Abstract

The intention of this paper is to present a novel systems have been providing applications for human tracing, method for real-time detection of human fall from the real-activity monitoring, fall detection and so on. Vision-based time video which is taken from the static digital camera which surveillance systems are getting a huge amount of interest is fixed in the indoor that provides a secure environment and specifically in the fields of security and assistance. Such systems to improve the quality of life of the old person, children, are built in order to achieve several tasks from detection of human patients and elderly. The proposed work is based on two presence to identification of irregular activities. In the past few techniques, an Ellipse approximation and Motion History decades, Vision-based surveillance has been broadly applied in Image (MHI). The novel work includes removal of shadows for industrial inspection, traffic control, security systems, medical and best detection of human in an indoor environment. In this work human fall detection by considering ellipse In this paper present detection of human fall from the real-time approximation, Motion history image and combining both the video which is taken from camera which is fixed in the room. The techniques. Results were compared all techniques for the techniques used here detect fall efficiently are ellipse different possible position of human and it shows that the approximation of human and motion history image and combined combined technique gives better accuracy and efficiency of both the techniques. human fall detection compared individuals techniques.

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