Resolution enhancement of images for further pattern recognition applications

被引:9
作者
Awad, Maha [1 ]
Hashad, Fatma G. [2 ]
Abd Elnaby, Mustafa M. [1 ]
El Khamy, Said E. [3 ]
Faragallah, Osama S. [4 ,6 ]
Abbas, Alaa M. [2 ]
El-Khobby, Heba A. [1 ]
El-Rabaie, El-Sayed M. [2 ]
Diab, Salaheldin M. [2 ]
Sallam, Bassiouny M. [2 ]
Alshebeili, Saleh A. [5 ]
Abd El-Samie, Fathi E. [2 ]
机构
[1] Tanta Univ, Fac Engn, Dept Elect & Elect Commun, Tanta, Egypt
[2] Menoufia Univ, Fac Elect Engn, Dept Elect & Elect Commun, Menoufia 32952, Egypt
[3] Univ Alexandria, Dept Elect Engn, Fac Engn, Alexandria 21544, Egypt
[4] Menoufia Univ, Dept Comp Sci & Engn, Fac Elect Engn, Menoufia 32952, Egypt
[5] King Saud Univ, 2KACST, TIC Radio Frequency & Photon E Soc RFTONICS, Riyadh, Saudi Arabia
[6] Taif Univ, Dept Informat Technol, Coll Comp & Informat Technol, Al Hawiya 21974, Saudi Arabia
来源
OPTIK | 2016年 / 127卷 / 01期
关键词
Image interpolation; Pattern recognition; Cepstral analysis; CEPSTRAL COEFFICIENTS; SIGNAL;
D O I
10.1016/j.ijleo.2015.08.122
中图分类号
O43 [光学];
学科分类号
070207 [光学];
摘要
In storing large databases of images such as fingerprint and medical databases, the required memory size becomes a great challenge. This work demonstrates a framework for reducing the size of large image databases used in pattern recognition applications with decimation, and reconstructing the images with their original sizes using interpolation for feature extraction. For pattern recognition applications, a new trend based on Mel-Frequency Cepstral Coefficients (MFCCs) is presented in the paper. To reconstruct the images to their original sizes, interpolation methods like bilinear, bicubic, warped-distance, and neural methods are investigated and compared. The sensitivity of the extracted features from the images to the interpolation method used is studied. For the feature extraction process, the interpolated images are converted into one dimensional signals with lexicographic ordering and employed in time domain or transformed to Discrete Wavelet Transform (DWT), Discrete Sine Transform (DST), or Discrete Cosine Transform (DCT) domain. The MFCCs and polynomial shape coefficients are then extracted to generate the database of features, which can be used for pattern identification using neural networks. The pattern recognition is conducted by getting features from the pattern image under test. Experimental results show that feature extraction from an interpolated image to retain the original image dimensions can be used robustly for pattern recognition. In addition, the results reveal that the best domain for feature extraction is the DCT. (C) 2015 Elsevier GmbH. All rights reserved.
引用
收藏
页码:484 / 492
页数:9
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