Neural network based uncertainty and sensitivity evaluation of electrical resistivity tomography for improved subsurface imaging

IF 1.7 Q3 GEOSCIENCES, MULTIDISCIPLINARY
Amar Prakash, Abhay Kumar Bharti, Aniket Verma, Pradeep Kumar Singh
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引用次数: 0

Abstract

Assessment of subsurface status by resistivity technique, being an indirect approach, is pretended to be a strategic factor. Projection of full proof confirmation in this domain is always a challenge and hence outcomes are expressed in possibilities. Intervene of mathematical interpretation on resistivity data generated in the field by different arrays would offer a better choice in building-up the possibility of projecting the actual status. Thus, a study of Wenner-Schlumberger (WS), dipole–dipole (DD) and combined inversion (CI) data of three parallel profiles have been conducted, as a whole, for old and abandoned shallow depth coal mine workings in Jharia coalfield. The study recapitulates influence of sensitivity and uncertainty with depth, apart from resistivity. Statistical significance of the data has been evaluated inclusive of their inter-relationship. PCA presented an encouraging relation of sensitivity with depth. The comprehensible approach of mathematical interpretation helps in cracking a problem of uncertain prediction. Sensitivity and the extent of uncertainty are the parameters to build a strong foundation for evaluating the degree of confidence in prediction accuracy. Artificial Neural Network (ANN) tool has been used to understand the relative importance of sensitivity and uncertainty with depth. The weightage of sensitivity has been observed to be on upper side with respect to uncertainty. The importance of configuration of resistivity survey array has been emphasized based on sensitivity.

基于神经网络的改进地下成像电阻率层析成像的不确定性和灵敏度评价
电阻率法作为一种间接评价地下状态的方法,被认为是一个战略因素。在这一领域中,充分证明确认的投影始终是一个挑战,因此结果以可能性表示。对不同阵列在野外产生的电阻率数据进行数学解释的介入,为建立实际状态的投影可能性提供了更好的选择。因此,对Jharia煤田老旧和废弃浅深煤矿进行了温纳-斯伦贝谢(WS)、偶极-偶极(DD)和三平行剖面联合反演(CI)数据的综合研究。研究总结了除电阻率外,灵敏度和不确定度随深度的影响。已评估了数据的统计显著性,包括它们之间的相互关系。PCA的灵敏度与深度呈良好的关系。数学解释的可理解方法有助于解决不确定预测的问题。灵敏度和不确定程度是评价预测准确度置信程度的坚实基础。人工神经网络(ANN)工具已被用于理解灵敏度和不确定性随深度的相对重要性。在不确定度方面,灵敏度的权重被观察到偏上。从灵敏度出发,强调了电阻率测量阵列配置的重要性。
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来源期刊
Journal of Asian Earth Sciences: X
Journal of Asian Earth Sciences: X Earth and Planetary Sciences-Earth-Surface Processes
CiteScore
3.40
自引率
0.00%
发文量
53
审稿时长
28 weeks
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