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Image Segmentation for Enhancing Symbol Recognition in Prosthetic Vision

机译:用于提高假体视觉中符号识别的图像分割

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Current and near-term implantable prosthetic vision systems offer the potential to restore some visual function, but suffer from poor resolution and dynamic range of induced phosphenes. This can make it difficult for users of prosthetic vision systems to identify symbolic information (such as signs) except in controlled conditions. Using image segmentation techniques from computer vision, we show it is possible to improve the clarity of such symbolic information for users of prosthetic vision implants in uncontrolled conditions. We use image segmentation to automatically divide a natural image into regions, and using a fixation point controlled by the user, select a region to phosphenize. This technique improves the apparent contrast and clarity of symbolic information over traditional phosphenization approaches.
机译:目前和近期可植入的假体视觉系统提供恢复一些可视功能的可能性,但遭受较差的诱导磷的分辨率和动态范围。这可以使假肢系统的用户难以识别除了受控条件之外的象征性信息(例如符号)。使用计算机视觉的图像分段技术,我们表明可以提高对假体视觉植入物的用户在不受控制的条件下的符号信息的清晰度。我们使用图像分割自动将自然图像分成区域,并使用由用户控制的固定点,选择一个磷化的区域。该技术提高了传统磷化方法的象征信息的表观对比度和清晰度。

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