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  5. Aṇubuddhi: a multi-agent AI system for designing and simulating quantum optics experiments
 
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Aṇubuddhi: a multi-agent AI system for designing and simulating quantum optics experiments

Source
Preprints.org
Date Issued
2025-12
Author(s)
Sreekantham, Rithvik Kumar
DOI
10.20944/preprints202512.0894.v1
Abstract
We present Aṇubuddhi, a multi-agent AI system that designs and simulates quantum optics experiments from natural language prompts without requiring specialized programming knowledge. The system composes optical layouts by arranging components from a three-tier toolbox via semantic retrieval, then validates designs through physics simulation with convergent refinement. The architecture combines intent routing, knowledge-augmented generation, and dual-mode validation (QuTiP and FreeSim). We evaluated 13 experiments spanning fundamental optics (Hong-Ou-Mandel interference, Michelson/Mach-Zehnder interferometry, Bell states, delayed-choice quantum eraser), quantum information protocols (BB84 QKD, Franson interferometry, GHZ states, quantum teleportation, hyperentanglement), and advanced technologies (boson sampling, electromagnetically induced transparency, frequency conversion). The system achieves design-simulation alignment scores of 8--9/10, with simulations faithfully modeling intended physics. A critical finding distinguishes structural correctness from quantitative accuracy: high alignment confirms correct physics architecture, while numerical predictions require expert review. Free-form simulation outperformed constrained frameworks for 11/13 experiments, revealing that quantum optics diversity demands flexible mathematical representations. The system democratizes computational experiment design for research and pedagogy, producing strong initial designs users can iteratively refine through conversation.
URI
http://repository.iitgn.ac.in/handle/IITG2025/33683
Subjects
Quantum optics
Artificial intelligence
Multi-agent systems
Experiment design automation
Quantum simulation
Natural language processing
Retrieval-augmented generation
Scientific discovery
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