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SEGMENTING GENERIC FOREGROUND OBJECTS IN IMAGES AND VIDEOS

机译:在图像和视频中分割一般的综合对象

摘要

A method, system and computer program product for segmenting generic foreground objects in images and videos. For segmenting generic foreground objects in videos, an appearance stream of an image in a video frame is processed using a first deep neural network. Furthermore, a motion stream of an optical flow image in the video frame is processed using a second deep neural network. The appearance and motion streams are then joined to combine complementary appearance and motion information to perform segmentation of generic objects in the video frame. Generic foreground objects are segmented in images by training a convolutional deep neural network to estimate a likelihood that a pixel in an image belongs to a foreground object. After receiving the image, the likelihood that the pixel in the image is part of the foreground object as opposed to background is then determined using the trained convolutional deep neural network.
机译:一种用于分割图像和视频中的通用前景对象的方法,系统和计算机程序产品。为了分割视频中的通用前景对象,使用第一深度神经网络来处理视频帧中图像的出现流。此外,使用第二深度神经网络来处理视频帧中的光流图像的运动流。然后将外观流和运动流合并在一起,以组合互补的外观和运动信息,以对视频帧中的通用对象进行分段。通过训练卷积深度神经网络以估计图像中像素属于前景对象的可能性,可以在图像中对通用前景对象进行分割。接收到图像后,然后使用经过训练的卷积深度神经网络确定图像中像素是前景对象(而不是背景)的一部分的可能性。

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