Enhancing Decision-Making in Optimization through LLM-Assisted Inference: A Neural Networks Perspective
May 12, 2024 ยท Declared Dead ยท ๐ IEEE International Joint Conference on Neural Network
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Authors
Gaurav Singh, Kavitesh Kumar Bali
arXiv ID
2405.07212
Category
cs.NE: Neural & Evolutionary
Cross-listed
cs.AI
Citations
9
Venue
IEEE International Joint Conference on Neural Network
Last Checked
4 months ago
Abstract
This paper explores the seamless integration of Generative AI (GenAI) and Evolutionary Algorithms (EAs) within the domain of large-scale multi-objective optimization. Focusing on the transformative role of Large Language Models (LLMs), our study investigates the potential of LLM-Assisted Inference to automate and enhance decision-making processes. Specifically, we highlight its effectiveness in illuminating key decision variables in evolutionarily optimized solutions while articulating contextual trade-offs. Tailored to address the challenges inherent in inferring complex multi-objective optimization solutions at scale, our approach emphasizes the adaptive nature of LLMs, allowing them to provide nuanced explanations and align their language with diverse stakeholder expertise levels and domain preferences. Empirical studies underscore the practical applicability and impact of LLM-Assisted Inference in real-world decision-making scenarios.
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