cs.AI updates on arXiv.org 10月14日 12:20
生成式搜索与传统搜索的差异分析
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本文对比了Google等传统搜索引擎与生成式搜索引擎在查询结果上的差异,发现生成式搜索引擎在知识覆盖面、内部与外部知识依赖度、概念呈现等方面与传统搜索存在显著不同,并强调了在生成式AI时代重新审视搜索引擎评估标准的重要性。

arXiv:2510.11560v1 Announce Type: cross Abstract: The advent of LLMs has given rise to a new type of web search: Generative search, where LLMs retrieve web pages related to a query and generate a single, coherent text as a response. This output modality stands in stark contrast to traditional web search, where results are returned as a ranked list of independent web pages. In this paper, we ask: Along what dimensions do generative search outputs differ from traditional web search? We compare Google, a traditional web search engine, with four generative search engines from two providers (Google and OpenAI) across queries from four domains. Our analysis reveals intriguing differences. Most generative search engines cover a wider range of sources compared to web search. Generative search engines vary in the degree to which they rely on internal knowledge contained within the model parameters v.s. external knowledge retrieved from the web. Generative search engines surface varying sets of concepts, creating new opportunities for enhancing search diversity and serendipity. Our results also highlight the need for revisiting evaluation criteria for web search in the age of Generative AI.

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生成式搜索 传统搜索 搜索引擎评估 知识覆盖 AI时代
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