结合人脸检测和新颖性识别视觉生活日志中的重要事件

A. Doherty, A. Smeaton
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引用次数: 37

摘要

SenseCam是一种被动捕捉可穿戴相机,佩戴在脖子上,平均每天拍摄近2000张照片,相当于每年拍摄超过65万张照片。它被用来创建个人生活日志或佩戴者生活的视觉记录,并产生有助于人类记忆的信息。为了使如此大量的视觉信息发挥作用,人们普遍认为,这些信息应该被组织成“事件”,佩戴者平均一年大约有8000次这样的事件。在自动将SenseCam图像分割成事件时,希望自动强调更重要的事件,减少对平凡/常规事件的强调。本文引入了新奇的概念,以帮助确定生活日志中事件的重要性。通过将新颖性与面对面对话检测相结合,我们的系统改进了以前的方法。在我们的实验中,我们使用了一个大的生活日志图像集,总共有288,479张图像,由6个用户在一个月的时间内收集。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combining Face Detection and Novelty to Identify Important Events in a Visual Lifelog
The SenseCam is a passively capturing wearable camera, worn around the neck and takes an average of almost 2,000 images per day, which equates to over 650,000 images per year.It is used to create a personal lifelog or visual recording of the wearer's life and generates information which can be helpful as a human memory aid. For such a large amount of visual information to be of any use, it is accepted that it should be structured into "events", of which there are about 8,000 in a wearer's average year. In automatically segmenting SenseCam images into events, it is desirable to automatically emphasise more important events and decrease the emphasis on mundane/routine events. This paper introduces the concept of novelty to help determine the importance of events in a lifelog. By combining novelty with face-to-face conversation detection, our system improves on previous approaches. In our experiments we use a large set of lifelog images, a total of 288,479 images collected by 6 users over a time period of one month each.
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