Soil pore identification with the adaptive fuzzy C-means method based on computed tomography images

Yue Zhao , Qiaoling Han , Yandong Zhao , Jinhao Liu

Journal of Forestry Research ›› 2019, Vol. 30 ›› Issue (3) : 1043 -1052.

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Journal of Forestry Research ›› 2019, Vol. 30 ›› Issue (3) : 1043 -1052. DOI: 10.1007/s11676-018-0725-3
Original Paper

Soil pore identification with the adaptive fuzzy C-means method based on computed tomography images

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Abstract

The complex geometry and topology of soil is widely recognised as the key driver in many ecological processes. X-ray computed tomography (CT) provides insight into the internal structure of soil pores automatically and accurately. Until recently, there have not been methods to identify soil pore structures. This has restricted the development of soil science, particularly regarding pore geometry and spatial distribution. Through the adoption of the fuzzy clustering theory and the establishment of pore identification rules, a novel pore identification method is described to extract pore structures from CT soil images. The robustness of the adaptive fuzzy C-means method (AFCM), the adaptive threshold method, and Image-Pro Plus tools were compared on soil specimens under different conditions, such as frozen, saturated, and dry situations. The results demonstrate that the AFCM method is suitable for identifying pore clusters, especially tiny pores, under various soil conditions. The method would provide an optional technique for the study of soil micromorphology.

Keywords

CT soil images / Fuzzy C-means / Fuzzy clustering theory / Pore identification rule

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Yue Zhao, Qiaoling Han, Yandong Zhao, Jinhao Liu. Soil pore identification with the adaptive fuzzy C-means method based on computed tomography images. Journal of Forestry Research, 2019, 30(3): 1043-1052 DOI:10.1007/s11676-018-0725-3

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References

[1]

Aidin P, Majid L, Ataollah K. Assessment of soil erodibility and aggregate stability for different parts of a forest road. J For Res, 2014, 25(1): 193-200.

[2]

Anderson AN, McBratney AB, FitzPatrick EA. Soil mass, surface, and spectral fractal dimensions estimated from thin section photographs. Soil Sci Soc Am J, 1996, 60: 962-969.

[3]

Bezdek JC, Ehrlich R, Full W. FCM: the fuzzy c-means clustering algorithm. Comput Ceosci, 1984, 10: 191-203.

[4]

Bhuiyan IU, Mouzon J, Forsberg F, Forsmo SPE, Sjödahl M, Hedlund J. Consideration of X-ray microtomography to quantitatively determine the size distribution of bubble cavities in iron ore pellets. Powder Technol, 2013, 233: 312-318.

[5]

Bui EN, Moran CJ. Regional-scale investigation of the spatial distribution and origin of soluble salts in central north Queensland. Hydrol Process, 2000, 14: 237-250.

[6]

Dewanckele J, Kock TD, Boone MA, Cnudde V, Brabant L, Boone MN, Fronteau G, Hoorebeke LV, Jacobs P. 4D imaging and quantification of pore structure modifications inside natural building stones by means of high resolution X-ray CT. Sci Total Environ, 2012, 416(2): 436-448.

[7]

Dunn JC. A fuzzy relative of the isodata process and its use in detecting compact well-separated clusters. J Cybern, 1973, 3(3): 32-57.

[8]

Falconer RE, Bown J, White N, Crawford J. Biomass recycling and the origin of phenotype in fungal mycelia. Proc R Soc Lond B, 2005, 272: 1727-1734.

[9]

Falconer R, Houston A, Otten W, Baveye PC. Emergent behavior of fungal dynamics: influence of soil architecture and water distribution. Soil Sci, 2012, 177(2): 111-119.

[10]

Haidi I, Nicholas SPK, Theam FN. Simple adaptive median filter for the removal of impulse noise from highly corrupted images. IEEE Trans Consum Electron, 2008, 54(4): 55-60.

[11]

Hill RL, Horton R, Cruse RM. Tillage effects on soil water retention and pore size distribution of two mollisols. Soil Sci Soc Am J, 1984, 49(5): 1264-1270.

[12]

Lucas G, Shiv OP, Subhasis G. Three-dimensional visualization and quantification of non-aqueous phase liquid volumes in natural porous media using a medical X-ray computed tomography scanner. J Contam Hydrol, 2007, 93: 96-110.

[13]

Munkholm LJ, Richard HJ, Deen B. Soil pore characteristics assessed from X-ray micro-CT derived images and correlations to soil friability. Geoderma, 2012, 182(7): 22-29.

[14]

Nicholas J, Mats L, John K. Connectivity and percolation of structural pore networks in a cultivated silt loam soil quantified by X-ray tomography. Geoderma, 2017, 287: 71-79.

[15]

Petrovic AM, Siebert JE, Rieke PE. Soil bulk density analysis in three dimensions by computed tomographic scanning. Soil Sci Soc, 1982, 46: 445-450.

[16]

Rolf T, Thilo E, Heidi T. Detection of soil water in macropores of undisturbed soil using microfocus X-ray tube computerized tomography. Soil Tillage Res, 2009, 105: 12-20.

[17]

Sarah S, Erwan P, Angélique L, Aurore D, Eléonore B. X-ray micro-CT: how soil pore space description can be altered by image processing. Soil Sci Soc Am J, 2017

[18]

Seyed HD, Alan WCL. Spatial possibilistic fuzzy c-mean segmentation algorithm integrated with brain mid-sagittal surface information. Int J Fuzzy Syst, 2017, 19(2): 591-601.

[19]

Shi CT, Wang EH, Gu HY, Chen XW. Soil structure characters of different soil and water conservation plantations in typical black soil region. J For Res, 2010, 21(02): 151-154.

[20]

Taina IA, Heck RJ, Elliot TR. Application of X-ray computed tomography to soil science—a literature review. Can J Soil Sci, 2008, 88(1): 1-19.

[21]

Thomas RE, Richard JH. A comparison of optical and X-ray CT technique for void analysis in soil thin section. Geoderma, 2007, 141(1): 60-70.

[22]

Vaunat J, Casini F. A procedure for the direct determination of Bishop’s parameter from changes in pore size distribution. Géotechnique, 2017, 67(7): 631-636.

[23]

Watabe Y, Leroueil S, Lebihan JP. Influence of compacted conditions on pore- size distribution and saturated hydraulic conductivity of a glacial till. Can Geotech J, 2000, 37(6): 1184-1194.

[24]

Yang BH, Wu AX, Miao XX, Liu JZ. 3D characterization and analysis of pore structure of packed ore particle beds based on computed tomography images. Trans Nonferrous Met Soc China, 2014, 24(03): 833-838.

[25]

Yu X, Wu C, Fu Y. Three-dimensional pore structure and carbon distributionof macroaggregates in biochar-amended soil. Eur J Soil Sci, 2016, 67: 109-120.

[26]

Yu X, Fu Y, Lu S. Characterization of the pore structure and cementing substances of soil aggregates by a combination of synchrotron radiation X-ray micro-computed tomography and scanning electron microscopy. Eur J Soil Sci, 2017, 68(1): 66-79.

[27]

Zhang Y, Niu J, Zhu W Effects of plant roots on soil preferential pathways and soil matrix in forest ecosystems. J For Res, 2015, 26(2): 397-404.

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