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Learning Multi-dimensional Functions: Gas Turbine Engine Modeling

机译:学习多维函数:燃气轮机建模

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This paper shows how multi-dimensional functions, describing the operation of complex equipment, can be learned. The functions are points in a shape space, each produced by morphing a prototypical function located at its origin. The prototypical function and the space's dimensions, which define morphological operations, are learned from a set of existing functions. New ones are generated by averaging the coordinates of similar functions and using these to morph the prototype appropriately. This paper discusses applying this approach to learning new functions for components of gas turbine engines. Experiments on a set of compressor maps, multi-dimensional functions relating the performance parameters of a compressor, show that it more accurately transforms old maps, into new ones, than existing methods.
机译:本文展示了如何学习描述复杂设备操作的多维功能。这些函数是形状空间中的点,每个点都是通过使位于其起点处的原型函数变形来产生的。原型功能和空间的尺寸(定义了形态操作)是从一组现有功能中学习的。通过平均相似函数的坐标并使用它们对原型进行适当的变形来生成新的坐标。本文讨论了应用这种方法来学习燃气涡轮发动机组件的新功能的方法。在一组压缩器图上进行的实验(与压缩器的性能参数相关的多维函数)表明,与现有方法相比,它可以更准确地将旧图转换为新图。

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