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Pre-training Methods in Information Retrieval
Yixing Fan; Xiaohui Xie; Yinqiong Cai; Jia Chen; Xinyu Ma; Xiangsheng Li; Ruqing Zhang; Jiafeng Guo
now publishers Inc (2022)
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105,70
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Smart Grid and Cyber Security Technologies - 8th International Conference on Life System Modeling and Simulation, LSMS 2024 and
Dajun Du; Xinchun Jia; Wanqing Zhao; Xue Li; Xin Sun; Zhiru Cao
Springer Nature Switzerland AG (2024)
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134,60
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ostoskoriin kpl
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dong bei zi yuan zhi wu shou ce
wang wei; bo pei yun; li jia qing; zhu you chang

16,80
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Applications and Techniques in Information Security - 9th International Conference, ATIS 2018, Nanning, China, November 9–11, 20
Qingfeng Chen; Jia Wu; Shichao Zhang; Changan Yuan; Lynn Batten; Gang Li
Springer Verlag, Singapore (2018)
Pehmeäkantinen kirja
51,40
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ostoskoriin kpl
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Pre-training Methods in Information Retrieval
105,70 €
now publishers Inc
Sivumäärä: 156 sivua
Asu: Pehmeäkantinen kirja
Julkaisuvuosi: 2022, 18.08.2022 (lisätietoa)
Kieli: Englanti
Information retrieval (IR) is a fundamental task in many real-world applications such as Web search, question answering systems, and digital libraries. The core of IR is to identify information resources relevant to user’s information need. Since there might be more than one relevant resource, the returned result is often organized as a ranked list of documents according to their relevance degree against the information need. The ranking property of IR makes it different from other tasks, and researchers have devoted substantial efforts to develop a variety of ranking models in IR.

In recent years, the resurgence of deep learning has greatly advanced this field and led to a hot topic named NeuIR (neural information retrieval), especially the paradigm of pre-training methods (PTMs). Owing to sophisticated pre-training objectives and huge model size, pre-trained models can learn universal language representations from massive textual data that are beneficial to the ranking task of IR. Considering the rapid progress of this direction, this survey provides a systematic review of PTMs in IR. The authors present an overview of PTMs applied in different components of an IR system, including the retrieval component and the re-ranking component. In addition, they introduce PTMs specifically designed for IR, and summarize available datasets as well as benchmark leaderboards. Lastly, they discuss some open challenges and highlight several promising directions with the hope of inspiring and facilitating more works on these topics for future research.

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Helsinki
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Turku
Tampere
Pre-training Methods in Information Retrievalzoom
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ISBN:
9781638280620
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