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얼굴 검출을 위한 캐스케이드 CNN 정확도에 관한 연구
A Study on Cascaded CNN Accuracy for Face Detection
우위네마조세린 ( Uwinema Joseline ) , 이해연 ( Hae-yeoun-lee )
UCI I410-ECN-0102-2022-500-000611140
이 자료는 4페이지 이하의 자료입니다.

Convolutional Neural Network is arguably the most popular deep learning architecture that is one of the most attractive area of research since it has various applications including face detection and recognition. The cascaded CNN operates at multiple resolution and rejects the background regions in the fast low resolution stages. By considering that advantage, we carry out the study on accuracy of cascaded CNN for face detection applications. The key point for our study is to analysing and improving the accuracy of cascaded CNN by applying simulations of algorithm where by we used Google's Tensorflow GPU as deep learning framework.

[자료제공 : 네이버학술정보]
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