Image Analysis Techniques for Ripeness Detection of Palm Oil Fresh Fruit Bunches

Shuwaibatul Aslamiah Ghazali, H. Selamat, Z. Omar, R. Yusof
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引用次数: 6

Abstract

Being one of the biggest producers and exporters of palm oil and palm oil products, Malaysia has an important role to play in fulfilling the growing global need for oils and fats sustainably. Quality is an important factor that ensuring palm oil industries fulfill the demands of palm oil product. There has significant relationship between the quality of the palm oil fruits and the content of its oil. Ripe FFB gives more oil content, while unripe FFB give the least content. Overripe FFB shows that the content of oil is deteriorates. There have 4 classes of ripeness stages involves in this paper which are ripe, unripe, underipe and overripe. The proposes approach in this paper uses color features and bag of visual word  for classifying oil palm fruit ripeness stages. Experiments conducted in this paper consisted of smartphone camera for image acquisition, python and matlab software for image pre processing and Support Vector Machine for classification. A total of 400 images is taken in a few plant in north Malaysia. Experiments involved on a dataset of 360 images for training for four classes and 40 images for testing. The average accuracy for the 4 classes of the FFB by color features is 57% while the accuracy for ripeness classification by using bag of visual word is 70%.
棕榈油鲜果束成熟度检测的图像分析技术
作为棕榈油和棕榈油产品的最大生产国和出口国之一,马来西亚在可持续地满足日益增长的全球油脂需求方面发挥着重要作用。质量是确保棕榈油行业满足棕榈油产品需求的重要因素。棕榈油果实的品质与其含油量有显著的关系。成熟的白豆含油量多,未成熟的白豆含油量少。过熟的FFB表明油的含量变差。本文涉及到的成熟阶段有成熟、未成熟、欠熟和过熟4类。本文提出了一种利用颜色特征和视觉词袋对油棕果实成熟期进行分类的方法。本文的实验使用智能手机摄像头进行图像采集,使用python和matlab软件进行图像预处理,使用支持向量机进行分类。在马来西亚北部的几个工厂共拍摄了400张照片。实验涉及一个包含360个图像的数据集,用于四个类的训练和40个用于测试的图像。利用颜色特征对4类果仁进行成熟度分类的平均准确率为57%,而利用视觉词袋对果仁进行成熟度分类的平均准确率为70%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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