PENERAPAN SSD-MOBILENET DALAM IDENTIFIKASI JENIS BUAH APEL

Zulfahmi Syahputra
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引用次数: 1

Abstract

Under conditions that determine whether an apple is good or not, the human eye tends to have a subjective perception due to the color composition factor. Errors often occur because it is done manually. Therefore we need a tool with a system that can choose apples automatically based on their type. So we need a system that can identify the ripeness of apples by implementing SSD-Mobilenet. The purpose of this research is to identify the types of apples using SSD-MobileNet. From the results of the analysis and testing it can be concluded that the test results on data testing with lots of data, namely 50 datasets taken randomly produce an accuracy of 82% and an error of 18%. The number of errors indicates that the classification results are not completely accurate. This can happen due to the lack of training data so that only a few dominant terms are used, causing errors in course costs. However, the results of this accuracy can be used as a reference that assistance using SSD-Mobilenet provides a high value of 82%. So this method can be used to analyze the ripeness of apples.
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- mobilenet在确定苹果类型时的应用
在判断苹果好坏的条件下,由于颜色构成因素,人眼往往会有一种主观的感知。错误经常发生,因为它是手动完成的。因此,我们需要一个带有系统的工具,可以根据苹果的类型自动选择苹果。因此,我们需要一个可以通过实现SSD-Mobilenet来识别苹果成熟度的系统。本研究的目的是利用SSD-MobileNet识别苹果的类型。从分析和测试的结果可以得出,对大量数据进行数据测试的测试结果,即随机取50个数据集,准确率为82%,误差为18%。错误的数量表明分类结果并不完全准确。这可能是由于缺乏训练数据,因此只使用了少数主要术语,从而导致课程成本错误。然而,这种准确性的结果可以作为参考,使用SSD-Mobilenet的辅助提供了82%的高值。所以这种方法可以用来分析苹果的成熟度。
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