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Salient object extraction for user-targeted video content association

机译:针对用户目标视频内容关联的显着对象提取

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The increasing amount of videos on the Internet and digital libraries highlights the necessity and importance of interactive video services such as automatically associating additional materials (e.g., advertising logos and relevant selling information) with the video content so as to enrich the viewing experience. Toward this end, this paper presents a novel approach for user-targeted video content association (VCA). In this approach, the salient objects are extracted automatically from the video stream using complementary saliency maps. According to these salient objects, the VCA system can push the related logo images to the users. Since the salient objects often correspond to important video content, the associated images can be considered as content-related. Our VCA system also allows users to associate images to the preferred video content through simple interactions by the mouse and an infrared pen. Moreover, by learning the preference of each user through collecting feedbacks on the pulled or pushed images, the VCA system can provide user-targeted services. Experimental results show that our approach can effectively and efficiently extract the salient objects. Moreover, subjective evaluations show that our system can provide content-related and user-targeted VCA services in a less intrusive way.
机译:互联网和数字图书馆上越来越多的视频,突显了交互式视频服务的必要性和重要性,例如自动将其他材料(例如广告徽标和相关销售信息)与视频内容相关联,以丰富观看体验。为此,本文提出了一种以用户为目标的视频内容关联(VCA)的新颖方法。在这种方法中,使用补充显着性图自动从视频流中提取显着对象。根据这些明显的对象,VCA系统可以将相关的徽标图像推送给用户。由于突出的对象通常对应于重要的视频内容,因此可以将关联的图像视为与内容相关。我们的VCA系统还允许用户通过鼠标和红外笔的简单交互将图像与首选视频内容相关联。此外,通过收集关于拉动或推动图像的反馈来了解每个用户的偏好,VCA系统可以提供以用户为目标的服务。实验结果表明,该方法能够有效,高效地提取显着物体。此外,主观评估表明,我们的系统可以以较少干扰的方式提供与内容相关且以用户为目标的VCA服务。

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