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Artist Agent: A Reinforcement Learning Approach to Automatic Stroke Generation in Oriental Ink Painting

机译:艺术家代理:东方水墨中笔画自动生成的强化学习方法

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Oriental ink painting, called Sumi-e , is one of the most distinctive painting styles and has attracted artists around the world. Major challenges in Sumi-e simulation are to abstract complex scene information and reproduce smooth and natural brush strokes. To automatically generate such strokes, we propose to model the brush as a reinforcement learning agent, and let the agent learn the desired brush-trajectories by maximizing the sum of rewards in the policy search framework. To achieve better performance, we provide elaborate design of actions, states, and rewards specifically tailored for a Sumi-e agent. The effectiveness of our proposed approach is demonstrated through experiments on Sumi-e simulation.
机译:名为 Sumi-e的东方水墨画是最独特的绘画风格之一,吸引了世界各地的艺术家。 Sumi-e仿真的主要挑战是提取复杂的场景信息并重现平滑自然的笔触。为了自动生成此类笔画,我们建议将画笔建模为强化学习代理,并通过最大化策略搜索框架中的奖励总和,让代理学习所需的画笔轨迹。为了获得更好的性能,我们提供了专门针对Sumi-e代理商量身定制的动作,状态和奖励的精心设计。通过在Sumi-e仿真上进行的实验证明了我们提出的方法的有效性。

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