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UAV Path Planning Using Optimization Approaches: A Survey

delete2022-04-18
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PRE
AI
A
Amylia Ait Saadi
A
Assia Soukane
Y
Yassine Meraihi *
A
Asma Benmessaoud Gabis
S
Seyedali Mirjalili
A
Amar Ramdane-Chérif
DOI:10.1007/s11831-022-09742-7delete
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Abstract

Abstract

En 中文
Path planning is one of the most important steps in the navigation and control of Unmanned Aerial Vehicles (UAVs). It ensures an optimal and collision-free path between two locations from a starting point (source) to a destination one (target) for autonomous UAVs while meeting requirements related to UAV characteristics and the serving area. In this paper, we present an overview of UAV path planning approaches classified into five main categories including classical methods, heuristics, meta-heuristics, machine learning, and hybrid algorithms. For each category, a critical analysis is given based on targeted objectives, considered constraints, and environments. In the end, we suggest some highlights and future research directions for UAV path planning.
Keywords:
UNMANNED AERIAL VEHICLE
GREY WOLF OPTIMIZER
PARTICLE SWARM OPTIMIZATION
GENETIC ALGORITHM
DIFFERENTIAL EVOLUTION
DYNAMIC ENVIRONMENT
COLLISION-AVOIDANCE
OBSTACLE AVOIDANCE
SEARCH ALGORITHM
MULTIPLE UAVS

Journal

Archives of Computational Methods in Engineering cover
Archives of Computational Methods in Engineering
IF:
12.1
Papers:
1.8K
Citations:
1.2W

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E
ecole nationale superieure d'informatique
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117
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U
universite de m'hammed bougara boumerdes
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923
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torrens university australia
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494
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U
Universite Paris Saclay
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Yonsei University
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Papers: 4.6W
Citations: 5.2W
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