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In the current study, the effect of physical properties, quartz, fragment, and feldspar percentages, and dynamic Young\u2019s modulus (DYM) on the static Young\u2019s modulus (SYM) of the various types of sandstones was assessed. These investigations were conducted through simple and multivariate regression, support vector regression, adaptive neuro-fuzzy inference system, and backpropagation multilayer perceptron. The XRD and thin section results showed that the studied samples were classified as arenite, litharenite, and feldspathic litharenite. The low resistance of the arenite type is mainly due to the presence of sulfate cement, clay minerals, high porosity, and carbonate fragments in this type. Examining the fracture patterns of these sandstones in different resistance ranges showed that at low values of resistance, the fracture pattern is mainly of simple shear type, which changes to multiple extension types with increasing compressive strength. Among the influencing factors, the percentage of quartz has the greatest effect on SYM. A comparison of the methods' performance based on CPM and error values in estimating SYM revealed that SVR (R<jats:sup>2<\/jats:sup>\u2009=\u20090.98, RMSE\u2009=\u20090.11GPa, CPM\u2009=\u2009\u2009+\u20091.84) outperformed other methods in terms of accuracy. The average difference between predicted SYM using intelligent methods and measured SYM value was less than 0.05% which indicates the efficiency of the used methods in estimating SYM.<\/jats:p>","DOI":"10.1007\/s12145-024-01392-6","type":"journal-article","created":{"date-parts":[[2024,7,4]],"date-time":"2024-07-04T07:02:03Z","timestamp":1720076523000},"page":"4339-4359","update-policy":"https:\/\/doi.org\/10.1007\/springer_crossmark_policy","source":"Crossref","is-referenced-by-count":8,"title":["Estimation of static Young\u2019s modulus of sandstone types: effective machine learning and statistical models"],"prefix":"10.1007","volume":"17","author":[{"given":"Na","family":"Liu","sequence":"first","affiliation":[]},{"given":"Yan","family":"Sun","sequence":"additional","affiliation":[]},{"given":"Jiabao","family":"Wang","sequence":"additional","affiliation":[]},{"given":"Zhe","family":"Wang","sequence":"additional","affiliation":[]},{"given":"Ahmad","family":"Rastegarnia","sequence":"additional","affiliation":[]},{"given":"Jafar","family":"Qajar","sequence":"additional","affiliation":[]}],"member":"297","published-online":{"date-parts":[[2024,7,4]]},"reference":[{"key":"1392_CR1","doi-asserted-by":"publisher","first-page":"1473","DOI":"10.1007\/s12145-023-00979-9","volume":"16","author":"M Abdelhedi","year":"2023","unstructured":"Abdelhedi M, Jabbar R, Said AB, Fetais N, Abbes C (2023) Machine learning for prediction of the uniaxial compressive strength within carbonate rocks. 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