A Method for Blur and Similarity Transform Invariant Object Recognition

Ville Ojansivu, J. Heikkilä
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引用次数: 28

Abstract

In this paper, we propose novel blur and similarity transform (i.e. rotation, scaling and translation) invariant features for the recognition of objects in images. The features are based on blur invariant forms of the log-polar sampled phase-only bispectrum and are invariant to centrally symmetric blur, including linear motion and out of focus blur. An additional advantage of using the phase-only bispectrum is the invariance to uniform illumination changes. According to our knowledge, the invariants of this paper are the first blur and similarity transform invariants in the Fourier domain. We have compared our features to the blur invariants based on complex image moments using simulated and real data. The moment invariants have not been evaluated earlier in the case of similarity transform. The results show that our invariants can recognize objects better in the presence of noise.
模糊与相似变换不变目标识别方法
在本文中,我们提出了新的模糊和相似变换(即旋转、缩放和平移)不变特征来识别图像中的物体。这些特征是基于对数极采样纯相位双谱的模糊不变性形式,并且对中心对称模糊不变性,包括线性运动和失焦模糊。使用纯相位双谱的另一个优点是对均匀光照变化的不变性。根据我们的知识,本文的不变量是傅里叶域中的第一类模糊和相似变换不变量。我们使用模拟和真实数据将我们的特征与基于复杂图像矩的模糊不变量进行了比较。在相似变换的情况下,矩不变量之前没有被求值。结果表明,我们的不变量在有噪声的情况下可以更好地识别目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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