Journal of Applied Optics, Volume. 45, Issue 1, 166(2024)

Application of X-ray in detection of fish tissue and trace elements

Yifan SONG1,2, Shengmao ZHANG2、*, Heng ZHANG2, Fenghua TANG2, Hanye ZHANG2, Yongchuang SHI2, and Xuesen CUI2
Author Affiliations
  • 1College of Information, Shanghai Ocean University, Shanghai 201306, China
  • 2Key Laboratory of Fisheries Remote Sensing (Ministry of Agriculture and Rural Affairs), East China Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Shanghai 200090, China
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    References(44)

    [1] Zhenjiang YE. Study on otolith shape, taxonomy and application for fishes in China sea(2010).

    [2] S E CAMPANA, S R THORROLD, C M JONES et al. Comparison of accuracy, precision, and sensitivity in elemental assays of fish otoliths using the electron microprobe, proton-induced X-ray emission, and laser ablation inductively coupled plasma mass spectrometry. Canadian Journal of Fisheries and Aquatic Sciences, 54, 2068-2079(1997).

    [3] Daowu ZHANG. Research about non-destructive detection technology of food impurity based on X-ray(2007).

    [4] Peng ZHANG, Huitao ZHANG, Yunsong ZHAO. The mathematical models on X-ray CT and their related issues. Mathematical Modeling and Application, 1, 1-12(2012).

    [5] Liang GOU, Xuben WANG, Hui CAO. The present state and future development of X-ray imaging technology. Journal of Chengdu University of Technology, 227-231(2002).

    [6] Xiaochuan HE, Xin LUO, Changlian TAN. CT diagnosis of foreign body (fishbone) in the esophagus. Journal of Practical Radiology, 23, 914-915(2007).

    [7] K I WATANABE, T KIKUCHI, Y KATORI et al. The usefulness of computed tomography in the diagnosis of impacted fish bones in the oesophagus. The Journal of Laryngology & Otology, 112, 360-364(1998).

    [8] M KUMAR, G JOSEPH, S KUMAR et al. Fish bone as a foreign body. The Journal of Laryngology & Otology, 117, 568-569(2003).

    [9] T A QURESHI, M S AWAN, M HUSSAIN et al. Effectiveness of plain X-ray in detection of fish and chicken bone foreign body in upper aerodigestive tract. the Journal of the Pakistan Medical Association, 67, 544-547(2017).

    [10] K Z MALIK, U RAQFIQUE, S NAYYAR et al. Tract fish bone impaction. Khyber Medical University Journal, 13, 36-39(2021).

    [11] A TERZI, N GALLO, S BETTINI et al. Sub- and supramolecular X-ray characterization of engineered tissues from equine tendon, bovine dermis, and fish skin type-I collagen. Macromolecular Bioscience, 20, 2000017(2020).

    [12] V WEINHARDT, R SHKARIN, T WERNET et al. Quantitative morphometric analysis of adult teleost fish by X-ray computed tomography. Scientific Reports, 8, 16531(2018).

    [13] T DORNAN, S FIELDING, R A SAUNDERS et al. Swimbladder morphology masks Southern Ocean mesopelagic fish biomass. Proceedings of the Royal Society B:Biological Sciences, 286, 20190353(2019).

    [14] M MUELLER, K STERNECKER, S MILZ et al. Assessing turbine passage effects on internal fish injury and delayed mortality using X-ray imaging. PeerJ, 8, e9977(2020).

    [15] Rui YANG, Gang YU, Jing HU et al. Research on skeleton system of Thunnus tonggol. South China Fisheries Science, 17, 36-43(2021).

    [17] Shuxian WANG, Shengmao ZHANG, Wenbin ZHU et al. Application of an electronic monitoring system for video target detection in tuna longline fishing based on YOLOV5 deep learning model. Journal of Dalian Fisheries University, 36, 842-850(2021).

    [18] Jiaze ZHANG, Shengmao ZHANG, Shuxian WANG et al. Recognition of Acetes chinensis fishing vessel based on 3-2D integration model behavior. South China Fisheries Science, 18, 126-135(2022).

    [19] D MERY, I LILLO, H LOEBEL et al. Automated fish bone detection using X-ray imaging. Journal of Food Engineering, 105, 485-492(2011).

    [20] Jianbao GUI, Zhanli HU, Ying ZHOU et al. Technology development of micro-CT with high spatial resolution. Theoretical and Applied Research of CT, 18, 106-116(2009).

    [21] Zhikun GAI, Min ZHU. Application of micro-CT in the research on Paleozoic fishes. Chinese Bulletin of Life Sciences, 25, 779-786(2013).

    [22] B BŁAŻEJOWSKI, P LAMBERS, P GIESZCZ et al. Late Jurassic jaw bones of Halecomorph fish (actinopterygii: Halecomorphi) studied with X-ray microcomputed tomography. Palaeontologia Electronica, 18, 1-10(2015).

    [23] T OKUMURA, T MASUYA. Three dimensional morphometry of fish body structure by X-ray CT, 354-356(2004).

    [24] Shengmao ZHANG, Yang LIU, Wei FAN et al. Aquarium fish target detection APP development based on TensorFlow. Fishery Modernization, 47, 60-67(2020).

