Artificial Intelligence in Chromatin Analysis: A Random Forest Model Enhanced by Fractal and Wavelet Features

Author:

Pantic Igor123ORCID,Paunovic Pantic Jovana4ORCID

Affiliation:

1. Laboratory for Cellular Physiology, Department of Medical Physiology, Faculty of Medicine, University of Belgrade, Višegradska 26/2, 11129 Belgrade, Serbia

2. University of Haifa, 199 Abba Hushi Blvd, Mount Carmel, Haifa 3498838, Israel

3. Faculty of Health Sciences, Ben-Gurion University of the Negev, Be’er Sheva 8410501, Israel

4. Department of Pathological Physiology, Faculty of Medicine, University of Belgrade, Dr Subotica 9, 11129 Belgrade, Serbia

Abstract

In this study, we propose an innovative concept that applies an AI-based approach using the random forest algorithm integrated with fractal and discrete wavelet transform features of nuclear chromatin. This strategy could be employed to identify subtle structural changes in cells that are in the early stages of programmed cell death. The code for the random forest model is developed using the Scikit-learn library in Python and includes hyperparameter tuning and cross-validation to optimize performance. The suggested input data for the model are chromatin fractal dimension, fractal lacunarity, and three wavelet coefficient energies obtained through high-pass and low-pass filtering. Additionally, the code contains several methods to assess the performance metrics of the model. This model holds potential as a starting point for designing simple yet advanced AI biosensors capable of detecting apoptotic cells that are not discernible through conventional microscopy techniques.

Funder

Science Fund of the Republic of Serbia

the Ministry of Science, Technological Development and Innovation of the Republic of Serbia

Publisher

MDPI AG

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