On Novel System for Detection Video Impairments Using Unsupervised Machine Learning Anomaly Detection Technique
Nermin Goran,
Alen Begović,
Alem Čolaković
Abstract:Recently, the necessity of video testing at the point of reception has become a challenge for video distributors. This paper presents a new system framework for managing the quality of video degradation detection. The system is based on objective video quality assessment metrics and unsupervised machine learning techniques that use the dimensionality reduction of time series. It was demonstrated that it is possible to detect anomalies in the video during video streaming in soft real time. In addition, the mode… Show more
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