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Titlebook: Advances in Knowledge Discovery and Data Mining; 23rd Pacific-Asia Co Qiang Yang,Zhi-Hua Zhou,Sheng-Jun Huang Conference proceedings 2019 S

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Towards One Reusable Model for Various Software Defect Mining Tasksndividual achievement to educational systems and scientific innovation. The main focus of this chapter is the harmful effects of outcomes and objectives upon education. The insights so far bring into question the entire idea of encouraging quality schools, educators, and students through rewarding h
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0302-9743 owledge Discovery and Data Mining, PAKDD 2019, held in Macau, China, in April 2019..The 137 full papers presented were carefully reviewed and selected from 542 submissions. The papers present new ideas, original research results, and practical development experiences from all KDD related areas, incl
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P. John Anderson,David L. Epsteinor downstream tasks. We conduct the experiments on several benchmark datasets. The results show that our model can achieve substantial improvements in two tasks of node classification and link prediction. (Datasets and code are available at ..)
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Magnetic Resonance of the Breast,, we use the enriched representation as the . to analyze the inference relations from detailed perspectives. Finally, a sentence matching method is designed to determine the inference relation in sentence pairs. Experimental results on large-scale NLI corpora and real-world NLI alike corpus demonstrate the superior effectiveness of our . model.
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https://doi.org/10.1007/978-94-007-7232-8nt scales during training, and (2) an adversarial regularization guides the autoencoder in learning robust representations by matching the posterior distribution of the latent embeddings to a given prior distribution. Experimental results on real-world networks show that the proposed approach outperforms strong baselines.
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Clinical Legal Education in Asiaitem network data and generates more general low dimension embedding, resulting in more accurate and diverse recommendation sequences. We compare NEAR with some state-of-the-art algorithms on the DBLP and MovieLens1M datasets, and the experimental results show that our method is able to balance the accuracy and diversity scores.
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Clinical Light Damage to the Eyesigned to extract keyphrases by leveraging such word embeddings. Experimental results show that our approach outperforms 8 state-of-the-art unsupervised methods on two real datasets consistently for keyphrase extraction.
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