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Learning to Synthesize and Manipulate Natural Images

机译:学习合成和处理自然图像

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摘要

Humans are avid consumers of visual content. Every day, people watch videos, play games, and share photos on social media. However, there is an asymmetry-while everybody is able to consume visual data, only a chosen few are talented enough to express themselves visually. For the rest of us, most attempts at creating realistic visual content end up quickly "falling off" what we could consider to be natural images. In this thesis, we investigate several machine learning approaches for preserving visual realism while creating and manipulating photographs. We use these methods as training wheels for visual content creation. These methods not only help users easily synthesize realistic photos but also enable previously not possible visual effects.
机译:人类是视觉内容的狂热消费者。人们每天都在社交媒体上观看视频,玩游戏和分享照片。但是,这是不对称的,尽管每个人都可以使用视觉数据,但只有少数人有才能在视觉上表达自己。对于我们其他人而言,大多数创建逼真的视觉内容的尝试都会很快“落空”,我们认为这是自然图像。在本文中,我们研究了几种在创建和处理照片时保留视觉真实感的机器学习方法。我们将这些方法用作视觉内容创建的训练轮。这些方法不仅可以帮助用户轻松合成逼真的照片,还可以实现以前不可能的视觉效果。

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