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Dive into the research topics where Heqi Wang is active.

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Featured researches published by Heqi Wang.


Information Sciences | 2014

Chaotic Krill Herd algorithm

Gai-Ge Wang; Lihong Guo; Amir Hossein Gandomi; Guo-sheng Hao; Heqi Wang

Recently, Gandomi and Alavi proposed a meta-heuristic optimization algorithm, called Krill Herd (KH). This paper introduces the chaos theory into the KH optimization process with the aim of accelerating its global convergence speed. Various chaotic maps are considered in the proposed chaotic KH (CKH) method to adjust the three main movements of the krill in the optimization process. Several test problems are utilized to evaluate the performance of CKH. The results show that the performance of CKH, with an appropriate chaotic map, is better than or comparable with the KH and other robust optimization approaches


The Scientific World Journal | 2012

A bat algorithm with mutation for UCAV path planning.

Gai-Ge Wang; Lihong Guo; Hong Duan; Luo Liu; Heqi Wang

Path planning for uninhabited combat air vehicle (UCAV) is a complicated high dimension optimization problem, which mainly centralizes on optimizing the flight route considering the different kinds of constrains under complicated battle field environments. Original bat algorithm (BA) is used to solve the UCAV path planning problem. Furthermore, a new bat algorithm with mutation (BAM) is proposed to solve the UCAV path planning problem, and a modification is applied to mutate between bats during the process of the new solutions updating. Then, the UCAV can find the safe path by connecting the chosen nodes of the coordinates while avoiding the threat areas and costing minimum fuel. This new approach can accelerate the global convergence speed while preserving the strong robustness of the basic BA. The realization procedure for original BA and this improved metaheuristic approach BAM is also presented. To prove the performance of this proposed metaheuristic method, BAM is compared with BA and other population-based optimization methods, such as ACO, BBO, DE, ES, GA, PBIL, PSO, and SGA. The experiment shows that the proposed approach is more effective and feasible in UCAV path planning than the other models.


The Scientific World Journal | 2013

An Effective Hybrid Firefly Algorithm with Harmony Search for Global Numerical Optimization

Lihong Guo; Gai-Ge Wang; Heqi Wang; Dinan Wang

A hybrid metaheuristic approach by hybridizing harmony search (HS) and firefly algorithm (FA), namely, HS/FA, is proposed to solve function optimization. In HS/FA, the exploration of HS and the exploitation of FA are fully exerted, so HS/FA has a faster convergence speed than HS and FA. Also, top fireflies scheme is introduced to reduce running time, and HS is utilized to mutate between fireflies when updating fireflies. The HS/FA method is verified by various benchmarks. From the experiments, the implementation of HS/FA is better than the standard FA and other eight optimization methods.


Journal of Sensor and Actuator Networks | 2012

Dynamic Deployment of Wireless Sensor Networks by Biogeography Based Optimization Algorithm

Gai-Ge Wang; Lihong Guo; Hong Duan; Luo Liu; Heqi Wang

As the usage and development of wireless sensor networks increases, problems related to these networks are becoming apparent. Dynamic deployment is one of the main topics that directly affects the performance of the wireless sensor networks. In this paper, biogeography-based optimization is applied to the dynamic deployment of static and mobile sensor networks to achieve better performance by trying to increase the coverage area of the network. A binary detection model is considered to obtain realistic results while computing the effectively covered area. Performance of the algorithm is compared with that of the artificial bee colony algorithm, Homo-H-VFCPSO and stud genetic algorithm that are also population-based optimization algorithms. Results show biogeography-based optimization can be preferable in the dynamic deployment of wireless sensor networks.


The Scientific World Journal | 2012

A Hybrid Metaheuristic DE/CS Algorithm for UCAV Three-Dimension Path Planning

Gai-Ge Wang; Lihong Guo; Hong Duan; Heqi Wang; Luo Liu; Mingzhen Shao

Three-dimension path planning for uninhabited combat air vehicle (UCAV) is a complicated high-dimension optimization problem, which primarily centralizes on optimizing the flight route considering the different kinds of constrains under complicated battle field environments. A new hybrid metaheuristic differential evolution (DE) and cuckoo search (CS) algorithm is proposed to solve the UCAV three-dimension path planning problem. DE is applied to optimize the process of selecting cuckoos of the improved CS model during the process of cuckoo updating in nest. The cuckoos can act as an agent in searching the optimal UCAV path. And then, the UCAV can find the safe path by connecting the chosen nodes of the coordinates while avoiding the threat areas and costing minimum fuel. This new approach can accelerate the global convergence speed while preserving the strong robustness of the basic CS. The realization procedure for this hybrid metaheuristic approach DE/CS is also presented. In order to make the optimized UCAV path more feasible, the B-Spline curve is adopted for smoothing the path. To prove the performance of this proposed hybrid metaheuristic method, it is compared with basic CS algorithm. The experiment shows that the proposed approach is more effective and feasible in UCAV three-dimension path planning than the basic CS model.


Neural Computing and Applications | 2014

Erratum to: Incorporating mutation scheme into krill herd algorithm for global numerical optimization

Gai-Ge Wang; Lihong Guo; Heqi Wang; Hong Duan; Luo Liu; Jiang Li

The online version of the original article can be found under doi: 10.1007/s00521-012-1304-8 .


Neural Computing and Applications | 2014

Incorporating mutation scheme into krill herd algorithm for global numerical optimization

Gai-Ge Wang; Lihong Guo; Heqi Wang; Hong Duan; Luo Liu; Jiang Li


Journal of Computational and Theoretical Nanoscience | 2013

Hybridizing harmony search with biogeography based optimization for global numerical optimization

Gai-Ge Wang; Lihong Guo; Hong Duan; Heqi Wang; Luo Liu; Mingzhen Shao


Journal of Computational and Theoretical Nanoscience | 2014

A New Improved Firefly Algorithm for Global Numerical Optimization

Gai-Ge Wang; Lihong Guo; Hong Duan; Heqi Wang


Archive | 2012

A modified firefly algorithm for UCAV path planning

Gai-Ge Wang; Lihong Guo; Hong Duan; Luo Liu; Heqi Wang

Collaboration


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Gai-Ge Wang

Jiangsu Normal University

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Lihong Guo

Chinese Academy of Sciences

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Hong Duan

Northeast Normal University

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Luo Liu

Chinese Academy of Sciences

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Jiang Li

Chinese Academy of Sciences

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Guo-sheng Hao

Jiangsu Normal University

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Amir Hossein Gandomi

Stevens Institute of Technology

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