CNN Technique Security Inspection for Data Computing Networks

Doaa Mohsin Abd Ali
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Abstract

The hypothetical as well as system derivation have been shaped by data computing into the analysis of tomorrow. The global computing framework is rapidly influencing cloud development. The security aspects in a cloud-based computing environment remain at the middle of attention, despite the fact that it is important to take further period for could investigation by motivating it to separate fields. The development of cloud subordinate divisions and expert centers has resulted in the provision of optional mission design that is subject to cloud advancement. In order to guard against the potential consequences of being exposed to undesirable communal contests in cases such that, the cloud servers it is adjusted to store such data, weak info of various parameters is typically stored in servers using wireless locations with the presence of various cloud-based systems using geographically consumed info networks producers. The flexibility and benefits of cloud computing will be difficult to accept if the security is inadequate. This study examines cloud analyzing and cloud structure while also addressing security concerns and information computing standards. In addition, a new adversaries administration security strategy based on CNN will be proposed and compared to other readily available security regions. The obtained results for the CNN algorithm show a success rate of 100% with only 0.18 losses at batch number of 2*104. Also the confusion matrix show a very high classification measure for the trained samples among the target with resulting classes.
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数据计算网络的CNN技术安全检测
假设和系统推导已经被数据计算塑造成对未来的分析。全球计算框架正在迅速影响云的发展。基于云的计算环境中的安全方面仍然是人们关注的焦点,尽管有必要通过将其划分为不同的领域来进行进一步的调查。云下属部门和专家中心的发展导致提供了受云发展影响的可选任务设计。为了防止在诸如调整云服务器以存储此类数据的情况下暴露于不受欢迎的公共竞争的潜在后果,各种参数的弱信息通常存储在使用无线位置的服务器中,其中存在使用地理上消耗的信息网络生产者的各种基于云的系统。如果安全性不足,云计算的灵活性和好处将难以接受。本研究探讨了云分析和云结构,同时也解决了安全问题和信息计算标准。此外,将提出一种基于CNN的新的对手管理安全策略,并与其他现成的安全区域进行比较。得到的结果表明,CNN算法在批数为2*104时,成功率为100%,损失仅为0.18。此外,混淆矩阵显示了一个非常高的分类度量训练样本的目标与产生的类别。
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