Learning for Free: Object Detectors Trained on Synthetic Data

C. MacKay, Teng-Sheng Moh
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Abstract

A picture is worth a thousand words, or if you want it labeled, it's worth about ten cents per bounding box. Data is the fuel that powers modern technologies run by AI engines. High quality data is important to produce accurate machine learning models. Acquiring high quality labeled data however, can be expensive and time consuming. For small companies, academic researchers, or hobbyists, gathering large datasets that are not already publicly available is challenging. This research paper will describe the ability to generate labeled image data synthetically which can be used in supervised learning for object detection. This paper describes a system using 3D modeling software in conjunction with Generative Adversarial Networks and image augmentation that can create a diverse dataset of images containing objects with bounding boxes and labels. The result of this effort is an accurate object detector in an environment of aerial surveillance with no cost to the end user.
免费学习:在合成数据上训练的对象检测器
一张图片胜过千言万语,或者如果你想给它打上标签,每个边框只值10美分。数据是驱动人工智能引擎运行的现代技术的燃料。高质量的数据对于生成准确的机器学习模型非常重要。然而,获取高质量的标记数据可能既昂贵又耗时。对于小公司、学术研究人员或业余爱好者来说,收集尚未公开的大型数据集是一项挑战。本文将描述一种综合生成标记图像数据的能力,这种能力可用于目标检测的监督学习。本文描述了一个使用3D建模软件与生成对抗网络和图像增强相结合的系统,该系统可以创建包含具有边界框和标签的对象的不同图像数据集。这一努力的结果是一个精确的目标探测器在空中监视环境中,最终用户没有成本。
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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