Object Specific Deep Learning Feature and Its Application to Face Detection

X Hou, K Sun, L Shen, G Qiu - arXiv preprint arXiv:1609.01366, 2016 - arxiv.org
X Hou, K Sun, L Shen, G Qiu
arXiv preprint arXiv:1609.01366, 2016arxiv.org
We present a method for discovering and exploiting object specific deep learning features
and use face detection as a case study. Motivated by the observation that certain
convolutional channels of a Convolutional Neural Network (CNN) exhibit object specific
responses, we seek to discover and exploit the convolutional channels of a CNN in which
neurons are activated by the presence of specific objects in the input image. A method for
explicitly fine-tuning a pre-trained CNN to induce an object specific channel (OSC) and …
We present a method for discovering and exploiting object specific deep learning features and use face detection as a case study. Motivated by the observation that certain convolutional channels of a Convolutional Neural Network (CNN) exhibit object specific responses, we seek to discover and exploit the convolutional channels of a CNN in which neurons are activated by the presence of specific objects in the input image. A method for explicitly fine-tuning a pre-trained CNN to induce an object specific channel (OSC) and systematically identifying it for the human face object has been developed. Based on the basic OSC features, we introduce a multi-resolution approach to constructing robust face heatmaps for fast face detection in unconstrained settings. We show that multi-resolution OSC can be used to develop state of the art face detectors which have the advantage of being simple and compact.
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