With the economic development and the improvement of cold chain logistics service technology, more and more fresh food enterprises are committed to expanding their retail scope, seizing market share and improving thei...
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In this paper A model and the Genetic algorithm for intelligent schedule of public traffic vehicles is researched according to the characteristics of the public transportation vehicles' scheduling, It adopts the t...
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In this paper A model and the Genetic algorithm for intelligent schedule of public traffic vehicles is researched according to the characteristics of the public transportation vehicles' scheduling, It adopts the true value of the coding method using the start time as the variable and uses the penalty function method to add a variety of constraints to the objective function when constructing the fitness function, which simplified the calculation. Finally, the simulation results are obtained by using the improved Genetic algorithm for solving the non-uniform grid schedule, and a case study is carried out to verify the validity, objectivity and applicability of this model through calculated and analyzed practical data. Results show that the improved Genetic algorithm can find the approximate best result in the huge search space of optimization.
A wideband butterfly antenna based on deep learning parameter optimization algorithm is proposed in this paper. Two neural networks are designed to model the mapping relationship of structure parameters to frequency r...
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ISBN:
(纸本)9781728181813
A wideband butterfly antenna based on deep learning parameter optimization algorithm is proposed in this paper. Two neural networks are designed to model the mapping relationship of structure parameters to frequency response and frequency response to structure parameters respectively. The parameter optimization algorithm proposed consists of two stages: training NN1 and optimizing parameters using NN2. A wideband butterfly antenna is designed to verify the algorithm. The experiment shows that the structure parameter optimization algorithm proposed can quickly optimize the structure parameters of antenna with the best preformance and save a lot of manpower and time cost.
Many optimization algorithms proposed for PCB assembly problem had a common problem that they introduced strong constraints, which made optimization performance deteriorate in practice. Focusing on component pick and ...
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ISBN:
(纸本)9781509009107
Many optimization algorithms proposed for PCB assembly problem had a common problem that they introduced strong constraints, which made optimization performance deteriorate in practice. Focusing on component pick and placement sequencing problem for multi-head placement machine in PCB assembly, this paper discuss some strong constraints involved in related optimization problem and propose an algorithm under relaxed constraints for problem solving. Certain strong constraints were relaxed for the algorithm to expand solution space, making it possible to find better solutions. Under such relaxation, an optimization algorithm based on scatter search(SS) method was constructed to solve the component sequencing problem, and steps of algorithm are detailed in the paper. Numerical experiments were made to conduct an evaluation for the proposed algorithm, along with a comparison with two heuristic algorithms proposed in other literatures. The results show that the proposed algorithm has better performance in optimization results and can shorten PCB assembly time of the placement machine effectively.
In the collaborative manufacturing project, task allocation among cooperative enterprises directly impacts the competition ability of enterprises and the overall economic benefits of the projectAiming at this problem,...
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In the collaborative manufacturing project, task allocation among cooperative enterprises directly impacts the competition ability of enterprises and the overall economic benefits of the projectAiming at this problem, a new algorithm is proposed to get the optimal combination of shortest project time, lowest cost and minimum number of selected cooperative enterprisesThe algorithm is evaluated with an example and the result shows that the optimization solution can be applied in the actual collaborative projects with good effect.
To implement demand response in residential sector and facilitate the integration of renewable resources and plug-in electric vehicles in future smart grid, this paper proposes a framework of home energy management sy...
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ISBN:
(纸本)9781479987313
To implement demand response in residential sector and facilitate the integration of renewable resources and plug-in electric vehicles in future smart grid, this paper proposes a framework of home energy management system (HEMS) and a optimization algorithm for it based on improved artificial bee colony. The algorithm schedules the operations of schedulable home appliances according to electricity price, forecasted outdoor temperature and renewable power output, and user preferences to minimize user's electricity cost. The effectiveness of the algorithm is verified by simulations, and the electricity cost can be reduced by 47.76%.
In this work, an optimization algorithm is presented for deformation analysis of the simply-supported beam. The principal feature of the optimization algorithm is that the equilibrium state with elastic-plastic deform...
