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Lip Image Segmentation in Mobile Devices Based on Alternative Knowledge Distillation

机译:基于替代知识蒸馏的移动设备中的唇像图像分割

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Lip image segmentation, as the first step in many lip-related tasks (e.g. automatic lipreading), is of vital significance for the subsequent procedures. Nowadays, with the increasing computational power of the mobile devices, mobile applications become more and more popular. In this paper, a new approach is proposed, which is able to segment the lip region in natural scenes and is of acceptable computational complexity to be implemented in mobile devices. Two networks including a complex teacher network and a compact student network with the same structure are employed. With the proposed remedy loss and the alternative knowledge distillation scheme, the student network can learn useful knowledge from the teacher network effectively and efficiently, and even rectify some of its segmentation errors. A dataset containing 49 people captured under natural scenes by various cellphone cameras is adopted for evaluation and the experiment results have demonstrated that the proposed student network even outperforms the teacher network with much less computational cost.
机译:唇像图像分割,作为许多唇部相关任务(例如自动Lipreading)的第一步,对随后的程序具有至关重要的意义。如今,随着移动设备的计算能力的增加,移动应用越来越受欢迎。在本文中,提出了一种新方法,该方法能够在自然场景中分段唇部区域,并且是在移动设备中实现的可接受的计算复杂性。使用两个网络,包括复杂的教师网络和具有相同结构的紧凑型学生网络。通过拟议的补救措施和替代知识蒸馏方案,学生网络可以有效且有效地从教师网络学习有用的知识,甚至纠正了一些分割错误。通过各种手机相机的自然场景中包含49人的数据集进行了评估,实验结果表明,拟议的学生网络甚至以较少的计算成本优于教师网络。

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