Optimization and Machine Learning
eBook - ePub

Optimization and Machine Learning

Optimization for Machine Learning and Machine Learning for Optimization

Rachid Chelouah,Patrick Siarry

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eBook - ePub

Optimization and Machine Learning

Optimization for Machine Learning and Machine Learning for Optimization

Rachid Chelouah,Patrick Siarry

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Inhaltsverzeichnis
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Über dieses Buch

Machine learning and optimization techniques are revolutionizing our world. Other types of information technology have not progressed as rapidly in recent years, in terms of real impact. The aim of this book is to present some of the innovative techniques in the field of optimization and machine learning, and to demonstrate how to apply them in the fields of engineering. Optimization and Machine Learning presents modern advances in the selection, configuration and engineering of algorithms that rely on machine learning and optimization. The first part of the book is dedicated to applications where optimization plays a major role, and the second part describes and implements several applications that are mainly based on machine learning techniques. The methods addressed in these chapters are compared against their competitors, and their effectiveness in their chosen field of application is illustrated.

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Information

Jahr
2022
ISBN
9781119902874

PART 1
Optimization

1
Vehicle Routing Problems with Loading Constraints: An Overview of Variants and Solution Methods

Ines SBAI1 and Saoussen KRICHEN1
1Université de Tunis, Institut Supérieur de Gestion de Tunis, LARODEC Laboratory, Tunisia
This chapter combines two of the most studied combinatorial optimization problems, namely, the capacitated vehicle routing problem (CVRP) and the two/three-dimensional bin packing problem (2/3D-BPP). It focuses heavily on real-life transportation problems such as the transportation of furniture or industrial machinery. An extensive overview of the CVRP with two/three-dimensional loading constraints is presented by surveying over 76 existing contributions. We provide an updated review of the variants of the L-CVRP studied in the literature and analyze some of the most popular optimization methods presented in the existing literature. Alongside this, we discuss their variants and constraints, their applications for solving real-world problems, as well as their impact on the current literature.

1.1. Introduction

Although the vehicle routing problem (VRP) is the most studied combinatorial optimization problem, the challenge still remains to achieve the most optimal and effective results (Sbai et al. 2020a). The VRP aims to minimize total traveling cost in cases where a fleet of identical vehicles is used to visit a set of customers. The VRP is used in many real-world applications, for example: pharmaceutical distribution, food distribution, the urban bus problem and garbage collection. The basic version of the VRP is known as the capacitated VRP (CVRP); each vehicle has a fixed capacity which must be respected and must not be exceeded when loading items. It is aimed at minimizing the total cost of serving all the customers. The CVRP can be extended to the VRP with time windows (VRPTW) by adding time windows to define the overall traveling time for a vehicle. It can also be extended to the VRP with pickups and deliveries (VRPPD) where orders may be picked up and delivered. Another variant of the basic CVRP is the VRP with backhauls (VRPB). Here, pickups and deliveries may be combined in a single route; all delivery requests therefore need to be performed before the empty vehicle can collect goods from customer locations. Two surveys, conducte...

Inhaltsverzeichnis

  1. Cover
  2. Table of Contents
  3. Title Page
  4. Copyright
  5. Introduction
  6. PART 1 Optimization
  7. PART 2 Machine Learning
  8. List of Authors
  9. Index
  10. End User License Agreement
Zitierstile für Optimization and Machine Learning

APA 6 Citation

Chelouah, R., & Siarry, P. (2022). Optimization and Machine Learning (1st ed.). Wiley. Retrieved from https://www.perlego.com/book/3269269/optimization-and-machine-learning-optimization-for-machine-learning-and-machine-learning-for-optimization-pdf (Original work published 2022)

Chicago Citation

Chelouah, Rachid, and Patrick Siarry. (2022) 2022. Optimization and Machine Learning. 1st ed. Wiley. https://www.perlego.com/book/3269269/optimization-and-machine-learning-optimization-for-machine-learning-and-machine-learning-for-optimization-pdf.

Harvard Citation

Chelouah, R. and Siarry, P. (2022) Optimization and Machine Learning. 1st edn. Wiley. Available at: https://www.perlego.com/book/3269269/optimization-and-machine-learning-optimization-for-machine-learning-and-machine-learning-for-optimization-pdf (Accessed: 15 October 2022).

MLA 7 Citation

Chelouah, Rachid, and Patrick Siarry. Optimization and Machine Learning. 1st ed. Wiley, 2022. Web. 15 Oct. 2022.