From Static Repositories to Agentic Knowledge Webs: ResearchTwin and the S-Index for Federated Human-AI Research Discovery
Martin G. Frasch

TL;DR
This paper introduces ResearchTwin, a federated platform transforming scholarly outputs into conversational digital twins, and the S-index, a new metric capturing multimodal research impact beyond citations.
Contribution
The paper presents ResearchTwin's architecture and the S-index metric, enhancing research discovery and impact measurement by including datasets and code contributions.
Findings
ResearchTwin enables cross-lab discovery via an API.
The S-index captures impact dimensions beyond citations.
Case study shows S-index differentiates researchers with similar H-indexes.
Abstract
The exponential growth of scientific literature, datasets, and code repositories has created a discovery bottleneck that impedes knowledge synthesis and reproducibility. Traditional dissemination formats -- static PDFs, siloed code hosting, and fragmented data repositories -- fail to represent the interconnected narrative of modern research, while conventional metrics such as the H-index neglect contributions from reusable code and shared datasets. We present ResearchTwin, an open-source federated platform that transforms a researcher's scholarly output into a conversational digital twin, with a preliminary evaluation of its deployed prototype. The system uses a Bimodal Glial-Neural Optimization (BGNO) architecture comprising a Multi-Modal Connector Layer, a Glial Layer for caching and rate management, and a Neural Layer implementing Retrieval-Augmented Generation with a…
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Taxonomy
TopicsScientific Computing and Data Management · Research Data Management Practices · scientometrics and bibliometrics research
