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Adaptorch: Task-adaptive Multi-agent Orchestration In The Era Of LLM Performance Convergence

Abstract

As large language models from diverse providers converge toward comparable benchmark performance, the traditional paradigm of selecting a single best model per task yields diminishing returns. We argue that orchestration topology -- the structural composition of how multiple agents are coordinated, parallelized, and synthesized -- now dominates system-level performance over individual model capabi

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