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Mixture of trees with three layers

机译:三层混合树木

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The Tree Structured Model (TSM) is proven effective for solving face detection, pose estimation and landmark localization in an unified model; however, the drawback of its processing time makes it unfavorable in practical applications, especially when dealing with cases of multiple faces. We propose the Mixture of Trees with Three Layers (3L-MoT) to improve the run-time speed. The 3L-MoT is composed of three component TSMs, the coarse TSM (c-TSM), median TSM(m-TSM) and the refined TSM (r-TSM), and a Bilateral Support Vector Regressor (BSVR). The c-TSM is built on the low-resolution octaves of samples so that it provides coarse but fast face detection. The m-TSM remove the false positive generate from c-TSM to speed up the process in r-TSM. The r-TSM is built on the high resolution octaves so that it can locate the landmarks on the face candidates given by the m-TSM and improve precision. The r-TSM based landmarks are used in the forward BSVR as references to locate the dense set of landmarks, which are then used in the backward BSVR to relocate the landmarks with large localization errors. The forward and backward regression goes on iteratively until convergence. In spite of the negative correlation between run-time speed and performance, the performance of the 3L-MoT is validated on Multi-PIE benchmark databases to be similar with TSM[10] while enhanced in processing time.
机译:树结构模型(TSM)被证明可有效解决统一模型中的人脸检测,姿态估计和界标定位问题;但是,其处理时间的缺点使其在实际应用中不受欢迎,特别是在处理多张面孔的情况下。我们提出了三层混合树(3L-MoT),以提高运行速度。 3L-MoT由三部分TSM,粗略TSM(c-TSM),中值TSM(m-TSM)和精简TSM(r-TSM)以及双边支持向量回归器(BSVR)组成。 c-TSM建立在样本的低分辨率八度音阶上,因此它提供了粗略但快速的人脸检测。 m-TSM消除了来自c-TSM的误报,以加快r-TSM的处理过程。 r-TSM建立在高分辨率八度音阶上,因此它可以在m-TSM给定的人脸候选图像上定位界标,并提高精度。基于r-TSM的地标在前向BSVR中用作定位密集的地标集的参考,然后在后向BSVR中将其用于定位具有较大定位误差的地标。向前和向后回归迭代进行,直到收敛为止。尽管运行时速度和性能之间存在负相关关系,但在Multi-PIE基准数据库上验证了3L-MoT的性能,使其与TSM相似[10],但处理时间有所增加。

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