Nanotoxicity modeling in multidimentional cube

BIBM(2014)

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摘要
Nanotoxicity modeling can reveal the relationship between nanomaterial properties and unintended adverse effects. Traditional modeling usually builds a prediction model on the whole dataset. It does not examine the subsets of the data and their quality for model building. In this paper, we introduce a prediction cube approach to nanotoxicity modeling. Prediction cube is a new type of data cube for data exploration and predictive analytics. It can help researchers slice/dice a large amount of nanotoxicity data and measure the quality of different subsets for building prediction models. We constructed a prediction cube using a sample nanotoxicity data on zebrafish. The results show that the prediction cube can help identify useful subsets for building high quality prediction models. And the cube interface facilitates the exploration of data subsets and associated models.
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关键词
unintended adverse effect,prediction cube,subset identification,nanomaterial properties,multidimentional cube,nanotoxicity data slicing,zebrafish,user interfaces,data cube,data subset exploration,nanostructured materials,data analysis,nanotoxicity data dicing,subset quality measurement,prediction model quality,nanotoxicity,data exploration,biology computing,associated model exploration,cube interface,data mining,nanotoxicity modeling,sample nanotoxicity data,predictive analytics,toxicology,modeling,zoology,chemical hazards,prediction cube approach,materials,predictive models,data models,accuracy
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