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In this work, an optimization algorithm is presented for deformation analysis of the simply-supported beam. The principal feature of the optimization algorithm is that the equilibrium state with elastic-plastic deformation is chosen as the study object. The constitutive law adopts elastic-linearly strain-hardening plastic model and the shearing deformation is considered. The endpoint coordinates are given through coordinate recursion formulae, and an objective function is defined by unknown endpoint coordinates of slight segments. The optimization problem for deformation analysis of a simply-supported beam is established, and the optimization program is programmed. Typical examples are calculated by optimization algorithm, and the results are in very good agreement with those by finite element method.
optimization algorithm was developed for the simula ti on of ceramic grain growth at atomistic scale. Based on the coordination informa tion of different atoms, a structure of trident tree was applied to save large q ...
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optimization algorithm was developed for the simula ti on of ceramic grain growth at atomistic scale. Based on the coordination informa tion of different atoms, a structure of trident tree was applied to save large q uantities data, so as to solve the problems of large data information and long r unning time. For every atom a binary tree was firstly formed according to the X coordination of atom. If the values of X coordination were the same, the middle sub-tree of first layer formed then a binary tree according to the Y coordinati on of atom. If the values of Y coordination were also the same, the middle sub- tree of second layer formed then a binary tree according to the Z coordination o f atom. In this way the speed of whole program is enhanced obviously. In order t o reduce memory, in this structure only need to store the exterior atoms’ infor mation, an integer is used to store the interior atoms’ information. If other a toms take up an atom’s all adjacent positions, this atom will be deleted in the data structure, for all the adjacent positions’ atoms, the integer’s relative bit will be set 1 to denote that there is an atom in this position but not be s tored in the trident tree. When an outside atom is deleted, for all the bits tha t are set 1,an atom will be added to the trident tree as an outside atom for the relative positions. And for this new added atom, the integer’s relative bi t of all the adjacent position’s atoms should be set 0 to denote that there is no interior atom in this position. In this way, if there are n 3 atoms, onl y need to store 6n 2 quantity’s atoms’ information. Large quantity of mem ory space can then be saved.
The authors extend the numerical annealing algorithm framework presented by S. Kirkpatrick et al. to the case of continuous multidimensional parameter space. The design an efficient parameter inverse simulated anneali...
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ISBN:
(纸本)0780305825
The authors extend the numerical annealing algorithm framework presented by S. Kirkpatrick et al. to the case of continuous multidimensional parameter space. The design an efficient parameter inverse simulated annealing (PI-SA) algorithm, and obtain some important theoretical results on continuous annealing algorithm design. They apply the PI-SA optimization algorithm to fault diagnosis of analog circuits with tolerance. A software package for automatic diagnosis has been developed and applied to fault isolation of the electronic equipment of the remotely piloted vehicles. The diagnosis results obtained with the software package both ground simulation and in flight testing are satisfactory.
The microgrid design problem needs efficacy tools to reach good results with optimal convergence characteristics. Stochastic metaheuristic algorithms are the best choice to address complex problems. This paper propose...
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The microgrid design problem needs efficacy tools to reach good results with optimal convergence characteristics. Stochastic metaheuristic algorithms are the best choice to address complex problems. This paper proposes new hybrid renewable energy systems (HRES) design, composed of PV, wind turbine, diesel generator, and battery system. The objective function is minimizing the total net present cost, which includes all expenses during the project lifetime;the optimization respects other aspects, technical and ecologic. The improved algorithm is called IAOA that developed by modifying the original Arithmetic optimization algorithm (AOA) using the leading operators of the Aquila Optimizer (AO). The modified version is conducted to improve the search ability of the original AOA and avoid its weaknesses like being trapped in a local search. Moreover, the proposed IAOA makes a learning stage from the search process of the AO to enhance the research history of the AOA. Two HRES scenarios are suggested, the first is based on using PV/wind/diesel/battery, while the second scenario consists of PV/diesel/battery. This proposed HRES is located in El Kharga Oasis in Egypt with latitude of 25.42 and longitude of 30.581. The obtained results prove that the proposed IAOA gives better results compared with the other well-known algorithms, namely the original algorithm of AOA, Equilibrium Optimizer (EO), Gray Wolf optimization (GWO), Artificial Electric Field algorithm (AEFA), and Harris Hawks optimization (HHO). It is recognized that the proposed IAOA is a promising alternative to solve hybrid renewable energy systems.
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