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A Fine-grained Access Control Scheme for Big Data Based on Classification Attributes

机译:基于分类属性的大数据的细粒度访问控制方案

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In order to protect the security and privacy of big data, the cloud storage service needs to enforce effective access control mechanism on user requests. Attribute-Based Encryption is a promising cryptographic access control technique to ensure the end-to-end security of data in cloud. However, the existing ABE researches mainly focus on the efficiency decryption, while the flexibility of policy, the communication cost, and the metadata management of ciphertexts are still challenging issues in the big data environment. In this paper, for the first time, we propose a new distributed, scalable and fine-grained access control scheme based on classification attributes for the cloud object storage. The classification attributes and threshold policies are integrated into an access structure, and then the objects are encrypted with the integrated access structure. The constant-size cipher-text components related to attributes can be managed as the corresponding metadata. As a result the encryption complexity and ciphertext storage are reduced. In addition, we present a new label-based access control model with multi-authorities to describe the detailed relationships of entities in our scheme. Besides, the proposed scheme is proved to be secure under 1-BDHE assumption, and the system implementation demonstrates the practical feasibility and good performance.
机译:为了保护大数据的安全性和隐私,云存储服务需要对用户请求强制执行有效的访问控制机制。基于属性的加密是一个有前途的加密访问控制技术,以确保云中的数据的端到端安全性。然而,现有的ABE研究主要关注效率解密,而策略的灵活性,通信成本和密文的元数据管理仍然具有挑战大数据环境的问题。在本文中,我们首次提出了一种基于云对象存储的分类属性的新的分布式,可扩展和细粒度的访问控制方案。分类属性和阈值策略被集成到访问结构中,然后将对象与集成访问结构加密。与属性相关的常规密码文本组件可以管理为相应的元数据。结果,加密复杂性和密文存储减少。此外,我们还提供了一种新的基于标签的访问控制模型,具有多个当局来描述我们计划中实体的详细关系。此外,证明该方案被证明是在1-BDHE的假设下安全,系统实施表明了实际可行性和良好性能。

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