PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 18, 2026Sustainability0 citationsOpen Access

Predicting Osmotic Coefficients in Aqueous Inorganic Systems: A Hybrid Gazelle Optimization Algorithm (GOA)–Machine Learning Framework for Sustainable Water Treatment

View Full Paper
SHSeyed Hossein HashemiACAli CheperliFTFarshid Torabi

Key Points

  • The central aim is to develop an accurate predictive framework for osmotic coefficients in aqueous inorganic systems.
  • Utilized a hybrid model combining machine learning with the Gazelle Optimization Algorithm (GOA).
  • Tuned hyperparameters of Decision Tree (DT) and Gradient Boosting Machine (GBM) models using GOA.
  • Analyzed a dataset of 893 samples with 27 salt-specific parameters.
  • GOA-GBM hybrid model achieved the highest predictive accuracy with an R2 of 0.9734.
  • GOA-DT model also performed well, with an R2 of 0.9260.
  • Developed a reliable tool for simulating osmotic coefficients, enhancing process optimization.

Abstract

Efficient design of desalination and brine management systems, which are central to a water circular economy, requires accurate thermodynamic data such as the osmotic coefficient. This property is key to understanding salt behavior in aqueous solutions, directly impacting the energy efficiency and sustainability of treatment processes. This study presents a predictive framework that combines machine learning with the Gazelle Optimization Algorithm (GOA) to accurately estimate osmotic coefficients for various inorganic salt solutions. The GOA was employed to automatically tune the hyperparameters of two models: Decision Tree (DT) and Gradient Boosting Machine (GBM). Using a comprehensive dataset of 893 samples with 27 salt-specific parameters, the GOA-GBM hybrid model delivered the highest predictive accuracy, achieving an R2 of 0.9734 on test data. The GOA-DT model also performed robustly (R2 = 0.9260), providing a more interpretable alternative. By creating a reliable tool for predicting osmotic coefficients, this methodology enables more precise process simulation and optimization. This directly supports the development of energy-efficient desalination technologies and informed decision-making for water reuse and resource recovery. The integration of advanced digital tools like GOA with machine learning offers a powerful approach to enhancing process efficiency and environmental safety, contributing directly to the design of sustainable, circular economy-based water treatment solutions for industrial and municipal applications.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Hashemi et al. (2026) studied this question.

synapsesocial.com/papers/69e3201440886becb653f206https://doi.org/10.3390/su18083959
Ask AI
Helpful
Bookmark
Share
View Full Paper