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Titlebook: Database Systems for Advanced Applications; 25th International C Yunmook Nah,Bin Cui,Steven Euijong Whang Conference proceedings 2020 Sprin

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Contemporary Issues in Macroeconomicsng records. MRMRP is capable of extracting useful features from supplementary reviews to further improve recommendation performance by applying a deep learning based method. Moreover, the supplementary reviews can be incorporated into different neural models to boost rating prediction accuracy. Expe
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https://doi.org/10.1007/978-1-349-14299-6egmentation) have different labels from the bag’s (segmentation’s) label. The prototype is the center of the instances in WPN rather than less discriminative bags, which determines the bag-level classification accuracy. To get the most representative instance-level prototype, we propose two strategi
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Martin Guzman,Joseph E. Stiglitza sentence, we adopt a self-attention component to generate sentence level representations and then measure their relevance with a neural tensor network. To better utilize the interaction information, we devise an inter-attention component to further consider the influence of one sentence on another
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Contemporary Issues in Microeconomicsd show that the interpretation issues can be addressed by including a family of utility functions in the space of instance embedding. Following this route, we propose a novel Permutation-Invariant Operator to improve the instance-level interpretability of MIL as well as the overall performance. We a
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The Role of Mining in the Australian Economybles of input data by minimizing the combination of latent error and neural density. The neural density of input data can be estimated naturally by ADAF, along with the latent variable inference, rather than through an additional stitched density estimation network. Unlike stitching decoupled models
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https://doi.org/10.1057/9781137025807on this KG embedding model, we perform entity typing from coarse-grained level to more fine-grained level hierarchically. Besides, we also propose ways to utilize zero-shot attribute values that never appear in the training set. Our experiments performed on real-world KGs show that our approach is s
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Practical Problems in Mining Valuationsncoder that can handle any set of feature values in various sizes. And the selector efficiently learns the cost-effective strategy based on the state-of-art reinforcement learning techniques. Experimental results have shown that under the same classification accuracy, our strategy is superior to oth
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