    [25] T R HUNG. Fishpose: identifying fish skeletal elements from X-ray images. The Journal of Laryngology & Otology, 117, 568-569(2003).

    [26] K URAZOE, N KUROKI, A MAENAKA et al. Automated fish bone detection in X-ray images with convolutional neural network and synthetic image generation. IEEE Transactions on Electrical and Electronic Engineering, 16, 1510-1517(2021).

    [27] Yang LIU, Shengmao ZHANG, Shuxian WANG et al. Research on optimization of aquarium fish target detection network. Fishery Modernization, 49, 89-98(2022).

    [28] Shuxian WANG, Shengmao ZHANG, Fenghua TANG et al. Extracting the behavior of scomber japonicus fishing vessel using CNN-LSTM. Transactions of the Chinese Society of Agricultural Engineering, 38, 200-209(2022).

    [29] Qiyun XIE, Xiaoshan WU. The development of X-ray diffraction. Physics, 41, 727-735(2012).

    [30] P T C FREIRE, J H SILVA, F E SOUSA-FILHO et al. Vibrational spectroscopy and X-ray diffraction applied to the study of Cretaceous fish fossils from Araripe Basin, Northeast of Brazil. Journal of Raman Spectroscopy, 45, 1225-1229(2014).

    [31] H A AL-KHAYAT, J M SQUIRE. Refined structure of bony fish muscle myosin filaments from low-angle X-ray diffraction data. Journal of Structural Biology, 155, 218-229(2006).

    [32] J PHIBBS, E FRANZ, D HAUCK et al. Evaluating the trophic transfer of selenium in aquatic ecosystems using caged fish, X-ray absorption spectroscopy and stable isotope analysis. Ecotoxicology & Environmental Safety, 74, 1855-1863(2011).

    [33] Shengmao ZHANG, Yongwen SUN, Wei FAN et al. Research progress in the application of deep learning methods for marine fishery production: a review. Journal of Dalian Fisheries University, 37, 683-695(2022).

    [34] K E LIMBURG, Rong HUANG, D H BILDERBACK. Fish otolith trace element maps: new approaches with synchrotron microbeam X-ray fluorescence. X-Ray Spectrometry, 36, 336-342(2007).

    [35] T SCHULZ-MIRBACH, M OLBINADO, A RACK et al. In-situ visualization of sound-induced otolith motion using hard X-ray phase contrast imaging. Scientific Reports, 8, 3121(2018).

    [36] J M LONG, R A SNOW. Posthatch development of otoliths and daily ring genesis in age-0 spotted gars. Transactions of the American Fisheries Society, 147, 1146-1152(2018).

    [37] B R MOORE, J MACLAREN, C PEAT et al. Feasibility of automating otolith ageing using CT scanning and machine learning. New Zealand Fisheries Assessment Report, 58, 23(2019).

    [38] A E S VIVES, S MOREIRA, S M B BRIENZA et al. Analysis of fish samples for environmental monitoring and food safety assessment by synchrotron radiation total reflection X-ray fluorescence. Journal of Radioanalytical and Nuclear Chemistry, 270, 231-236(2006).

    [39] M G KONTOMINAS, M I PRODROMIDIS, E K PALEOLOGOSer al. Investigation of fish product-metal container interaction using scanning electron microscopy-X-ray microanalysis. Food Chemistry, 98, 225-230(2006).

    [40] SILVA CARNEIRO C DA, MÁRSICO E TEIXEIRA, JESUS E F O DE et al. Trace elements in fish and oysters from Sepetiba Bay (Rio de Janeiro - Brazil) determined by total reflection X-ray fluorescence using synchrotron radiation. Chemistry and Ecology, 27, 1-8(2011).

    [41] S KARTHIKEYAN. X-ray diffraction and Fourier transform study of toxic effect of heavy metals on bone tissues of an edible fish cirrhinus mrigala. Acta Physica Polonica A, 122, 236-239(2012).

    [42] G ZARAZÚA, K GIRÓN-ROMERO, S TEJEDA et al. Total reflection X-ray fluorescence analysis of toxic metals in fish tissues. American Journal of Analytical Chemistry, 5, 805-811(2014).

    [43] R G LEITO, M P SILVA, M S DINIZ et al. Mapping the distribution of mercury (II) chloride in zebrafish organs by benchtop micro-energy dispersive X-ray fluorescence: A proof of concept. Journal of Trace Elements in Medicine and Biology, 69, 126874(2022).

    [44] Yongwen SUN, Shengmao ZHANG, Keji JIANG et al. Research progress of application status of electronic monitoring technology in ocean fishing vessels and prospects. Marine Fisheries, 44, 103-111(2022).

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    Yifan SONG, Shengmao ZHANG, Heng ZHANG, Fenghua TANG, Hanye ZHANG, Yongchuang SHI, Xuesen CUI. Application of X-ray in detection of fish tissue and trace elements[J]. Journal of Applied Optics, 2024, 45(1): 166

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    Paper Information

    Category: Research Articles

    Received: Mar. 23, 2023

    Accepted: --

    Published Online: May. 28, 2024

    The Author Email: ZHANG Shengmao (张胜茂(1976—))

    DOI:10.5768/JAO202445.0103005

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