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Performance optimization of rotation-tolerant Viola-Jones-based blackbird detection

机译:基于旋转的旋转中提琴的Blackbird检测性能优化

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摘要

The research described in this paper investigates the rotational robustness of the Viola-Jones algorithm (VJA) object detection method when used for red-winged blackbird (Agelaius phoeniceus) detection. VJA has been successfully used for face detection, but can be adapted to detect a variety of objects. This work uses the histogram of oriented gradients (HOG) descriptor to train the blackbird classifier. Since VJA object detection is inherently not invariant to in-plane object rotation, additional effort is required during training and detection. The proposed method extends the object detection framework developed by Viola and Jones to efficiently handle rotated blackbirds and provide a balance between detection accuracy and computation cost.
机译:本文中描述的研究调查了在用于红翼黑鸟(Agelaius Phoeniceus)检测时的中提琴 - 琼斯算法(VJA)对象检测方法的旋转稳健性。 VJA已成功用于面部检测,但可以适用于检测各种物体。 这项工作使用面向渐变(HOG)描述符的直方图来培训BlackBird分类器。 由于VJA对象检测固有地不在面内对象旋转,因此在训练和检测期间需要额外的努力。 该方法扩展了由Viola和Jones开发的物体检测框架,以有效地处理旋转的黑鸟,并在检测精度和计算成本之间提供平衡。

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