arXiv:2604.09579cs.AIcs.SE2026-04被引 1

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Help Without Being Asked: A Deployed Proactive Agent System for On-Call Support with Continuous Self-Improvement

论文配图:Help Without Being Asked: A Deployed Proactive Agent System for On-Call Support with Continuous Self-Improvement
图 1 · 摘自论文原文
  • 在人工介入后主动提供支持,不依赖用户触发
  • 部署超10个月,通过真实案例持续自我优化
  • 适合需要高响应、可迭代的云服务支持团队

在大规模云服务平台中,每日产生数千个客户工单,通常通过值班对话处理。这种高强度交互给人工支持分析师带来巨大负担。现有研究多采用基于大语言模型的被动代理作为第一道防线,直接与客户互动解决问题。但当问题被转交至人工支持后,这些代理通常停止参与,无法跟进后续询问、追踪解决进度或从失败案例中学习。本文提出Vigil——一种贯穿整个工单生命周期的主动代理系统。与被动代理不同,Vigil聚焦于人工已介入阶段,无缝嵌入客户与分析师对话中,无需用户主动调用即可提供帮助。同时,Vigil具备持续自我改进机制,能从人工解决的案例中提取知识,自主更新自身能力。Vigil已在字节跳动云平台Volcano Engine部署超过十个月,基于实际部署的全面评估验证了其有效性和实用性。本工作的开源版本已公开:https://github.com/volcengine/veaiops。

原文摘要 · Abstract (English)

In large-scale cloud service platforms, thousands of customer tickets are generated daily and are typically handled through on-call dialogues. This high volume of on-call interactions imposes a substantial workload on human support analysts. Recent studies have explored reactive agents that leverage large language models as a first line of support to interact with customers directly and resolve issues. However, when issues remain unresolved and are escalated to human support, these agents are typically disengaged. As a result, they cannot assist with follow-up inquiries, track resolution progress, or learn from the cases they fail to address. In this paper, we introduce Vigil, a novel proactive agent system designed to operate throughout the entire on-call life-cycle. Unlike reactive agents, Vigil focuses on providing assistance during the phase in which human support is already involved. It integrates into the dialogue between the customer and the analyst, proactively offering assistance without explicit user invocation. Moreover, Vigil incorporates a continuous self-improvement mechanism that extracts knowledge from human-resolved cases to autonomously update its capabilities. Vigil has been deployed on Volcano Engine, ByteDance's cloud platform, for over ten months, and comprehensive evaluations based on this deployment demonstrate its effectiveness and practicality. The open source version of this work is publicly available at https://github.com/volcengine/veaiops.

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