刀具损伤图像数据集
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研制出一套具有镜头保护与清洁功能的刀具损伤图像在位采集装置,将视觉系统保护装置,刀具清洗系统与数控机床集成,实现刀具图像在位采集,避免拆卸刀具离线监测,兼顾检测精度与效率。基于已搭建的基于机器视觉的刀具损伤在位监测系统,针对立铣刀开发了基于大数据的刀具损伤图像数据集。目前数据集已有超过50张原始图片,数据集中刀具损伤类型覆盖磨损、破损、崩刃、裂纹等常见类型。数据量为5.87MB。
A dedicated in-situ collection device for tool damage images with lens protection and cleaning functions was developed. The vision system protection device, tool cleaning system and CNC machine tool were integrated to achieve in-situ collection of tool images, avoiding offline monitoring by disassembling the tool while balancing detection accuracy and efficiency. Based on the established machine vision-based in-situ tool damage monitoring system, a big data-based tool damage image dataset was developed for end mills. Currently, the dataset contains more than 50 original images, covering common tool damage types such as wear, chipping, edge breakage, cracks and other typical damage patterns. The total size of the dataset is 5.87 MB.




