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Updated: Sep 28, 2025

Detection and Isolation of Cancer in Prostate Biopsies Using Stimulated Raman Histology and Artificial Intelligence
Published on: June 10, 2025
Dietary Fat and Prostate Cancer Relationship Using Trimmed Regression Under Uncertainty
Muhammad Aslam1, Ali Hussein Al-Marshadi1
1Department of Statistics, Faculty of Science, King Abdulaziz University, Jeddah, Saudi Arabia.
Abstract:
In this paper, a new trimmed regression model under the neutrosophic environment is introduced. The mathematical model of the new regression model along with its neutrosophic form is given. The methods to find the error sum of square and trended values are also given. The trimmed neutrosophic correlation is also introduced in the paper. The proposed trimmed regression is applied to prostate cancer. From the analysis, it is concluded that the proposed model provides the minimum error sum of square as compared to the existing regression model under neutrosophic statistics. It is found that the proposed model is quite effective to forecast prostate cancer patients under an indeterminacy setting.
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