Complex Pattern
Complex pattern analysis focuses on identifying, understanding, and utilizing recurring structures within diverse data types, ranging from human mobility and network communications to images and time series. Current research emphasizes developing novel algorithms and model architectures, such as those based on tensor factorization, recurrent neural networks, and generative models, to efficiently extract and interpret these patterns, often incorporating temporal dynamics and handling incomplete or noisy data. This field is crucial for advancing various scientific disciplines and practical applications, including anomaly detection, predictive modeling, and improved decision-making in areas like healthcare, finance, and autonomous systems.
Papers
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