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Detecting texts of arbitrary orientations in natural images

机译:在自然图像中检测任意方向的文本

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With the increasing popularity of practical vision systems and smart phones, text detection in natural scenes becomes a critical yet challenging task. Most existing methods have focused on detecting horizontal or near-horizontal texts. In this paper, we propose a system which detects texts of arbitrary orientations in natural images. Our algorithm is equipped with a two-level classification scheme and two sets of features specially designed for capturing both the intrinsic characteristics of texts. To better evaluate our algorithm and compare it with other competing algorithms, we generate a new dataset, which includes various texts in diverse real-world scenarios; we also propose a protocol for performance evaluation. Experiments on benchmark datasets and the proposed dataset demonstrate that our algorithm compares favorably with the state-of-the-art algorithms when handling horizontal texts and achieves significantly enhanced performance on texts of arbitrary orientations in complex natural scenes.
机译:随着实用视觉系统和智能电话的日益普及,自然场景中的文本检测已成为一项关键而又具有挑战性的任务。现有的大多数方法都集中在检测水平或接近水平的文本上。在本文中,我们提出了一种检测自然图像中任意方向的文本的系统。我们的算法配备了两级分类方案和两套专门为捕获文本的固有特征而设计的功能。为了更好地评估我们的算法并将其与其他竞争算法进行比较,我们生成了一个新的数据集,其中包括不同现实情况下的各种文本;我们还提出了绩效评估协议。在基准数据集和提出的数据集上进行的实验表明,在处理水平文本时,我们的算法与最新算法相比具有优势,并且在复杂自然场景中对任意方向的文本都具有显着增强的性能。

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