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BESearch: A Supervised Learning Approach to Search for Molecular Event Participants

机译:BESearch:一种监督学习的方法来搜索分子事件参与者

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Biomedical researchers rely on keyword-based search engines to retrieve superficially relevant documents, from which they must filter out irrelevant information manually. Hence, there is an urgent need for a more efficient system to help them rapidly locate specific molecular events and the participants involved in these events. In this paper, we propose a novel search system with a new search interface and answer ranking scheme. Due to the limited number of query types in the Biomedical-specific searches, we employ a form-based interface with various query templates for specifying required information. This can ascertain a user''s intentions more accurately than a conventional keyword-based interface. Ranking is another key issue in this type of search. We propose a linear ranking model, trained by a supervised learning algorithm, which combines different features. Two semantic features, named entity types and semantic roles, are incorporated into the model to help match a query with entities in relevant documents. After employing all effective semantic features, our system achieves a Top-1 accuracy of 43.1% and Top-5 MRR of 47.1%. In comparison with the baseline system, Top-1 accuracy and Top-5 MRR increase by 9.5% and 7.1%.
机译:生物医学研究人员依靠基于关键字的搜索引擎来检索表面相关的文档,他们必须从中手动过滤掉不相关的信息。因此,迫切需要一种更有效的系统来帮助他们快速定位特定的分子事件以及参与这些事件的参与者。在本文中,我们提出了一种具有新搜索界面和答案排名方案的新颖搜索系统。由于特定于生物医学的搜索中查询类型的数量有限,我们采用了具有各种查询模板的基于表单的界面来指定所需的信息。与传统的基于关键字的界面相比,这可以更准确地确定用户的意图。排名是此类搜索中的另一个关键问题。我们提出了一种线性排序模型,该模型由有监督的学习算法训练,并结合了不同的功能。该模型包含了两个语义特征,即命名实体类型和语义角色,以帮助将查询与相关文档中的实体进行匹配。使用所有有效的语义特征后,我们的系统实现了Top-1准确性为43.1%,Top-5 MRR为47.1%。与基准系统相比,Top-1准确性和Top-5 MRR分别提高了9.5%和7.1%。

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