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A Novel Performance Prediction Model for the Machining Process Based on the Interval Type-2 Fuzzy Neural Network

机译:基于间隔2模糊神经网络的加工过程的新型性能预测模型

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摘要

The prediction model is the most important part of the virtual metrology system. Predicting the performance of the machining process has been widely applied in manufacturing, which can reduce costs and improve efficiency compared with the manual operation. In this paper, a novel performance prediction model for the machining process is proposed based on the interval type-2 fuzzy neural network. The interval type-2 fuzzy logic system with a complete rule base, type-reduction, and defuzzified output is simplified by the BMM method to meet the requirements of the prediction. The proposed prediction model is trained using a gradient-based optimization algorithm. To evaluate the performance of the proposed approach, it is applied to wire electrical discharge turning process for predicting material removal rate and surface roughness with a published dataset. The results show that the proposed method is an effective scheme in the studied cases.
机译:预测模型是虚拟计量系统中最重要的部分。预测加工过程的性能已广泛应用于制造业,与手动操作相比,可以降低成本和提高效率。本文基于间隔类型-2模糊神经网络提出了一种用于加工过程的新型性能预测模型。通过BMM方法简化了具有完整规则基础,型号和Defuzzified输出的完整规则基础的间隔Type-2模糊逻辑系统,以满足预测的要求。使用基于梯度的优化算法训练所提出的预测模型。为了评估所提出的方法的性能,它适用于引线电气放电转动过程,用于预测具有发布的数据集的材料去除速率和表面粗糙度。结果表明,该方法是研究病例的有效方案。

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