对话式搜索让问答更自然,用大模型理解上下文。
A Survey of Conversational Search
- 用大模型实现多轮对话中的意图理解与上下文保持
- 支持复杂查询,可自动重写问题并整合信息
- 适合智能助手、科研检索等需要深度交互的场景
作为现代信息获取的核心,搜索引擎已深度融入日常生活。随着人工智能与自然语言处理技术的快速发展,特别是大语言模型(LLMs)的兴起,搜索引擎正演变为支持更直观、智能交互的下一代系统。对话式搜索作为新兴范式,通过自然语言对话实现复杂精准的信息检索,受到广泛关注。与传统关键词搜索不同,对话式搜索系统能支持复杂查询、维持多轮交互中的上下文连贯性,并具备强大的信息整合与处理能力。其关键组件包括查询重构、搜索澄清、对话式检索和响应生成,协同实现高级交互。本文综述对话式搜索的最新进展与未来方向,分析系统核心模块,强调大模型在其中的融合应用,探讨当前挑战与机遇。同时,提供对实际应用及现有系统鲁棒评估的洞察,旨在为后续研究与开发提供指导。
原文摘要 · Abstract (English)
As a cornerstone of modern information access, search engines have become indispensable in everyday life. With the rapid advancements in AI and natural language processing (NLP) technologies, particularly large language models (LLMs), search engines have evolved to support more intuitive and intelligent interactions between users and systems. Conversational search, an emerging paradigm for next-generation search engines, leverages natural language dialogue to facilitate complex and precise information retrieval, thus attracting significant attention. Unlike traditional keyword-based search engines, conversational search systems enhance user experience by supporting intricate queries, maintaining context over multi-turn interactions, and providing robust information integration and processing capabilities. Key components such as query reformulation, search clarification, conversational retrieval, and response generation work in unison to enable these sophisticated interactions. In this survey, we explore the recent advancements and potential future directions in conversational search, examining the critical modules that constitute a conversational search system. We highlight the integration of LLMs in enhancing these systems and discuss the challenges and opportunities that lie ahead in this dynamic field. Additionally, we provide insights into real-world applications and robust evaluations of current conversational search systems, aiming to guide future research and development in conversational search.
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