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License plate localization using MSERs and vehicle frontal mask localization using visual saliency for vehicle recognition

机译:使用MSER进行车牌定位以及使用视觉显着性进行车辆识别的车辆前罩定位

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This paper presents a new method for the vehicle license plate and the frontal mask localization. The proposed license plate localization initializes candidate regions based on maximally stable extremal regions (MSERs). Then, the candidate regions are categorized into three classes of license plate character components, plate background components and the other components by using intensity, size, aspect ratio, and orientation of those candidate regions as features. Finally, a rule-based decision is applied to verify the candidate regions. For the frontal mask localization, we develop the method that does not refer to license plate location. Visual saliency, edge projection, symmetrical property, and Pyramid Histogram Oriented Gradients (PHOG) are applied in our proposed the frontal mask localization process. The experiments show that the proposed method can provide a precision of 95.32% and a recall of 98.07% for license plate localization process, and a precision of 97.00 % and a recall of 97.98% for the frontal mask localization process.
机译:本文提出了一种新的车牌定位方法和前面具定位方法。拟议的车牌定位基于最大稳定的极值区域(MSER)初始化候选区域。然后,通过使用候选区域的强度,大小,纵横比和方向作为特征,将候选区域分为三类车牌字符成分,牌照背景成分和其他成分。最后,基于规则的决策将应用于验证候选区域。对于额罩的定位,我们开发了不涉及车牌位置的方法。视觉显着性,边缘投影,对称特性和金字塔直方图定向梯度(PHOG)被应用于我们提出的额叶面罩定位过程中。实验表明,该方法可为车牌定位过程提供95.32%的查准率和98.07%的召回率,为正面罩定位过程提供97.00%的查准率和97.98%的查准率。

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