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Titlebook: Operations Research and Decision Aid Methodologies in Traffic and Transportation Management; Martine Labbé,Gilbert Laporte,Philippe Toint

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Katalin Tanczosl basis function (RBF) networks in machine learning, it is appealing to use the technique of federated learning to build RBF networks on decentralized data, mainly when the data owners have restricted training data and computational resources. Although federated learning is privacy-friendly, the con
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Gilbert Laporteantic information across multiple sentences for relation prediction. In this paper, a multi-granularity relation extraction (.) neural network is proposed, which integrates multiple granularity semantic features (i.e., entity level, sentence level and document level), to capture the semantic interac
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Alberto Caprara,Matteo Fischetti,Pier Luigi Guida,Paolo Toth,Daniele Vigole numerous studies have introduced improved approaches for multi-class OOD detection tasks, the investigation into . OOD detection tasks has been notably limited. We introduce Spectral Normalized Joint Energy (SNoJoE), a method that consolidates label-specific information across multiple labels thr
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Martine Labbéantic information across multiple sentences for relation prediction. In this paper, a multi-granularity relation extraction (.) neural network is proposed, which integrates multiple granularity semantic features (i.e., entity level, sentence level and document level), to capture the semantic interac
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Vladimir A. Bulavsky,Vyacheslav V. Kalashnikovese queries by incorporating additional information. Traditional Pseudo-Relevance Feedback (PRF) approaches enhance queries by extracting information from the top-k retrieved documents during the initial retrieval, with their effectiveness closely correlated to retrieval quality. Meanwhile, recent s
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Maddalena Nonatoantic information across multiple sentences for relation prediction. In this paper, a multi-granularity relation extraction (.) neural network is proposed, which integrates multiple granularity semantic features (i.e., entity level, sentence level and document level), to capture the semantic interac
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