Systems Engineering and Electronics ›› 2020, Vol. 42 ›› Issue (2): 292-300.doi: 10.3969/j.issn.1001-506X.2020.02.06
Previous Articles Next Articles
Ying AN(), Xunli FAN(
), Li CHEN(
), Pei LIU(
)
Received:
2019-07-29
Online:
2020-02-01
Published:
2020-01-23
Supported by:
CLC Number:
Ying AN, Xunli FAN, Li CHEN, Pei LIU. Image fusion combining FABEMD with improved saliency detection[J]. Systems Engineering and Electronics, 2020, 42(2): 292-300.
Table 1
Comparison of objective performance of five groups of images"
融合图像 | 融合规则 | 算法 | ||||||||
本文算法 | MSVD | GF | CP | ASR | CBF | CSR | WLS | LatLRR | ||
S1 | EN | 7.178 9 | 6.470 0 | 7.251 8 | 6.800 5 | 6.567 3 | 7.050 6 | 6.523 6 | 6.984 7 | 6.646 8 |
SD | 50.546 3 | 23.850 1 | 44.620 9 | 31.276 7 | 26.249 1 | 40.941 6 | 25.183 7 | 39.044 3 | 26.796 3 | |
MI | 1.246 7 | 0.881 5 | 2.790 3 | 0.584 4 | 0.811 2 | 1.417 8 | 0.854 6 | 0.928 5 | 0.831 4 | |
SSIM | 0.728 3 | 0.770 8 | 0.718 6 | 0.713 4 | 0.743 5 | 0.621 3 | 0.769 3 | 0.727 2 | 0.777 6 | |
S2 | EN | 7.097 6 | 6.259 4 | 6.377 7 | 6.833 9 | 6.441 5 | 6.548 2 | 6.433 8 | 6.602 8 | 6.623 9 |
SD | 38.063 0 | 22.868 4 | 26.060 9 | 32.434 7 | 25.861 4 | 27.418 4 | 25.754 8 | 28.251 3 | 30.935 2 | |
MI | 1.429 8 | 0.768 6 | 0.761 6 | 0.830 2 | 0.773 1 | 0.763 5 | 0.789 6 | 0.785 0 | 0.867 8 | |
SSIM | 0.717 2 | 0.743 5 | 0.727 2 | 0.692 4 | 0.739 0 | 0.621 0 | 0.739 7 | 0.727 4 | 0.754 5 | |
S3 | EN | 7.546 0 | 6.553 1 | 6.857 5 | 6.682 5 | 6.809 1 | 6.777 0 | 6.801 5 | 6.970 2 | 6.903 6 |
SD | 64.279 6 | 31.619 0 | 32.898 3 | 34.143 0 | 34.497 6 | 33.193 0 | 34.386 7 | 49.308 0 | 37.729 5 | |
MI | 2.315 8 | 0.987 0 | 1.220 2 | 0.597 7 | 1.063 4 | 0.945 2 | 1.071 4 | 1.015 8 | 1.020 2 | |
SSIM | 0.717 3 | 0.741 1 | 0.725 6 | 0.695 1 | 0.736 8 | 0.638 5 | 0.753 3 | 0.716 6 | 0.767 1 | |
S4 | EN | 7.320 1 | 6.333 5 | 7.026 9 | 6.806 8 | 6.363 9 | 6.877 8 | 6.353 5 | 6.740 3 | 6.554 4 |
SD | 57.213 8 | 27.283 5 | 48.277 0 | 37.090 8 | 28.778 1 | 36.413 4 | 28.559 7 | 42.076 6 | 32.076 4 | |
MI | 1.718 8 | 0.956 9 | 1.734 6 | 0.695 2 | 0.891 5 | 0.933 9 | 0.967 5 | 1.008 8 | 0.939 2 | |
SSIM | 0.700 4 | 0.714 2 | 0.688 1 | 0.640 8 | 0.698 9 | 0.539 6 | 0.718 9 | 0.697 3 | 0.732 2 | |
S5 | EN | 7.593 7 | 6.777 3 | 6.857 5 | 7.035 6 | 6.410 8 | 6.869 1 | 6.801 5 | 7.236 6 | 6.572 2 |
SD | 59.808 7 | 33.952 5 | 32.898 3 | 44.807 0 | 23.770 4 | 33.266 5 | 34.386 7 | 53.665 0 | 26.291 3 | |
MI | 1.247 1 | 0.723 9 | 0.624 3 | 1.082 6 | 1.183 6 | 0.552 5 | 0.721 3 | 0.720 9 | 1.084 2 | |
SSIM | 0.589 7 | 0.458 7 | 0.437 7 | 0.503 5 | 0.620 7 | 0.358 8 | 0.454 9 | 0.361 4 | 0.640 0 |
1 | MA J Y , CHEN C , LI C , et al. Infrared and visible image fusion via gradient transfer and total variation minimization[J]. Information Fusion, 2016, 31 (C): 100- 109. |
2 | LI S T , KANG X , FANG L , et al. Pixel-level image fusion: a survey of the state of the art[J]. Information Fusion, 2017, 33 (C): 100- 112. |
3 |
MA J Y , MA Y , LI C . Infrared and visible image fusion methods and applications: a survey[J]. Information Fusion, 2019, 45, 153- 178.
