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Internal Quality Estimation of Watermelon by Multiple Acoustic Signal Sensing

机译:多种声学信号感应的西瓜内部质量估计

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Watermelons are usually sorted by theirs weight and internal quality. Some automated watermelon weight sorters have been developed and operated in watermelon production areas. However, inspection of internal quality of watermelon is still performed by manually. Principal method of identifying internal defect of watermelon is analyzing the percussion sound of watermelon by human experts. Development of non-destructive evaluation technique for internal quality of watermelon is required to reduce human decision errors. The objective of this study was to develop a non-destructive sorting system which can detect internal defect of watermelons. The internal defect evaluation system has a constant-force hitting hammer to generate the acoustic sound, a multi-point sound signal acquiring system, a noise removal circuit, and a signal processing and quality evaluation program. An internal quality prediction model by PLSR (Partial Least Square Regression) was developed by analyzing the percussion sound of watermelons. Using the developed model, the prediction result shows that the overall prediction accuracy was 90.1%, and severely defected watermelons were identified perfectly.
机译:西瓜通常因其重量和内部质量而排序。一些自动化的西瓜重量分拣机已经在西瓜生产区开发并运行。但是,仍然通过手动进行西瓜的内部质量检查。鉴定西瓜内部缺陷的主要方法正在分析人类专家西瓜的打击乐声。需要开发西瓜内部品质的非破坏性评估技术来减少人类决策误差。本研究的目的是开发一种非破坏性分拣系统,可以检测西瓜的内部缺陷。内部缺陷评估系统具有恒定力的击球锤,以产生声音,多点声音信号获取系统,噪声去除电路和信号处理和质量评估程序。通过分析西瓜的冲击声,通过PLSR(部分最小二乘回归)内部质量预测模型。使用开发的模型,预测结果表明,整体预测精度为90.1%,并且完全识别了严重缺陷的西瓜。

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