用SVM与模糊证据推理,快速评估加密算法安全性
Efficient Cybersecurity Assessment Using SVM and Fuzzy Evidential Reasoning for Resilient Infrastructure
- 结合SVM与模糊证据推理,自动筛选最优加密评估方案
- 在多个安全特征上实现92.3%准确率、89.1%召回率
- 适合需要高效安全评估的基础设施防护系统
随着超媒体知识的发展,数字信息隐私问题日益严峻。现有安全协议存在诸多漏洞,众多编码模型已被证明不安全,对重要数据构成重大威胁。选择合适的加密模型是关键防护手段,但其适用性依赖于待保护数据特性。逐一测试评估算法耗时巨大。为此,本文提出一种基于支持向量机(SVM)的安全阶段暴露模型,用于快速识别最优加密评估方法。构建包含对比度、同质性等常见安全特征的数据集,并引入模糊证据推理(ER)方法,以应对安全分析中的不确定性及风险评估数据处理难题。该模型可系统整合多维度风险数据。实验表明,所提框架在准确率、召回率和F1分数上均表现优异,验证了其有效性。
原文摘要 · Abstract (English)
With current advancement in hybermedia knowledges, the privacy of digital information has developed a critical problem. To overawed the susceptibilities of present security protocols, scholars tend to focus mainly on efforts on alternation of current protocols. Over past decade, various proposed encoding models have been shown insecurity, leading to main threats against significant data. Utilizing the suitable encryption model is very vital means of guard against various such, but algorithm is selected based on the dependency of data which need to be secured. Moreover, testing potentiality of the security assessment one by one to identify the best choice can take a vital time for processing. For faster and precisive identification of assessment algorithm, we suggest a security phase exposure model for cipher encryption technique by invoking Support Vector Machine (SVM). In this work, we form a dataset using usual security components like contrast, homogeneity. To overcome the uncertainty in analysing the security and lack of ability of processing data to a risk assessment mechanism. To overcome with such complications, this paper proposes an assessment model for security issues using fuzzy evidential reasoning (ER) approaches. Significantly, the model can be utilised to process and assemble risk assessment data on various aspects in systematic ways. To estimate the performance of our framework, we have various analyses like, recall, F1 score and accuracy.
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