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《人工智能、机器学习与大数据》课程教学资源(参考文献)Relation regularized matrix factorization
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《人工智能、机器学习与大数据》课程教学资源(参考文献)Latent Wishart processes for relational kernel learning
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《人工智能、机器学习与大数据》课程教学资源(参考文献)Multicategory large margin classification methods - hinge losses vs. coherence functions
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《人工智能、机器学习与大数据》课程教学资源(参考文献)Latent Wishart processes for relational kernel learning(讲稿)
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《人工智能、机器学习与大数据》课程教学资源(参考文献)Buffered Asynchronous SGD for Byzantine Learning
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1 Introduction 2 Unsupervised Hashing 3 Supervised Hashing 4 Ranking-based Hashing 5 Multimodal Hashing 6 Deep Hashing 7 Quantization 8 Conclusion 9 Reference
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1 Introduction Problem Definition Existing Methods 2 Scalable Graph Hashing with Feature Transformation Motivation Model and Learning Experiment 3 Conclusion 4 Reference
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1 Introduction Problem Definition Existing Methods 2 Isotropic Hashing Model Learning Experiment 3 Multiple-Bit Quantization Double-Bit Quantization Manhattan Quantization 4 Conclusion 5 Reference
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1 Introduction Problem Definition Existing Methods Motivation and Contribution 2 Isotropic Hashing Model Learning Experimental Results 3 Multiple-Bit Quantization Double-Bit Quantization Manhattan Quantization 4 Conclusion 5 Reference
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 Motivation – Why do we need big data integration? – How has “small” data integration been done? – Challenges in big data integration  Schema alignment  Record linkage  Data fusion  Emerging topics
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