doi: 10.1016/j.inffus.2018.02.004 |
4 | 刘斌, 付忠旺. 基于四通道不可分提升小波的多聚焦图像融合[J]. 系统工程与电子技术, 2018, 40 (2): 463- 471. |
LIU B , FU Z W . Multi-focus image fusion based on four-channel non- separable lifting wavelet[J]. Systems Engineering and Electronics, 2018, 40 (2): 463- 471. | |
5 | 邢雅琼, 王晓丹, 毕凯, 等. 基于NSCT和ICA的红外和可见光图像融合方法[J]. 系统工程与电子技术, 2013, 35 (11): 2251- 2257. |
XING Y Q , WANG X D , BI K , et al. Fusion technique for infrared and visible light images based on independent component analysis and non-subsampled contourlet transform[J]. Systems Engineering and Electronics, 2013, 35 (11): 2251- 2257. | |
6 | LI M J, DONG Y B. Image fusion algorithm based on contrast pyramid and application[C]//Proc.of the International Conference on Mechatronic Sciences, Electric Engineering and Computer, 2013: 1342-1345. |
7 | QU X J, ZHANG F, ZHANG Y, et al.Method of dual-band infrared images fusion based on gradient pyramid decomposition[C]//Proc.of the IET International Conference on Information Science and Control Engineering, 2012: 1-4. |
8 | 朱攀, 刘泽阳, 黄战华. 基于DTCWT和稀疏表示的红外偏振与光强图像融合[J]. 光子学报, 2017, 46 (12): 213- 221. |
ZHU P , LIU Z Y , HUANG Z H . Infrared polarization and intensity image fusion based on dual-tree complex wavelet transform and sparse representation[J]. Acta Photonica Sinica, 2017, 46 (12): 213- 221. | |
9 |
HUANG N E , SHEN Z , LONG S R , et al. The empirical mode decomposition and the Hilbert spectrum for nonlinear and non-stationary time series analysis[J]. Proceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences, 1998, 454 (1971): 903- 995.
doi: 10.1098/rspa.1998.0193 |
10 | BHUIYAN S M A , ADHAMI R R , KHAN J F . Fast and adaptive bidimensional empirical mode decomposition using order-statistics filter based envelope estimation[J]. Eurasip Journal on Advances in Signal Processing, 2008, 2008 (1): 1- 18. |
11 | 林子慧, 魏宇星, 张建林, 等. 基于显著性图的红外与可见光图像融合[J]. 红外技术, 2019, 41 (7): 640- 645. |
LIN Z H , WEI Y X , ZHANG J L , et al. Image fusion of infrared and visible images based on saliency map[J]. Infrared Technology, 2019, 41 (7): 640- 645. | |
12 |
CHENG M M , MITRA N J , HUANG X , et al. Global contrast based salient region detection[J]. IEEE Trans.on Pattern Analysis and Machine Intelligence, 2015, 37 (3): 569- 582.
doi: 10.1109/TPAMI.2014.2345401 |
13 | ACHANTA R, ESTRADA F, WILS P, et al. Salient region detection and segmentation[C]//Proc.of the International Conference on Computer Vision Systems, 2008: 66-75. |
14 | ACHANTA R, HEMAMI S, ESTRADA F, et al. Frequency-tuned salient region detection[C]//Proc.of the IEEE International Conference on Computer Vision and Pattern Recognition, 2009: 1597-1604. |
15 | ZHAI Y, SHAH M. Visual attention detection in video sequences using spatiotemporal cues[C]//Proc.of the 14th ACM International Conference on Multimedia, 2006: 815-824. |
16 | ACHANTA R, SUSSTRUNK S. Saliency detection using maximum symmetric surround[C]//Proc.of the IEEE International Conference on Image Processing, 2010: 2653-2656. |
17 |
LI S T , KANG X D , HU J W . Image fusion with guided filtering[J]. IEEE Trans.on Image Processing, 2013, 22 (7): 2864- 2875.
doi: 10.1109/TIP.2013.2244222 |
18 |
NAIDU V P S . Image fusion technique using multi-resolution singular value decomposition[J]. Defence Science Journal, 2011, 61 (5): 479- 484.
doi: 10.14429/dsj.61.705 |
19 | LIU Y , WANG Z F . Simultaneous image fusion and denoising with adaptive sparse representation[J]. Image Processing IET, 2014, 9 (5): 347- 357. |
20 |
KUMAR B K S . Image fusion based on pixel significance using cross bilateral filter[J]. Signal, Image and Video Processing, 2015, 9 (5): 1193- 1204.
