Optimization Algorithms: AI Techniques for Design, Planning, and Control Problems (優化演算法:設計、規劃與控制問題的人工智慧技術)
Khamis, Alaa
- 出版商: Manning
- 出版日期: 2024-09-10
- 售價: $2,460
- 貴賓價: 9.5 折 $2,337
- 語言: 英文
- 頁數: 504
- 裝訂: Quality Paper - also called trade paper
- ISBN: 163343883X
- ISBN-13: 9781633438835
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相關分類:
人工智慧、Algorithms-data-structures
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商品描述
Solve design, planning, and control problems using modern machine learning and AI techniques.
In Optimization Algorithms: AI techniques for design, planning, and control problems you will learn:
- Machine learning methods for search and optimization problems
- The core concepts of search and optimization
- Deterministic and stochastic optimization techniques
- Graph search algorithms
- Nature-inspired search and optimization algorithms
- Efficient trade-offs between search space exploration and exploitation
- State-of-the-art Python libraries for search and optimization
Optimization problems are everywhere in daily life. What's the fastest route from one place to another? How do you calculate the optimal price for a product? How should you plant crops, allocate resources, and schedule surgeries? Optimization Algorithms introduces the AI algorithms that can solve these complex and poorly-structured problems. Inside you'll find a wide range of optimization methods, from deterministic and stochastic derivative-free optimization to nature-inspired search algorithms and machine learning methods. Don't worry--there's no complex mathematical notation. You'll learn through in-depth case studies that cut through academic complexity to demonstrate how each algorithm works in the real world.
About the technology
Search and optimization algorithms are powerful tools that can help practitioners find optimal or near-optimal solutions to a wide range of design, planning and control problems. When you open a route planning app, call for a rideshare, or schedule a hospital appointment, an AI algorithm works behind the scenes to make sure you get an optimized result. This guide reveals the classical and modern algorithms behind these services.
About the book
Optimization Algorithms: AI techniques for design, planning, and control problems explores the AI algorithms that determine the most efficient routes, optimal designs, and solve other logistical issues. Dive into the exciting world of classical problems like the Travelling Salesman Problem and the Knapsack Problem, as well as cutting-edge modern implementations like graph search methods, metaheuristics and machine learning. Discover how to use these algorithms in real-world situations, with in-depth case studies on assembly line balancing, fitness planning, rideshare dispatching, routing and more. Plus, get hands-on experience with practical exercises to optimize and scale the performance of each algorithm.
About the reader
For AI practitioners familiar with the Python language.
About the author
Dr. Alaa Khamis is an AI and smart mobility technical leader at General Motors and a sessional lecturer at the University of Toronto. He is also an adjunct professor at Ontario Tech University and Nile University, affiliate member of the Center of Pattern Analysis and Machine Intelligence (CPAMI) at the University of Waterloo, and a former professor of artificial intelligence and robotics.
商品描述(中文翻譯)
解決設計、規劃和控制問題,使用現代機器學習和人工智慧技術。
在《優化演算法:設計、規劃和控制問題的AI技術》中,您將學到:
- 用於搜尋和優化問題的機器學習方法
- 搜尋和優化的核心概念
- 確定性和隨機優化技術
- 圖形搜尋演算法
- 自然啟發的搜尋和優化演算法
- 在搜尋空間探索與利用之間的有效權衡
- 用於搜尋和優化的最先進Python庫
優化問題在日常生活中無處不在。從一個地方到另一個地方的最快路徑是什麼?如何計算產品的最佳價格?您應該如何種植作物、分配資源和安排手術?《優化演算法》介紹了可以解決這些複雜且結構不良問題的AI演算法。書中涵蓋了各種優化方法,從確定性和隨機的無導數優化到自然啟發的搜尋演算法和機器學習方法。別擔心——沒有複雜的數學符號。您將通過深入的案例研究學習,這些案例研究簡化了學術複雜性,展示每個演算法在現實世界中的運作方式。
關於技術
搜尋和優化演算法是強大的工具,可以幫助實務工作者找到各種設計、規劃和控制問題的最佳或近似最佳解決方案。當您打開路徑規劃應用程式、呼叫共乘服務或安排醫院預約時,AI演算法在背後運作,以確保您獲得最佳化的結果。本指南揭示了這些服務背後的經典和現代演算法。
關於本書
《優化演算法:設計、規劃和控制問題的AI技術》探討了決定最有效路徑、最佳設計和解決其他後勤問題的AI演算法。深入了解經典問題,如旅行推銷員問題和背包問題,以及尖端的現代實現,如圖形搜尋方法、元啟發式演算法和機器學習。發現如何在現實情況中使用這些演算法,並通過關於裝配線平衡、健身規劃、共乘調度、路由等的深入案例研究來學習。此外,還可以通過實用練習獲得實踐經驗,以優化和擴展每個演算法的性能。
關於讀者
適合熟悉Python語言的AI實務工作者。
關於作者
阿拉·哈米斯博士是通用汽車的AI和智慧移動技術領導者,並且是多倫多大學的兼任講師。他同時也是安大略科技大學和尼羅大學的兼任教授,並且是滑鐵盧大學模式分析與機器智慧中心(CPAMI)的附屬成員,以及前人工智慧和機器人學教授。
作者簡介
Dr. Alaa Khamis is an AI and smart mobility technical leader at General Motors and a sessional lecturer at the University of Toronto. He is also an adjunct professor at Ontario Tech University and Nile University, affiliate member of the Center of Pattern Analysis and Machine Intelligence (CPAMI) at the University of Waterloo, and a former professor of artificial intelligence and robotics.
作者簡介(中文翻譯)
Dr. Alaa Khamis 是通用汽車的人工智慧與智慧移動技術領導者,同時也是多倫多大學的兼任講師。他還是安大略科技大學和尼羅大學的兼任教授,並且是滑鐵盧大學模式分析與機器智慧中心 (CPAMI) 的附屬成員,以及前人工智慧與機器人學教授。