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A framework for feature based dynamic intravideo indexing

机译:基于特征的动态视频内索引的框架

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In recent years, video communication has established its dominance in the communication world as it has become an integral part of our everyday life ranging from handheld device videos to broadcasted video news (from unstructured to highly structured). It is required to formalize video semantics for making users able to refine the relevant information and get what they need. A framework for dynamic intra video indexing is proposed and designed for human focused video. The term "Human Focused" is used to focus the human who is the most interesting and important feature in every video. So identification of certain features which are relevant to humans and indexing the video based on human gender and age is the main aim of study. The main purpose is identification of human faces, classifying videos with respect to age and gender, and displaying the results of current completed experiments. The appropriate set of features will lead to identification of similar video provided with a description. The focus is towards human and object interaction and working towards algorithms to explore these interactions by using available information, the indexing of the visual scene as a whole, while the main focus would be on human gender and age. Evaluation will be done by comparing machine generated indexes with human detected ones. The proposed research aim to make a relevant input into the growing area of multiple modalities to extract key features with in a video and propose a novel system for video indexing.
机译:近年来,视频通信已在通信世界中确立了统治地位,因为它已成为我们日常生活中不可或缺的一部分,从手持设备视频到广播的视频新闻(从非结构化到高度结构化)。需要规范化视频语义,以使用户能够精炼相关信息并获得他们所需的信息。提出并设计了一种动态帧内视频索引框架,用于人类关注的视频。术语“以人为本”用于聚焦每个视频中最有趣,最重要的功能。因此,识别与人类相关的某些特征并根据人类的性别和年龄对视频进行索引是研究的主要目的。主要目的是识别人脸,按年龄和性别分类视频并显示当前已完成实验的结果。适当的功能集将导致对带有说明的相似视频进行标识。重点是人与对象的交互作用,并致力于通过使用可用信息,对整个视觉场景进行索引来探索这些交互作用的算法,而主要重点将放在人类的性别和年龄上。通过将机器生成的指标与人类检测到的指标进行比较来进行评估。拟议的研究旨在将相关信息输入多种模式的增长领域,以提取视频中的关键特征,并提出一种新颖的视频索引系统。

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