What is the Reward for Handwriting? -- Handwriting Generation by Imitation Learning
Keisuke Kanda,
Brian Kenji Iwana,
Seiichi Uchida
Abstract:Analyzing the handwriting generation process is an important issue and has been tackled by various generation models, such as kinematics based models and stochastic models. In this study, we use a reinforcement learning (RL) framework to realize handwriting generation with the careful future planning ability. In fact, the handwriting process of human beings is also supported by their future planning ability; for example, the ability is necessary to generate a closed trajectory like '0' because any shortsighted… Show more
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