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Local quantized extrema quinary pattern: a new descriptor for biomedical image indexing and retrieval

机译:局部量化极值五进制模式:用于生物医学图像索引和检索的新描述符

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In this paper a new feature descriptor'local quantized extrema quinary pattern {LQEQryP)' is proposed for biomedical image indexing and retrieval. The binary and non-binary codings such as local binary patterns (LBP), local ternary patterns (LTP) and local quinary patterns (LQP) encode the gray scale relationship between the centre pixel and its surrounding neighbours in two dimensional (2D) local region of an image, whereas the proposed method encodes the spatial relation between any pair of neighbours in a local region along the given directions (i.e. 0°, 45°, 90° and 135°) for a given centre pixel in an image. The novelty of the proposed method is it uses quinary pattern features from horizontal-vertical-diagonal-anti-diagonal (HVDA_7) structure of directional local extrema values of an image to encode more spatial structure information which lead to better retrieval. LQEQryP also provides a significant increase in discriminative power by allowing larger local pattern neighbourhoods. The experiments have been carried out for proving the worth of proposed algorithm on three different types of benchmark biomedical databases; (ⅰ) computed tomography (CT) scanned lung image databases named as LIDC-IDRI-CT and VIA/I-ELCAP-CT, (ⅱ) brain magnetic resonance imaging (MPI) database named as OASIS-MRI. The results demonstrate the superiority of the proposed method in terms of average retrieval precision (ARP) and average retrieval rate (ARR) over state-of-the-art feature extraction techniques such as LBP, LTP and LQEP, etc.
机译:本文提出了一种新的特征描述符“局部量化极值五进制模式(LQEQryP)”,用于生物医学图像的索引和检索。诸如本地二进制模式(LBP),本地三进制模式(LTP)和本地五进制模式(LQP)之类的二进制和非二进制编码在二维(2D)局部区域中编码中心像素与其周围邻居之间的灰度关系对于图像中的给定中心像素,所提出的方法对局部区域中沿给定方向(即0°,45°,90°和135°)的任何一对相邻邻居之间的空间关系进行编码。该方法的新颖之处在于它使用了图像的方向局部极值的水平-垂直-对角线-反对角线(HVDA_7)结构中的五进制模式特征来编码更多的空间结构信息,从而导致更好的检索。 LQEQryP还允许较大的局部模式居民区,从而大大提高了判别能力。已经进行了实验以证明在三种不同类型的基准生物医学数据库上所提出算法的价值。 (ⅰ)电脑断层扫描(CT)扫描的肺图像数据库,名为LIDC-IDRI-CT和VIA / I-ELCAP-CT,(ⅱ)脑磁共振成像(MPI)数据库,名为OASIS-MRI。结果证明了该方法在平均检索精度(ARP)和平均检索速率(ARR)方面优于LBP,LTP和LQEP等最新的特征提取技术。

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