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Towards Trusted Services: Result Verification Schemes for MapReduce

机译:迈向可信服务:MapReduce的结果验证方案

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摘要

Recent development in Internet-scale data applications and services, combined with the proliferation of cloud computing, has created a new computing model for data intensive computing best characterized by the MapReduce paradigm. The MapReduce computing paradigm, pioneered by Google in its Internet search application, is an architectural and programming model for efficiently processing massive amount of raw unstructured data. With the availability of the open source Hadoop tools, applications built based on the MapReduce computing model are rapidly growing. In this work, we focus on a unique security concern on the MapReduce architecture. Given the potential security risks from lazy or malicious servers involved in a MapReduce task, we design efficient and innovative mechanisms for detecting cheating services under the MapReduce environment based on watermark injection and random sampling methods. The new detection schemes are expected to significantly reduce the cost of verification overhead. Finally, extensive analytical and experimental evaluation confirms the effectiveness of our schemes in MapReduce result verification.
机译:Internet规模的数据应用程序和服务的最新发展,加上云计算的激增,为以MapReduce范式为特征的数据密集型计算创建了新的计算模型。由Google在其Internet搜索应用程序中率先推出的MapReduce计算范例是一种架构和编程模型,可有效处理大量的原始非结构化数据。随着开源Hadoop工具的可用性,基于MapReduce计算模型构建的应用程序正在迅速增长。在这项工作中,我们专注于MapReduce架构上的唯一安全性问题。考虑到参与MapReduce任务的懒惰或恶意服务器可能带来的安全风险,我们基于水印注入和随机采样方法设计了有效且创新的机制来检测MapReduce环境下的作弊服务。新的检测方案有望显着降低验证开销的成本。最后,广泛的分析和实验评估证实了我们的方案在MapReduce结果验证中的有效性。

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