人工智能
蘑菇
训练集
计算机科学
集合(抽象数据类型)
学习迁移
试验装置
机器学习
计算机视觉
模式识别(心理学)
食品科学
生物
程序设计语言
作者
William H. Sevilla,Rowell M. Hernandez,Michael Angelo D. Ligayo,Michael T. Costa,Allan Q. Quismundo
标识
DOI:10.1109/dasa54658.2022.9765046
摘要
A way of classifying if a mushroom is edible or not is presented in this study. As mushrooms are slowly becoming popular, classifying these mushrooms would be crucial as some of the toxic mushrooms that could be found in the mushrooms can kill a person or give them a bad case of stomachache and other effects. Using the YOLOv3 model a model is created that can classify these mushrooms. The model that was chosen has gotten an mAP score of 96.68% and can detect most of the inputs that are used to test the model. The model is also able to achieve a 90% accuracy as it was able to correctly detect 18 photos out of 20 when tested. This model could be used to ensure that there would not be any toxic mushrooms in houses or parks that a child could just pick up and swallow without being noticed by any adults.
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