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Neural Networks for LED Color Control

机译:用于LED颜色控制的神经网络

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摘要

The design and implementation of an architectural dimming control for multicolor LED-based lighting fixtures is complicated by the need to maintain a consistent color balance under a wide variety of operating conditions. Factors to consider include nonlinear relationships between luminous flux intensity and drive current, junction temperature dependencies, LED manufacturing tolerances and binning parameters, device aging characteristics, variations in color sensor spectral responsivities, and the approximations introduced by linear color space models. In this paper we formulate this problem as a nonlinear multidimensional function, where maintaining a consistent color balance is equivalent to determining the hyperplane representing constant chromaticity. To be useful for an architectural dimming control design, this determination must be made in real time as the lighting fixture intensity is adjusted. Further, the LED drive current must be continuously adjusted in response to color sensor inputs to maintain constant chromaticity for a given intensity setting. Neural networks are known to be universal approximators capable of representing any continuously differentiable bounded function. We therefore use a radial basis function neural network to represent the multidimensional function and provide the feedback signals needed to maintain constant chromaticity. The network can be trained on the factory floor using individual device measurements such as spectral radiant intensity and color sensor characteristics. This provides a flexible solution that is mostly independent of LED manufacturing tolerances and binning parameters.
机译:由于需要在多种操作条件下保持一致的色彩平衡,因此用于基于多色LED的照明灯具的建筑调光控制的设计和实现变得复杂。要考虑的因素包括光通量强度和驱动电流之间的非线性关系,结温依赖性,LED制造公差和分级参数,器件老化特性,颜色传感器光谱响应的变化以及线性颜色空间模型引入的近似值。在本文中,我们将此问题公式化为非线性多维函数,其中保持一致的色彩平衡等效于确定表示恒定色度的超平面。为了对建筑调光控制设计有用,必须在调整照明设备强度时实时进行此确定。此外,必须根据颜色传感器的输入来连续调节LED驱动电流,以在给定的强度设置下保持恒定的色度。已知神经网络是通用近似器,能够表示任何连续可微的有界函数。因此,我们使用径向基函数神经网络来表示多维函数,并提供维持恒定色度所需的反馈信号。可以使用单独的设备测量(例如光谱辐射强度和颜色传感器特性)在工厂车间训练网络。这提供了一种灵活的解决方案,该解决方案主要独立于LED制造公差和装仓参数。

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