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Advancing Science through Mining Libraries Ontologies and Communities

机译:通过挖掘图书馆本体和社区来促进科学发展

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摘要

Life scientists today cannot hope to read everything relevant to their research. Emerging text-mining tools can help by identifying topics and distilling statements from books and articles with increased accuracy. Researchers often organize these statements into ontologies, consistent systems of reality claims. Like scientific thinking and interchange, however, text-mined information (even when accurately captured) is complex, redundant, sometimes incoherent, and often contradictory: it is rooted in a mixture of only partially consistent ontologies. We review work that models scientific reason and suggest how computational reasoning across ontologies and the broader distribution of textual statements can assess the certainty of statements and the process by which statements become certain. With the emergence of digitized data regarding networks of scientific authorship, institutions, and resources, we explore the possibility of accounting for social dependences and cultural biases in reasoning models. Computational reasoning is starting to fill out ontologies and flag internal inconsistencies in several areas of bioscience. In the not too distant future, scientists may be able to use statements and rich models of the processes that produced them to identify underexplored areas, resurrect forgotten findings and ideas, deconvolute the spaghetti of underlying ontologies, and synthesize novel knowledge and hypotheses.
机译:当今的生命科学家无法希望阅读与他们的研究相关的所有内容。新兴的文本挖掘工具可以帮助您确定主题并从书籍和文章中提炼出更高准确性的陈述。研究人员通常将这些陈述组织成本体,一致的现实声明系统。但是,像科学思维和交流一样,文本挖掘的信息(即使准确地捕获了)也是复杂,冗余,有时不连贯且经常相互矛盾的:它植根于仅部分一致的本体的混合体中。我们回顾了对科学理性进行建模的工作,并提出了跨本体论和文本陈述的更广泛分布的计算推理如何评估陈述的确定性以及陈述确定的过程。随着有关科学著作权,机构和资源网络的数字化数据的出现,我们探索了在推理模型中考虑社会依赖性和文化偏见的可能性。计算推理开始填充本体论,并标记生物科学几个领域的内部矛盾。在不久的将来,科学家可能能够使用产生它们的过程的陈述和丰富的模型来识别未充分挖掘的区域,复活被遗忘的发现和想法,使基础本体的意大利面反卷积并合成新的知识和假设。

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