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Self-Adaptive Context Data Management in Large-Scale Mobile Systems

机译:大型移动系统中的自适应上下文数据管理

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摘要

Context awareness, intended as providing the current execution environment at the service level, is a fundamental capability in future mobile systems. Unfortunately, the real-world realization of such scenarios is currently undermined by inefficient context data delivery mechanisms, which introduce excessive overhead over bandwidth-constrained wireless fixed infrastructures. To efficiently offload context access from fixed infrastructures to mobile nodes, this paper presents a new data caching algorithm that exploits peculiar aspects of context distribution, mainly limited data lifetime and interests similarity between nodes in physical proximity, to properly select the data to evict when necessary. Our solution considers a history over past data accesses and information over data replication to better exploit the limited available space. Extensive simulation results, collected in NS2 simulator, support our assumptions and demonstrate that our caching solution improves system scalability while adding a limited management overhead.
机译:上下文感知旨在提供服务级别的当前执行环境,是未来移动系统的基本功能。不幸的是,当前这种情况的现实实现受到效率低下的上下文数据传递机制的破坏,该机制在带宽受限的无线固定基础结构上引入了过多的开销。为了有效地将上下文访问从固定基础架构转移到移动节点,本文提出了一种新的数据缓存算法,该算法利用上下文分发的特殊方面(主要是有限的数据寿命和物理邻近节点之间的兴趣相似性)来适当地选择要在必要时驱逐的数据。我们的解决方案考虑了过去数据访问的历史记录以及关于数据复制的信息,以更好地利用有限的可用空间。在NS2模拟器中收集的大量仿真结果支持了我们的假设,并证明了我们的缓存解决方案在提高系统可伸缩性的同时增加了有限的管理开销。

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