Uncertainty in AI: A Journey Through Possible Worlds
暫譯: AI中的不確定性:穿越可能世界的旅程
Lawry Jonathan
- 出版商: Wspc (Europe)
- 出版日期: 2026-04-19
- 售價: $2,190
- 貴賓價: 9.5 折 $2,080
- 語言: 英文
- 頁數: 292
- 裝訂: Quality Paper - also called trade paper
- ISBN: 1800618832
- ISBN-13: 9781800618831
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相關分類:
Machine Learning
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商品描述
Uncertainty in AI explores different theories of uncertainty as studied in the context of artificial intelligence. By adopting a common representation framework based on sets of possible worlds, it examines the relationships between different theories of uncertainty, taking note of the different properties that they satisfy, their expressiveness, and their computational complexity. It distinguishes between uncertainty about the true state of the world, ignorance about the correct level of uncertainty, and fuzziness in the propositions being evaluated. Concepts are introduced using simple illustrative examples, prioritising intuitive understanding before reviewing key mathematical results. This makes it ideal for undergraduate students looking to understand the strengths and weaknesses of different uncertainty formalisms, providing them with sufficient technical detail to begin to apply these tools in practice while requiring only foundation-level mathematics - as taught in the first year of most science and engineering undergraduate programmes.
This book is based on material from "Uncertainty Modelling for Intelligent Systems", a course taught to third- and fourth-year undergraduate engineers and computer scientists at the University of Bristol for more than a decade. Instead of promoting a particular approach to or philosophy of uncertainty, these pages map the landscape of uncertainty theories, explicitly highlighting the connections and relationships between them that often remain implicit. It provides students with a broad overview, allowing them to better assess which uncertainty formalisms are most appropriate within the context of a particular application.
商品描述(中文翻譯)
《AI中的不確定性》探討了在人工智慧背景下研究的不同不確定性理論。通過採用基於可能世界集合的共同表徵框架,它檢視了不同不確定性理論之間的關係,注意到它們所滿足的不同性質、表達能力及計算複雜度。它區分了對世界真實狀態的不確定性、對正確不確定性水平的無知,以及在被評估命題中的模糊性。概念的介紹使用簡單的示例,優先考慮直觀理解,然後再回顧關鍵的數學結果。這使得本書非常適合希望理解不同不確定性形式優缺點的本科生,並提供足夠的技術細節以便他們開始在實踐中應用這些工具,同時僅需基礎數學知識——這些知識通常在大多數科學和工程本科課程的第一年教授。
本書基於《智能系統的不確定性建模》課程的材料,該課程在布里斯托大學教授給三年級和四年級的本科工程師和計算機科學家,已有十多年歷史。這些頁面並不推廣特定的不確定性方法或哲學,而是描繪了不確定性理論的全景,明確突顯了它們之間的聯繫和關係,這些聯繫和關係通常是隱含的。它為學生提供了廣泛的概述,使他們能夠更好地評估在特定應用背景下最合適的不確定性形式。