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Probabilistic white strip approach to plastic bottle sorting system

机译:塑料瓶分拣系统的概率白带方法

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One of the most important steps in plastic recycling industry is waste sorting. Plastic wastes are usually sort into two main categories, which are polyethylene terephthalate (PET) and non-PET. This paper proposes a probabilistic approach to automated plastic bottle sorting by integrating size, colour and distance modelling of the plastic waste. Firstly, white strips are identified by employing maximum likelihood approach. Information on the white and grey strips is then analyzed by using maximum a posteriori method. Feature histogram is built by factoring the output decision of each white strip with its size. Finally, likelihood test is performed to classify the waste into PET and non-PET. Our algorithm performs the best in all evaluation metrics compared to the benchmark algorithms. It is most suitable to be implemented in a factory with the ever changing surroundings.
机译:塑料回收行业最重要的步骤之一是废物分类。塑料废料通常分为两大类,即聚对苯二甲酸乙二醇酯(PET)和非PET。本文提出了一种通过整合塑料废物的大小,颜色和距离模型来自动对塑料瓶进行分拣的概率方法。首先,通过采用最大似然法来识别白条。然后使用最大后验方法分析白色和灰色条上的信息。特征直方图是通过将每个白色条带的输出决策与其大小相乘而构建的。最后,进行似然测试以将废物分类为PET和非PET。与基准算法相比,我们的算法在所有评估指标中表现最佳。它最适合在环境不断变化的工厂中实施。

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