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A Vision System for Interactive Object Learning

机译:互动对象学习的视觉系统

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We propose an architectural model for a responsive vision system based on techniques of reinforcement learning. It is capable of acquiring object representations based on the intended application. The system can be interpreted as an intelligent scanner that interacts with its environment in a perception-action cycle, choosing the camera parameters for the next view of an object depending on the information it has perceived so far. The main contribution of this paper Consists in the presentation of this general architecture which can be used for a variety of applications in computer vision and computer graphics. In addition, the funcionality of the system is demonstrated with the example of learning a sparse, view-based object representation that allows for the reconstruction of non-acquired views. First results suggest the usability of the proposed system.
机译:我们提出了一种基于加强学习技术的响应视觉系统的建筑模型。它能够基于预期的应用程序获取对象表示。该系统可以解释为智能扫描程序,它在感知 - 动作周期中与其环境进行交互,根据到目前为止的信息选择对象的下一个视图的摄像机参数。本文的主要贡献包括在计算机视觉和计算机图形中的各种应用中的展示中提出。此外,使用允许重建未获取的视图的稀疏,基于视图对象表示的示例来证明系统的血液性能。第一个结果表明所提出的系统的可用性。

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