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Selection of feature wavelengths for developing multispectral imaging systems for quality, safety and authenticity of muscle foods-a review

机译:选择特征波长以开发用于肌肉食品质量,安全性和真实性的多光谱成像系统-综述

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摘要

There is a great interest in developing optical techniques that have the capability of predicting quality attributes, safety parameters and authenticity in real-time assessment. Recently, hyperspectral imaging technique has been widely used for rapid and non-destructive inspection of various food products. Although the technique is currently in an early development stage, its potential is promising. Due to the extensive time needed for the processing of the large volumes of data, hyperspectral imaging technique cannot be directly implemented in an online system. However, selecting some feature wavelengths from hyperspectral images can be useful to develop a multispectral imaging system, which can meet the speed requirement of industrial production. Indeed, the success of multispectral imaging heavily depends on the effectiveness of hyperspectral imaging (HSI) for providing the feature wavelengths. If the high dimensionality of hyperspectral data can be reduced properly in order to design/form a low-cost multispectral imaging sensor based on some selected feature wavelengths for certain applications, the technique would certainly be incomparable for process monitoring and real-time inspection. This review first introduces the fundamental steps for selecting feature wavelengths from hyperspectral data and then describes the feature wavelengths derived from hyperspectral imaging applications to make a more effective and efficient multispectral real-time imaging system. It is anticipated that this review can act as a basis for researchers and industry for further development of online multispectral inspection system for quality, safety and authenticity of muscles food.
机译:对开发具有在实时评估中预测质量属性,安全参数和真实性的光学技术的兴趣很大。近来,高光谱成像技术已被广泛用于各种食品的快速和无损检查。尽管该技术目前处于早期开发阶段,但其潜力是有希望的。由于处理大量数据需要大量时间,因此高光谱成像技术无法直接在在线系统中实现。然而,从高光谱图像中选择一些特征波长可能对开发能够满足工业生产速度要求的多光谱成像系统很有用。实际上,多光谱成像的成功很大程度上取决于高光谱成像(HSI)用于提供特征波长的有效性。如果高光谱数据的高维性可以适当降低,以便为某些应用基于某些选定的特征波长设计/形成一种低成本的多光谱成像传感器,那么该技术对于过程监控和实时检查无疑是无与伦比的。这篇综述首先介绍了从高光谱数据中选择特征波长的基本步骤,然后介绍了从高光谱成像应用中获得的特征波长,以构成一个更加有效和高效的多光谱实时成像系统。可以预期,该评论可以为研究人员和工业界进一步开发在线多光谱检查系统提供基础,以提高肌肉食品的质量,安全性和真实性。

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