Donkey and Smuggler Optimization Algorithm: A Collaborative Working Approach to Path Finding
Ahmed S. Shamsaldin, Tarik A. Rashid, Rawan A. Al-Rashid Agha, Nawzad, K. Al-Salihi, Mokhtar Mohammadi (Computer Science, Engineering Department,, University of Kurdistan Hewler, Erbil, Kurdistan, Iraq, Department of, Information Technology, University of Human Development

TL;DR
The paper introduces the Donkey and Smuggler Optimization Algorithm (DSO), a novel swarm intelligence method inspired by donkey behaviors, demonstrating promising results on benchmark and real-world pathfinding problems.
Contribution
A new swarm intelligence algorithm inspired by donkey behaviors, with two modes for route searching and selection, tested on standard benchmarks and real-world applications.
Findings
DSO performs well on benchmark test functions.
Effective in solving traveling salesman, packet routing, and ambulance routing problems.
Shows potential for complex and unfamiliar search spaces.
Abstract
Swarm Intelligence is a metaheuristic optimization approach that has become very predominant over the last few decades. These algorithms are inspired by animals' physical behaviors and their evolutionary perceptions. The simplicity of these algorithms allows researchers to simulate different natural phenomena to solve various real-world problems. This paper suggests a novel algorithm called Donkey and Smuggler Optimization Algorithm (DSO). The DSO is inspired by the searching behavior of donkeys. The algorithm imitates transportation behavior such as searching and selecting routes for movement by donkeys in the actual world. Two modes are established for implementing the search behavior and route-selection in this algorithm. These are the Smuggler and Donkeys. In the Smuggler mode, all the possible paths are discovered and the shortest path is then found. In the Donkeys mode, several…
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