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FreeLabel: A Publicly Available Annotation Tool Based on Freehand Traces

机译:FreeLabel:基于徒手绘制的痕迹的公开可用的注释工具

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Large-scale annotation of image segmentation datasets is often prohibitively expensive, as it usually requires a huge number of worker hours to obtain high-quality results. Abundant and reliable data has been, however, crucial for the advances on image understanding tasks recently achieved by deep learning models. In this paper, we introduce FreeLabel, an intuitive open-source web interface that allows users to obtain high-quality segmentation masks with just a few freehand scribbles, in a matter of seconds. The efficacy of FreeLabel is quantitatively demonstrated by experimental results on the PASCAL dataset as well as on a dataset from the agricultural domain. Designed to benefit the computer vision community, FreeLabel can be used for both crowdsourced or private annotation and has a modular structure that can be easily adapted for any image dataset.
机译:图像分割数据集的大规模注释通常过于昂贵,因为它通常需要大量的工作时间才能获得高质量的结果。但是,丰富和可靠的数据对于深度学习模型最近实现的图像理解任务的进展至关重要。在本文中,我们介绍了FreeLabel,这是一个直观的开源Web界面,它使用户可以在几秒钟内用几笔徒手绘制的线条就获得高质量的分割蒙版。 FreeLabel的功效通过PASCAL数据集以及农业领域数据集上的实验结果进行了定量证明。 FreeLabel旨在使计算机视觉社区受益,它可用于众包注释或私人注释,并具有模块化结构,可以轻松地适用于任何图像数据集。

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