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Attention biased speeded up robust featureS (AB-SURF): A neurally-inspired object recognition algorithm for a wearable aid for the visually-impaired

机译:注意偏向加速了鲁棒特征(AB-SURF):一种神经启发的对象识别算法,可为视障人士提供可穿戴的辅助设备

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Humans recognize objects effortlessly, in spite of changes in scale, position, and illumination. Emulating human recognition in machines remains a challenge. This paper describes computer vision algorithms aimed at helping visually-impaired people locate and recognize objects. Our neurally-inspired computer vision algorithm, called Attention Biased Speeded Up Robust Features (AB-SURF), harnesses features that characterize human visual attention to make the recognition task more tractable. An attention biasing algorithm selects the most task-driven salient regions in an image. Next, the SURF object recognition algorithm is applied on this narrowed subsection of the original image. Testing on images containing 5 different objects exhibits accuracies ranging from 80% to 100%. Furthermore, testing on images containing 10 objects yields accuracies between 63% and 96% for the 5 objects that occupy the largest area within the image subwindows chosen by attention biasing. A five-fold speed-up is attained using AB-SURF as compared to the time estimated for sliding window recognition on the same images
机译:尽管规模,位置和光照发生了变化,人类仍可以毫不费力地识别物体。在机器中模拟人类识别仍然是一个挑战。本文介绍了旨在帮助视障人士定位和识别对象的计算机视觉算法。我们的神经启发式计算机视觉算法,称为注意力偏向加速健壮特征(AB-SURF),利用表征人类视觉注意力的特征使识别任务更加容易处理。注意偏向算法选择图像中大多数任务驱动的显着区域。接下来,将SURF对象识别算法应用于原始图像的此缩小部分。在包含5个不同对象的图像上进行测试可显示80%到100%的精度。此外,对包含10个对象的图像进行测试,得出5个对象的准确度在63%到96%之间,这5个对象占据了注意力偏向所选择的图像子窗口中最大的区域。与为在同一图像上进行滑动窗口识别而估算的时间相比,使用AB-SURF可以实现五倍的加速

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