基于cdfm的云计算数据管理安全高效架构

Muskaan Singh, Ravinder Kumar, Inderveer Chana
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引用次数: 1

摘要

云计算已经成为一种重要的数据存储和计算技术。这使得用户和机构可以依赖云提供商来提供存储和计算,从而提供系统即服务。广泛获取和采用云计算的重要性日益增加,对云的安全性提出了保证。安全保证通过按照云提供商的要求执行计算和检索来提供数据的完整性、机密性和可靠性。在云提供商平台上,复杂应用程序的数据存储、处理和管理变得非常繁琐。需要一种管理机制来管理资源并降低复杂性,以最少的人为干预最大化性能。甚至需要处理云环境中因不同工作负载和故障而发生的安全威胁。基于这种自我管理机制,我们提出了一种新的基于杜鹃的数据碎片和元数据(CDFM)安全高效的方法。它管理翻译的复杂数据,并安全地检索翻译后的数据。在这项工作中,杜鹃池将数据分成不同数量的碎片,发送到不同的数据池中。数据池首先对数据片段进行加密,并为加密后的数据片段分配颜色编码,然后根据该颜色编码准备索引。性能分析显示,在云场景中,安全性和数据碎片比现有的方法性能更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CDFM-based Secure & Efficient Architecture for Data Management in Cloud Computing
Cloud has become a prominent technology of data storage and computation. This allows user and institutions to depend on Cloud providers for storage and computing to offer system as a service. The growing significance of extensive acquisition and adoption of cloud computing have imposed security assurance on cloud. Security assurance provides integrity, confidentiality and reliability of data by performing computation and retrieving in compliance with the cloud providers. The storage, processing and managing of data for complex application becomes cumbersome and burdensome on cloud provider platforms. A management mechanism is required to manage the resources and reduce the complexity for maximizing performance with minimum human intervention. Even handling security threats occurring with varying workloads and failures in cloud environment is entailed. Motivated from this self management mechanism, we proposed a novel Cuckoo-based Data Fragmentation and Metadata (CDFM) secure and efficient approach. It manages the complex data of Translation and retrieves the translated data securely. In this work, cuckoo pools divide the data into different number of fragments and send it to different data pools. Data pools first encrypt the data fragment and assign color code to this encrypted fragment and then prepare indexing according to this color coding. The performance analysis, exhibit higher performance than existing approach for security and data fragmentation in cloud scenario.
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