Authors :
Md Abul Kashem; Md. Rahimul Islam; Nakshi Das; Md Rokibuzzaman
Volume/Issue :
Volume 11 - 2026, Issue 8 - August
Google Scholar :
https://tinyurl.com/4ar7c9vt
DOI :
https://doi.org/10.38124/ijisrt/26aug1015
Note : A published paper may take 4-5
working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and
ResearchGate.
Abstract :
Healthcare providers, financial institutions, retailers, logistics operators, and workforce systems generate large
amounts of information for planning and risk related decisions. Much of this information cannot be freely shared because
it may contain sensitive organizational or consumer data. Resource decisions also become difficult when demand changes,
fraud risks increase, capacity becomes limited, or operational disruptions occur. This study develops an explainable decision
intelligence architecture for these conditions. The proposed framework combines hierarchical federated learning with
multimodal data analysis, Self-Sovereign Identity, group signatures, differential privacy, SHAP based explanations, Siamese
fine-tuning, and Pareto-based optimization. Data remain within participating organizations, while selected model
information supports collaborative analysis. The decision model considers resource cost, unmet demand, risk exposure,
privacy expenditure, and service vulnerability at the same time. Stochastic programming, fuzzy decision models, scenario
analysis, and sensitivity analysis are used to represent uncertain operating conditions. Five scenarios are considered: normal
operations, demand surges, fraud escalation, supplier disruption, and compound disruption. Public and synthetic datasets
provide the basis for comparison with centralized learning, standard federated learning, and optimization approaches
without integrated explainability and privacy governance. The study develops a common decision framework for resource
planning across heterogeneous service networks.
Keywords :
Explainable Decision Intelligence, Secure Data Sharing, Federated Learning, Risk-Aware Resource Governance, Differential Privacy, Multi-Objective Optimization, SHAP, Resource Allocation, Privacy-Preserving Analytics, Service-Network Resilience.
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Healthcare providers, financial institutions, retailers, logistics operators, and workforce systems generate large
amounts of information for planning and risk related decisions. Much of this information cannot be freely shared because
it may contain sensitive organizational or consumer data. Resource decisions also become difficult when demand changes,
fraud risks increase, capacity becomes limited, or operational disruptions occur. This study develops an explainable decision
intelligence architecture for these conditions. The proposed framework combines hierarchical federated learning with
multimodal data analysis, Self-Sovereign Identity, group signatures, differential privacy, SHAP based explanations, Siamese
fine-tuning, and Pareto-based optimization. Data remain within participating organizations, while selected model
information supports collaborative analysis. The decision model considers resource cost, unmet demand, risk exposure,
privacy expenditure, and service vulnerability at the same time. Stochastic programming, fuzzy decision models, scenario
analysis, and sensitivity analysis are used to represent uncertain operating conditions. Five scenarios are considered: normal
operations, demand surges, fraud escalation, supplier disruption, and compound disruption. Public and synthetic datasets
provide the basis for comparison with centralized learning, standard federated learning, and optimization approaches
without integrated explainability and privacy governance. The study develops a common decision framework for resource
planning across heterogeneous service networks.
Keywords :
Explainable Decision Intelligence, Secure Data Sharing, Federated Learning, Risk-Aware Resource Governance, Differential Privacy, Multi-Objective Optimization, SHAP, Resource Allocation, Privacy-Preserving Analytics, Service-Network Resilience.