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Process."],"published-print":{"date-parts":[[2025,10,31]]},"abstract":"<jats:p>\n            <jats:italic toggle=\"yes\">\n              <jats:bold>Warning<\/jats:bold>\n            <\/jats:italic>\n            : This article contains content that may be offensive or controversial.\n          <\/jats:p>\n          <jats:p>\n            With the increasing pursuit of objective reports, automatically understanding media bias has drawn more attention in recent research. However, most of previous work examines media bias from Western ideology, such as the left and right in the political spectrum, which is not applicable to Chinese outlets. Based on the previous lexical bias and informational bias structure, we refine it from the Chinese perspective and go one step further to craft data with seven fine-grained labels. To be specific, we first construct a dataset with Chinese news reports annotated by our newly designed system, and then conduct substantial experiments on it. However, the scale of the annotated data is not enough for the latest deep-learning technology, and the cost of human annotation in media bias, which needs a lot of professional knowledge, is too expensive. Thus, we explore some context enrichment methods to automatically improve these problems. In Data-Augmented Context Enrichment (DACE), we enlarge the training data; while in Retrieval-Augmented Context Enrichment (RACE), we improve information retrieval methods to select valuable information and integrate it into our models to better understand bias. Our results show that both methods outperform our baselines, while RACE methods are more efficient and have more potential.\n            <jats:xref ref-type=\"fn\">\n              <jats:sup>1<\/jats:sup>\n            <\/jats:xref>\n          <\/jats:p>","DOI":"10.1145\/3765898","type":"journal-article","created":{"date-parts":[[2025,9,4]],"date-time":"2025-09-04T11:04:53Z","timestamp":1756983893000},"page":"1-24","update-policy":"https:\/\/doi.org\/10.1145\/crossmark-policy","source":"Crossref","is-referenced-by-count":1,"title":["Data-Augmented and Retrieval-Augmented Context Enrichment in Chinese Media Bias Detection"],"prefix":"10.1145","volume":"24","author":[{"ORCID":"https:\/\/orcid.org\/0009-0006-9601-6905","authenticated-orcid":false,"given":"Luyang","family":"Lin","sequence":"first","affiliation":[{"name":"MoE Key Laboratory of High Confidence Software Technologies, The Chinese University of Hong Kong","place":["Hong Kong, China"]}],"role":[{"role":"author","vocabulary":"crossref"}]},{"ORCID":"https:\/\/orcid.org\/0000-0002-8044-2284","authenticated-orcid":false,"given":"Jing","family":"Li","sequence":"additional","affiliation":[{"name":"Department of Computing, The Hong Kong Polytechnic University","place":["Hong Kong, China"]}],"role":[{"role":"author","vocabulary":"crossref"}]},{"ORCID":"https:\/\/orcid.org\/0000-0002-9427-5659","authenticated-orcid":false,"given":"Kam-Fai","family":"Wong","sequence":"additional","affiliation":[{"name":"MoE Key Laboratory of High Confidence Software Technologies, The Chinese University of Hong Kong","place":["Hong Kong, China"]}],"role":[{"role":"author","vocabulary":"crossref"}]}],"member":"320","published-online":{"date-parts":[[2025,10,9]]},"reference":[{"key":"e_1_3_4_2_2","doi-asserted-by":"crossref","first-page":"121","DOI":"10.18653\/v1\/2021.woah-1.13","volume-title":"Proceedings of the 5th Workshop on Online Abuse and Harms (WOAH 2021)","author":"Aksenov Dmitrii","year":"2021","unstructured":"Dmitrii Aksenov, Peter Bourgonje, Karolina Zaczynska, Malte Ostendorff, Julian Moreno Schneider, and Georg Rehm. 2021. 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