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Deja Vu: Motion Prediction in Static Images

机译:Deja Vu:静态图像中的运动预测

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This paper proposes motion prediction in single still images by learning it from a set of videos. The building assumption is that similar motion is characterized by similar appearance. The proposed method learns local motion patterns given a specific appearance and adds the predicted motion in a number of applications. This work (ⅰ) introduces a novel method to predict motion from appearance in a single static image, (ⅱ) to that end, extends of the Structured Random Forest with regression derived from first principles, and (ⅲ) shows the value of adding motion predictions in different tasks such as: weak frame-proposals containing unexpected events, action recognition, motion saliency. Illustrative results indicate that motion prediction is not only feasible, but also provides valuable information for a number of applications.
机译:本文通过从一组视频中学习来提出单个静止图像中的运动预测。建筑物的假设是相似的运动具有相似的外观。所提出的方法学习给定特定外观的局部运动模式,并将预测的运动添加到许多应用中。这项工作(ⅰ)引入了一种从单个静态图像的外观预测运动的新方法,(ⅱ)为此,通过从第一原理得出的回归对结构化随机森林进行了扩展,并且(shows)显示了增加运动的价值在不同任务中的预测,例如:包含意外事件的弱框架建议,动作识别,运动显着性。说明性结果表明,运动预测不仅可行,而且还为许多应用程序提供了有价值的信息。

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