WRIT: Write-Read Intensive Trajectory Synthesis for Multi-Turn User-Facing Agents 文章

ArXiv CS.CL2026-06-03NEWSen作者: Hengrui Gu, Xiaotian Han, Kaixiong Zhou

摘要

arXiv:2606.02908v1 Announce Type: new Abstract: Multi-turn user-facing agents must infer user intent from incomplete requests, collect missing information through dialogue and tools, and execute valid actions. A training trajectory records this process as an interleaved sequence of user messages, agent responses, tool calls, etc. Synthesizing sufficiently complex trajectory has become a central route to train agents: existing pipelines often increase difficulty by composing multiple user requests into longer tasks, producing write-intensive trajectories that train sequential execution. We argue that a single write decision can itself be difficult when the agent must gather and compare substantial read-tool evidence before its arguments become identifiable, a challenge that write-intensive data alone cannot address.

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