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RunningTab:透過環境端分頁直接與工作區互動

RunningTab: Direct Workspace Interaction with Environment-Side Tabs

AI 導讀

RunningTab 為 LLM 智能體的直接工作區互動(DWI)加入環境端分頁,按任務記錄待完成要求、已讀檔案摘錄及未開啟檔案候選項。研究以三個 LLM 在三項基準測試上評估,結果顯示 RunningTab 持續優於純 DWI 及由模型保留記錄的基線方法。分頁通常會保留交付成果所需、已讀取的數值。

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Published on Oct 7

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Abstract

Much knowledge work produces new deliverables from files a workspace already holds, and LLM agents are beginning to take such work over. Through direct corpus interaction, an agent can search and read any of those files from a terminal with no indexing, and producing a deliverable from many of them in this way is what we call direct workspace interaction (DWI). Reaching the files, however, is only half the task: nothing keeps track of what the task asks for, what has been read, and what was listed but never opened, all of which slip through the context window without leaving a trace, so an agent may extract a figure and still deliver a report without it. To address this, we present RunningTab, a framework that equips direct workspace interaction with an environment-side tab: a per-task record of what the task still owes, kept by the environment alongside the agent. Specifically, the agent adds its requirements, while the environment records every file read as an excerpt with its provenance and every listed but unopened file as a candidate; the agent can then see each requirement beside its best-matching excerpts and top unopened candidates, resolve it against matching content or set it aside with a reason, and, should it try to finish with requirements still open, receive them in a finish check. We validate RunningTab on three benchmarks with three LLMs, where it consistently outperforms plain DWI and baselines that keep the record in the model, while its tab usually holds the values a deliverable needs once seen.

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來源:HuggingFace Daily Papers(社區熱門論文) · huggingface.co