Shivkaran Ravidas

Work place: Dept. of Electrical Engineering, School of Engineering, Gautam Buddha University, Gautam Buddha Nagar, INDIA

E-mail: mailmekaran@gmail.com

Website:

Research Interests: Engineering

Biography

Shivkaran Ravidas has received B.E. in Electronics Engineering from Dr. Baba Saheb Ambedkar Marathwada University, Aurangabad, India, in 2002 and M.E .in Electronics Engineering from SGGS College of Engg. and Technology, Nanded,  India, in 2006. Currently he is working as research scholar in the Department of Electrical Engineering, Gautam Buddha University , Greater Noida, India. He has published several papers in reputed journals & conferences.  His main areas of research interest are image processing, machine learning and Multi-view face Detection.

Author Articles
An Efficient Scheme of Deep Convolution Neural Network for Multi View Face Detection

By Shivkaran Ravidas M.A. Ansari

DOI: https://doi.org/10.5815/ijisa.2019.03.06, Pub. Date: 8 Mar. 2019

The aim of this paper is to detect multi-view faces using deep convolutional neural network (DCNN). Multi-view face detection is a challenging issue due to wide changes in appearance under different pose expression and illumination conditions. To address challenges, we designed a deep learning scheme with different network structures to enhance the multi view faces. More specifically, we design cascade architecture on convolutional neural networks (CNNs) which quickly reject non-face regions. Implementation, detection and retrieval of faces will be obtained with the help of direct visual matching technology. Further, a probabilistic calculation of resemblance among the images of face will be conducted on the basis of the Bayesian analysis for achieving detection of various faces. Experiment detects faces with ±90 degree out of plane rotations. Fine-tuned AlexNet is used to detect multi view faces. For this work, we extracted examples of training from AFLW (Annotated Facial Landmarks in the Wild) dataset that involve 21K images with 24K annotations of the face.

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