中的挑戰性問題,並發現一般的特徵選擇和提取如何與光譜特徵選擇相連結。