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GaaS: Adaptive Cross-Platform Gateway for IoT Applications

机译:GaAs:用于物联网应用的自适应跨平台网关

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Internet of Things (IoT) is expanding at a rapid rate where it allows for virtually endless opportunities and connections to take place. In general, IoT opens the door to a myriad of applications but also to many challenges. One of the major challenges is how to efficiently retrieve the sensory data from "resources-limited" IoT devices. Such devices typically have a restricted energy budget, which broadly hinders their direct connection to the Internet. In this realm, modern mobile devices, e.g. smartphones, tablets, smartwatches, have been harnessed to bridge between the low-power IoT devices and the Internet. However, the current vision which mainly relies on designing siloed gateways, i.e. a separate gateway/App for each IoT device, is certainly impractical, especially with the rapid growth in the number of IoT devices. Furthermore, the energy efficiency of the smart mobile devices hosting the IoT gateways has to be thoroughly considered. To tackle these challenges, we introduce GaaS (Gateway as a Service), a cross-platform gateway architecture for opportunistically retrieving sensory data from the low-power IoT sensors. Through Bluetooth low energy radios, GaaS is capable of simultaneously connecting to several nearby IoT sensors. To this end, we devise two distinct priority-based scheduling algorithms, namely the EP-WSM and FEP-AHP schedulers, which rank the detected IoT sensors, before estimating the connection time for each IoT sensor. The intuition behind ranking the IoT sensors is to improve the data retrieval rate from these sensors together with reducing the energy overhead on the mobile devices. Additionally, GaaS encompasses a self-adaptive engine to automatically balance the trade-off between energy efficiency and data retrieval rate through switching between schedulers according to the runtime dynamics. To demonstrate the effectiveness of GaaS, we implemented an IoT testbed to evaluate the energy consumption, the latency, and the data retrieval rate. The results show that using GaaS, compared to siloed gateways, we can identify up to 18% savings in the consumed energy while requiring much less data retrieval time.
机译:物联网(IOT)的互联网以极快的速度在那里它允许几乎无限的机会和连接,以发生在扩大。在一般情况下,物联网将打开大门,让无数的应用,但也面临许多挑战。其中一个主要的挑战是如何有效地从“资源有限”物联网设备获取感知数据。这些设备通常有一个限制能源预算,这阻碍了广泛的互联网直接连接。在这个领域中,现代移动设备,例如智能手机,平板电脑,智能手表,已开发和利用的低功耗物联网设备和互联网之间的桥梁。然而,目前的视力,其主要依赖于设计孤立网关,即单独的网关/应用对每个设备的IoT,肯定是不切实际的,尤其是与在的IoT设备的数量快速增长。此外,举办物联网网关的智能移动设备的能源效率,必须充分考虑。为了应对这些挑战,我们引入砷化镓(网关服务),为投机从低功耗物联网传感器获取感官数据的跨平台的网关架构。通过蓝牙低功耗无线电,砷化镓是能够同时连接到附近的几个物联网传感器。为此,我们设计两个不同的基于优先级的调度算法,即EP-WSM和FEP-AHP调度器,其中排在检测到的IoT传感器,估计的连接时间的每个的IoT传感器之前。后面排名的IoT传感器直觉是提高来自这些传感器的数据检索率减少了对移动设备的能量开销在一起。此外,砷化镓包括一种自适应发动机通过根据所述运行时动态调度器之间的切换自动地平衡能量效率和数据检索速率之间的折衷。为了证明砷化镓有效性,我们实施了一个物联网试验平台来评估能源消耗,延迟和数据检索速度。结果表明,采用砷化镓,相比孤立的网关,我们可以找出节省高达18%的能源消耗,同时需要少得多的数据检索时间。

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