首页> 外国专利> SYSTEMS AND METHODS FOR SELECTING OPTIMAL VARIABLES USING MODIFIED TEACHING LEARNING BASED SEARCH OPTIMIZATION TECHNIQUE

SYSTEMS AND METHODS FOR SELECTING OPTIMAL VARIABLES USING MODIFIED TEACHING LEARNING BASED SEARCH OPTIMIZATION TECHNIQUE

机译:基于改进的教学学习的搜索优化技术选择最优变量的系统和方法

摘要

Systems and methods include initializing a trainees population (TP), calculating an objective function (OF) of the TP to identify a trainer. A teaching pool is created using variables of each trainee and the identified trainer, and unique variables are added to obtain an updated teaching pool (UTP). Search is performed on the UTP to obtain ‘m’ subset of variables and OFs. The OFs of ‘m’ subset are compared with OFs of the trainer's and each trainee's variable and one of the trainer or each trainee are updated accordingly. An updated learning pool (ULP) is created for selected trainee and the trainees, by adding unique variables to obtain ‘n’ subset. The OF of ‘n’ subset are compared with objective functions of selected trainee and the trainees and variables are updated accordingly. These steps are iteratively performed to obtain an optimal subset of variables that is selected for teaching and learning phase.
机译:系统和方法包括初始化受训者人数(TP),计算TP的目标函数(OF)以识别培训者。使用每个受训者和所标识的培训者的变量来创建教学池,并添加唯一变量以获得更新的教学池(UTP)。在UTP上执行搜索,以获取变量和OF的“ m”子集。将“ m”子集的OF与培训员的OF进行比较,并相应地更新每个受训者的变量,以及其中一个培训员或每个受训者的变量。通过添加唯一变量以获得“ n”子集,为选定的受训者和受训者创建更新的学习池(ULP)。将“ n”子集的OF与所选受训者的目标函数进行比较,并相应地更新受训者和变量。重复执行这些步骤,以获得选择用于教学阶段的变量的最佳子集。

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