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Svea Wisy

Publications and source records attributed to Svea Wisy.

2 recordsLinked to original sources

Self-Explainability in Self-Adaptive and Self-Organising Systems: Status and Research Directions

The growing complexity of self-adaptive and self-organising systems, fuelled by advances in Artificial Intelligence (AI), has made them increasingly difficult to understand and trust. While Explainable AI aims to provide insight into AI decision-making, a more advanced goal is for systems to explain themselves - an ability referred to as Self-Explainability (SX). This article presents a systematic literature review on SX, analysing existing approaches, including their domains, targets, and evaluation methods. The review develops a unified definition and taxonomy of SX and introduces Levels of Self-Explainability, providing a framework for positioning current and future research. Our results show that most SX approaches remain conceptual, with few practical implementations. Moreover, there is currently no formal or de facto standard for evaluating SX, highlighting a major research gap. This work thus establishes a foundation and roadmap for advancing Self-Explainability in complex systems.

cs.AI

Simple Trust Metric in a Low-Power Sensor Network

Distributed systems become more and more important to our life. Especially in areas like Smart Home and the Internet of Things (IoT) reliable low-power sensor networks become increasingly important. For ensuring this there are a lot of trust metrics. In this paper we compare a model of a distributed low-power sensor network including one root node and the corresponding Simple Trust Metric to the requirements from "Representation of Trust and Reputation in Self-Managed Computing Systems" [1], the Weighted Trust Metric and the Weighted Simple Exponential Smoothing

cs.DC