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A human-perception-like image recognition system based on PAP vector representation with multi resolution concept

机译:一种基于PAS矢量表示的人感知的图像识别系统与多分辨率概念

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A human-like robust image recognition system inspired by a psychological brain model has been developed aiming at direct implementation in the VLSI hardware. The Principal Axis Projection (PAP) technique has been employed for feature vector generation, which very well represents the human-perception of similarity in images while substantially reducing the dimensionality. In this study, we have introduced the concept of multi resolution and PAP kernel scanning in the PAP based vector matching algorithm. As a result, very robust image recognition has been demonstrated in gray scale images as well as in binary images. Interestingly, a large digit pattern formed as an aggregation of miniature digits like that shown in Fig. 1 can also be successfully recognized not only in the constituent small digits but also in the entire feature. Although the present algorithm is computationally very expensive, it has been designed fully compatible to execution on VLSI chips which we have developed for vector matching and PAP vector generation.
机译:已经开发了一种由心理脑模型启发的人类的强大图像识别系统,其目的是在VLSI硬件中直接实现。主要轴投影(PAP)技术已经用于特征向量生成,其非常好地代表图像中相似性的人感知,同时大大降低了维度。在这项研究中,我们在基于PAP的向量匹配算法中引入了多分辨率和PAP内核扫描的概念。结果,已经在灰度图像以及二进制图像中进行了非常稳健的图像识别。有趣的是,形成为如图1所示的微型数字的聚合的大数字图案。图1中也可以不仅在组成小数字中成功地识别,而且可以在整个特征中成功地识别。虽然本算法是非常昂贵的,但它已经完全兼容于在VLSI芯片上的执行,我们开发了用于矢量匹配和罂粟矢量生成。

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