Kernel Methods for Pattern Analysis (Hardcover)
暫譯: 模式分析的核心方法 (精裝版)

John Shawe-Taylor, Nello Cristianini

  • 出版商: Cambridge
  • 出版日期: 2004-06-28
  • 售價: $1,700
  • 貴賓價: 9.8$1,666
  • 語言: 英文
  • 頁數: 478
  • 裝訂: Hardcover
  • ISBN: 0521813972
  • ISBN-13: 9780521813976
  • 已絕版

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商品描述

Description:

Kernel methods provide a powerful and unified framework for pattern discovery, motivating algorithms that can act on general types of data (e.g. strings, vectors or text) and look for general types of relations (e.g. rankings, classifications, regressions, clusters). The application areas range from neural networks and pattern recognition to machine learning and data mining. This book, developed from lectures and tutorials, fulfils two major roles: firstly it provides practitioners with a large toolkit of algorithms, kernels and solutions ready to use for standard pattern discovery problems in fields such as bioinformatics, text analysis, image analysis. Secondly it provides an easy introduction for students and researchers to the growing field of kernel-based pattern analysis, demonstrating with examples how to handcraft an algorithm or a kernel for a new specific application, and covering all the necessary conceptual and mathematical tools to do so.

商品描述(中文翻譯)

描述:
內核方法提供了一個強大且統一的框架,用於模式發現,激發出能夠處理一般類型數據(例如字符串、向量或文本)的算法,並尋找一般類型的關係(例如排名、分類、回歸、聚類)。應用領域涵蓋從神經網絡和模式識別到機器學習和數據挖掘。本書基於講座和教程的發展,履行兩個主要角色:首先,它為實踐者提供了一個大型工具包,內含算法、內核和解決方案,隨時可用於生物信息學、文本分析、圖像分析等領域的標準模式發現問題。其次,它為學生和研究人員提供了一個簡單的入門,介紹不斷增長的基於內核的模式分析領域,通過示例展示如何為新的特定應用手工設計算法或內核,並涵蓋所有必要的概念和數學工具以實現這一目標。