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Semi-automatic Facial Key-Point Dataset Creation

机译:半自动面部关键点数据集创建

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This paper presents a semi-automatic method for creating a large scale facial key-point dataset from a small number of annotated images. The method consists of annotating the facial images by hand, training Active Appearance Model (AAM) from the annotated images and then using the AAM to annotate a large number of additional images for the purpose of training a neural network. The images from the AAM are then re-annotated by the neural network and used to validate the precision of the proposed neural network detections. The neural network architecture is presented including the training parameters.
机译:本文提出了一种从少量注释图像创建大型面部关键点数据集的半自动方法。该方法包括用手,从注释图像训练主动外观模型(AAM),然后使用AAM向训练大量附加图像来注释,以训练神经网络。然后由神经网络重新注释来自AAM的图像,并用于验证所提出的神经网络检测的精度。提出了神经网络架构,包括训练参数。

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