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A combination of backpropagation neural network on fuzzy inference system approach in Indonesia scholarship selection process: Case study: “Bidik misi” scholarship selection

机译:对印度尼西亚奖学金选择过程模糊推理系统方法的反向化神经网络的组合:案例研究:“Bidik MISI”奖学金选择

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“Bidik Misi” (BM) is a scholarship from the Government of Indonesia with two criteria: economic need and academic performance. Main candidate targets are those from low economic families. Due to the large number of potential recipients who desire to continue their study to the university level despite the limited quota, difficulties occur in selecting candidates. This research aims to provide a new selection model by combining Back-Propagation Neural Network (BPNN) on Fuzzy Inferences System (FIS) for the BM scholarship selection process where BPNN is used as classifier to eliminate non-recommended candidates to reduce the system's workload before applying FIS as candidate selector. By considering spearman's correlation coefficients of the input parameters in creating fuzzy framework for BS scholarship selection, the accuracy of the system is superior to previous works. In the future will be useful in making an automated selection system in order to help the committee by reducing their manual labor.
机译:“Bidik Misi”(BM)是来自印度尼西亚政府的奖学金,其中有两个标准:经济需求和学术表现。主要候选目标是来自低经济家庭的目标。由于大量潜在的接受者愿意继续学习大学级别,尽管配额有限,但选择候选人时发生困难。本研究旨在通过将BM奖学金选择过程组合在模糊推断系统(FIS)上组合BM奖学金选择过程来提供新的选择模型,其中BPNN用作分类器以消除非推荐候选者以减少系统的工作量将FIS应用于候选选择器。通过考虑Spearman对BS奖学金选择的模糊框架时输入参数的相关系数,系统的准确性优于上一个工作。在未来将有助于制作自动化选择系统,以通过减少其体力劳动来帮助委员会。

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