一种新的多岩心汗孔提取及性能评价方案

Zia U H. Saquib, S. Soni
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引用次数: 0

摘要

本文提出了一种新的汗孔检测与提取方案(汗孔属于指纹3级微特征之一)。所提出的方案将两种不同的方法无缝融合到一个新的模型中,该模型能够从通过光学实时扫描设备捕获的指纹图像中获得良好的结果,其分辨率范围从基本的500 dpi(尽管人们普遍认为在该分辨率下获得的图像质量不够高)到2000ppi。然后在多个核心上评估所提出模型的性能,从单核到四核。所提出的方案在公开可用的指纹数据集上成功地进行了测试,这些数据集使用Cross Match Verifier 300扫描仪以500 dpi扫描(这些样本中孔隙非常明显),以及144张分辨率为2000ppi的图像。实验结果清楚地表明,与顺序方法相比,并行方法的性能提高了50.91%(32位平台)和79.11%(64位平台)。随着代码优化和数据集大小的增加,性能的提高肯定会进一步提高。
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A novel scheme for sweat-pore extraction & performance evaluation on multi-core
This paper presents a novel scheme for the detection and extraction of sweat pores (categorized as one of the fingerprint level 3 micro features). The proposed scheme seamlessly fuses two distinct methods into a novel model capable of obtaining good results from fingerprint images captured through optical live-scan devices with resolutions ranging from basic 500 dpi (despite the common belief that images obtained at this resolution are not of high enough quality) to 2000ppi. The performance of the presented model is then evaluated over multiple cores, spanning from single core to quad cores. The proposed scheme is successfully tested on publicly available fingerprint datasets, which were scanned with Cross Match Verifier 300 scanner at 500 dpi (pores are quite visible in these samples), as well as on 144 images at 2000ppi resolution. The experimental results clearly show a significant performance gain of 50.91% (32-bit platform) and 79.11% (64-bit platform) for parallelized approach over sequential approach. The performance gain is surely to increase further with few more code optimizations and with increase in the dataset size.
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