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Titlebook: Artificial Intelligence in Data and Big Data Processing; Proceedings of ICABD Ngoc Hoang Thanh Dang,Yu-Dong Zhang,Bo-Hao Chen Conference pr

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楼主: Destruct
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Vietnamese Text Summarization Based on Neural Network Modelsin Vietnamese comprising 95,579 documents collected from commonly read Vietnamese online newspapers. The summarization model based on the bottom-up approach creates the best summaries. The F1-scores of ROUGE-1, ROUGE2, and ROUGE-L of the bottom-up approach are 0.598, 0.260, and 0.455, respectively.
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An Enhanced Ant Colony Algorithm for Vehicle Path Planning Optimization Problemon. The EACO applies for logistics vehicle path planning optimization (VPP) by using the optimal solution of an “opts” method. The experimental results reveal that the proposed algorithm outperforms the ACO and the other algorithms in the literature for logistical distribution paths and delivery vehicle routes to satisfy customers’ needs.
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Conference proceedings 2022ommunicate with humans, and they must act like humans in different aspects such as vision, communication, thinking, feeling, and acting..“A computer would deserve to be called intelligent if it could deceive a human into believing that it was human”. . —Alan Turing.
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Determinanten der Familienmodellwahl,graphs, including conceptual and relational measures were investigated. The proposed technique was tested on the standard Information Retrieval problems of named entity recognition and relations extraction. Experiments were made on the BioNLP texts corpus.
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Das Gelingen von Doppelkarriere-Familienmodel show that the DR layer reduces significantly the performance of these models when we concatenate more feature maps together. Besides, we found that the DR layer works well on models using residual learning blocks such as ResNet.
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Exhaustive Search for Weighted Ensemble Classifiers to Improve Performance on Imbalanced Dataset. recall 92.71%, precision 79.14%, F1 84.73%, AUC 79.96%, and accuracy 76.88%. The ensemble of LR, SVM and NB and the ensemble of LDA, SVM, and NB outperforms the second and third benchmark, respectively.
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Dimensional Reduction Layer: The Simple Way to Build Lightweight Modelsmodel show that the DR layer reduces significantly the performance of these models when we concatenate more feature maps together. Besides, we found that the DR layer works well on models using residual learning blocks such as ResNet.
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