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《橡塑技术与装备》 2026年第1期87-88,共2页
降噪充气轮胎Noise-reducing pneumatic tire本发明是关于降噪空气机轮胎的,更详细地说,是关于降噪空气机轮胎,以有效降低轮胎产生的噪音。为了达到上述目的,本发明的一个示例是,具有向轮胎圆周方向延伸的第一凹槽和第二凹槽的凹槽部;... 降噪充气轮胎Noise-reducing pneumatic tire本发明是关于降噪空气机轮胎的,更详细地说,是关于降噪空气机轮胎,以有效降低轮胎产生的噪音。为了达到上述目的,本发明的一个示例是,具有向轮胎圆周方向延伸的第一凹槽和第二凹槽的凹槽部;在上述第一凹槽和上述第二凹槽之间设置的块部;上述区块簿上的公明书;以及包括为连接上述共鸣部和上述凹槽部而准备的多个颈部,多个上述颈部提供以截面形状不同为特征的降噪空气轮胎(专利号:KR102857788(B1))。 展开更多
关键词 pneumatic tire noise-reducing 降噪 充气轮胎
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Network Intrusion Detection Model Based on Ensemble of Denoising Adversarial Autoencoder 被引量:1
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作者 KE Rui XING Bin +1 位作者 SI Zhan-jun ZHANG Ying-xue 《印刷与数字媒体技术研究》 CAS 北大核心 2024年第5期185-194,218,共11页
Network security problems bring many imperceptible threats to the integrity of data and the reliability of device services,so proposing a network intrusion detection model with high reliability is of great research si... Network security problems bring many imperceptible threats to the integrity of data and the reliability of device services,so proposing a network intrusion detection model with high reliability is of great research significance for network security.Due to the strong generalization of invalid features during training process,it is more difficult for single autoencoder intrusion detection model to obtain effective results.A network intrusion detection model based on the Ensemble of Denoising Adversarial Autoencoder(EDAAE)was proposed,which had higher accuracy and reliability compared to the traditional anomaly detection model.Using the adversarial learning idea of Adversarial Autoencoder(AAE),the discriminator module was added to the original model,and the encoder part was used as the generator.The distribution of the hidden space of the data generated by the encoder matched with the distribution of the original data.The generalization of the model to the invalid features was also reduced to improve the detection accuracy.At the same time,the denoising autoencoder and integrated operation was introduced to prevent overfitting in the adversarial learning process.Experiments on the CICIDS2018 traffic dataset showed that the proposed intrusion detection model achieves an Accuracy of 95.23%,which out performs traditional self-encoders and other existing intrusion detection models methods in terms of overall performance. 展开更多
关键词 Intrusion detection noise-reducing autoencoder Generative adversarial networks Integrated learning
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