doi: 10.1007/s11760-013-0556-9 |
21 |
LIU Y , CHEN X , WARD R K , et al. Image fusion with convolutional sparse representation[J]. IEEE Signal Processing Letters, 2016, 23 (12): 1882- 1886.
doi: 10.1109/LSP.2016.2618776 |
22 | MA J Y , ZHOU Z Q , WANG B , et al. Infrared and visible image fusion based on visual saliency map and weighted least square optimization[J]. Infrared Physics & Technology, 2017, 82, 8- 17. |
23 | LI H, WU X J. Infrared and visible image fusion using latent low-rank representation[Online][2019-09-06].https: //arxiv.org/abs/1804.08992. |
24 |
ROBERTS J W , ADRDT J A V . Assessment of image fusion procedures using entropy, image quality and multispectral classification[J]. Journal of Applied Remote Sensing, 2008, 2 (1): 023522.
doi: 10.1117/1.2945910 |
25 |
QU G H , ZHANG D L , YAN P F . Information measure for performance of image fusion[J]. Electronics letters, 2002, 38 (7): 313- 315.
doi: 10.1049/el:20020212 |
26 |
WANG Z , BOVIK A C , SHEIKH H R , et al. Image quality assessment: from error visibility to structural similarity[J]. IEEE Trans.on Image Processing, 2004, 13 (4): 600- 612.
doi: 10.1109/TIP.2003.819861 |
[1] | Jian WANG, Zihao HE, Jie LIU, Ke YANG. Image fusion algorithm based on gradient domain guided filtering and improved PCNN [J]. Systems Engineering and Electronics, 2022, 44(8): 2381-2392. |
[2] | Yingping TONG, Yinghui QUAN, Wei FENG, Mengdao XING. Multi-source remote sensing image fusion method based on spatial-spectrum information collaboration and Gram-Schmidt transform [J]. Systems Engineering and Electronics, 2022, 44(7): 2074-2083. |
[3] | Cheng FANG, Wen LU, Jingying JI, Yumeng SONG, Feifei LIANG, Zhiwei LUO. Correlation filter-tracking algorithm based on appearance similarity update [J]. Systems Engineering and Electronics, 2022, 44(1): 117-126. |
[4] | Guoming XU, Hongwu YUAN, Mogen XUE, Feng WANG. Full polarization parameters low-rank and sparse factorization for pseudo color image fusion [J]. Systems Engineering and Electronics, 2020, 42(11): 2450-2460. |
[5] | LIU Songtao, JIANG Kanghui, LIU Zhenxing. Ship target detection of aerial reconnaissance image based on region covariance and objectness [J]. Systems Engineering and Electronics, 2019, 41(5): 972-980. |
[6] | ZONG Jingjing, QIU Tianshuang. Characteristic analysis for the l-1 norm of sparse coefficients in sparse representation [J]. Systems Engineering and Electronics, 2019, 41(12): 2692-2696. |
[7] | LIU Songtao, LIU Zhenxing, JIANG Kanghui. Image target segmentation method based on fuzzy Renyi entropy and region growing#br# [J]. Systems Engineering and Electronics, 2018, 40(8): 1693-1701. |
[8] | WANG Chen, FAN Yangyu. Saliency detection method based on dynamic guided filtering [J]. Systems Engineering and Electronics, 2018, 40(6): 1391-1397. |
[9] | LIU Bin, FU Zhongwang. Multi-focus image fusion based on four-channel non-separable lifting wavelet [J]. Systems Engineering and Electronics, 2018, 40(2): 463-471. |
[10] | CHANG Lihong, FENG Xiangchu, ZHANG Rui. Image fusion scheme based on quaternion wavelet transform and sparse representation [J]. Systems Engineering and Electronics, 2017, 39(7): 1633-1639. |
[11] | ZHAO Lanfei, WANG Aili, WANG Bo, Lv Xinmiao. Image enhancement algorithm based on sub-image fusion [J]. Systems Engineering and Electronics, 2017, 39(12): 2840-2848. |
[12] | ZHU Wenjie, WANG Guanglong, GAO Fengqi, QIAO Zhongtao, HUANG Rui. Natural scene contour detection by combining guided filter and visual perception [J]. Systems Engineering and Electronics, 2017, 39(1): 206-214. |
[13] | HU Xiao-wei, TONG Ning-ning, HE Xing-yu, LEI Teng, WANG Yu-chen. High-speed spinning target imaging based on narrow-band radar networks [J]. Systems Engineering and Electronics, 2016, 38(4): 792-798. |
[14] | ZHOU Zhi-qiang, WANG Bo, LI Li-guang, LI Sun. Image fusion based on a hybrid decomposition via bilateral and Gaussian filters [J]. Systems Engineering and Electronics, 2016, 38(1): 8-13. |
[15] | LIU Bin, LIU Wei-jie, WEI YAN-ing. Construction of the six channel multi-scale singular value decomposition and its application in multi-focus image fusion [J]. Systems Engineering and Electronics, 2015, 37(9): 2191-2197. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||