Food inspection using hyperspectral imaging and SVDD

Faruk Sukru Uslu, Hamidullah Binol, A. Bal
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引用次数: 3

Abstract

Nowadays food inspection and evaluation is becoming significant public issue, therefore robust, fast, and environmentally safe methods are studied instead of human visual assessment. Optical sensing is one of the potential methods with the properties of being non-destructive and accurate. As a remote sensing technology, hyperspectral imaging (HSI) is being successfully applied by researchers because of having both spatial and detailed spectral information about studied material. HSI can be used to inspect food quality and safety estimation such as meat quality assessment, quality evaluation of fish, detection of skin tumors on chicken carcasses, and classification of wheat kernels in the food industry. In this paper, we have implied an experiment to detect fat ratio in ground meat via Support Vector Data Description which is an efficient and robust one-class classifier for HSI. The experiments have been implemented on two different ground meat HSI data sets with different fat percentage. Addition to these implementations, we have also applied bagging technique which is mostly used as an ensemble method to improve the prediction ratio. The results show that the proposed methods produce high detection performance for fat ratio in ground meat.
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利用高光谱成像和SVDD技术进行食品检测
如今,食品检验与评价已成为一个重要的公共问题,因此,人们开始研究可靠、快速、环保的方法来代替人类的视觉评价。光传感具有无损、准确等特点,是一种很有潜力的检测方法。高光谱成像(HSI)作为一种遥感技术,由于能够获得被研究物质的空间和详细的光谱信息而得到了研究人员的成功应用。在食品工业中,HSI可用于检验食品质量和安全评价,如肉类质量评价、鱼类质量评价、鸡胴体皮肤肿瘤检测、小麦籽粒分类等。在本文中,我们提出了一种基于支持向量数据描述的实验方法,该方法是一种高效、鲁棒的单类HSI分类器。实验在两个不同脂肪率的肉糜HSI数据集上进行。除了这些实现之外,我们还应用了bagging技术,该技术主要用作集成方法来提高预测率。结果表明,该方法对肉末脂肪比的检测具有较高的性能。
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