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Statistical Model-Based Thresholding of Multispectral Images for Contaminant Detection on Poultry Carcasses

机译:基于统计模型的多光谱图像阈值用于家禽屠体的污染物检测

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Developing an algorithm to decide the presence or absence of fecal contamination on the surface of poultry carcasses is critical to food safety. The global threshold strategy for a band-ratio algorithm has been known to be limited to pixel-basis detection. In an attempt to develop a statistical decision rule for carcass-basis detection from multispectral images, probability density functions of both contaminated and uncontaminated materials were estimated by parametric and non-parametric methods. We found that uncontaminated poultry carcasses could be modeled by a Gaussian distribution, whereas contaminated materials were non-Gaussian. A kernel density estimator was used to analyze the non-Gaussian characteristic of the contaminated materials on a transformed projection axis. A linear mixture of the density functions was introduced to model the observations made on the projection axis. A new detection algorithm was designed using the mixture model and tested for 496 birds (248 dirty and 248 clean birds). A test on the sample birds revealed that the algorithm needed at least 12 contaminant pixels to reach the perfect detection results. The test also showed a false-positive rate of less than 5%
机译:开发确定家禽屠体表面是否存在粪便污染的算法对食品安全至关重要。已知带比例算法的全局阈值策略仅限于基于像素的检测。为了开发用于从多光谱图像检测car体的统计决策规则,通过参数和非参数方法估算了受污染和未受污染材料的概率密度函数。我们发现可以用高斯分布来模拟未受污染的家禽屠体,而受污染的材料是非高斯分布的。使用核密度估计器在转换的投影轴上分析受污染材料的非高斯特性。引入密度函数的线性混合来模拟在投影轴上所做的观察。使用混合模型设计了一种新的检测算法,并测试了496只禽(248只脏禽和248只干净禽)。对样本鸟类的测试表明,该算法至少需要12个污染像素才能达到理想的检测结果。测试还显示假阳性率低于5%

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