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A Human-in-the-Loop Autonomous Agent for Industry Time Series Forecasting

arXiv · AI, language, vision and robotics · article · Aug 31, 2026 · UTC

Real-world time-series forecasting is rarely a one-shot model invocation: practitioners must formulate tasks, connect data and models, incorporate domain expertise, assess prediction plausibility, and communicate uncertainty. Specialized forecasting models provide strong numerical predictions but usually operate in fixed pipelines, while general-purpose large language model (LLM) agents often lack forecasting-specific checks, constraints, and stopping rules. We present CastClaw, a human-in-the-loop autonomous forecasting system built through forecasting-oriented harness engineering. CastClaw c

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Evidence & attribution

First collected: 2026-09-21T06:41:57.136Z. This is not the publication date.