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ICFHR 2020 Competition on Image Retrieval for Historical Handwritten Fragments

机译:ICFHR 2020历史手写片段图像检索比赛

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This competition succeeds upon a line of competitions for writer and style analysis of historical document images. In particular, we investigate the performance of large-scale retrieval of historical document fragments in terms of style and writer identification. The analysis of historic fragments is a difficult challenge commonly solved by trained humanists. In comparison to previous competitions, we make the results more meaningful by addressing the issue of sample granularity and moving from writer to page fragment retrieval. The two approaches, style and author identification, provide information on what kind of information each method makes better use of and indirectly contribute to the interpretability of the participating method. Therefore, we created a large dataset consisting of more than 120 000 fragments. Although the most teams submitted methods based on convolutional neural networks, the winning entry achieves an mAP below 40 %.
机译:这项竞赛是继对历史文献图像进行作家和风格分析的竞赛之后的。特别是,我们从样式和作者身份方面研究了大规模检索历史文档碎片的性能。对历史片段的分析是一个受过训练的人文主义者通常解决的难题。与以前的比赛相比,我们通过解决样本粒度问题以及从作家到页面片段的检索,使结果更加有意义。两种方法(样式和作者标识)提供有关每种方法可以更好地利用和间接有助于参与方法的可解释性的信息的信息。因此,我们创建了一个包含12万多个片段的大型数据集。尽管大多数团队都提交了基于卷积神经网络的方法,但获胜的参赛者的mAP低于40%。

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