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Blockchain-Enabled Dynamic Spectrum Access: Cooperative Spectrum Sensing, Access and Mining

机译:启用区块链的动态频谱访问:协作频谱感测,访问和挖掘

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Traditionally, dynamic spectrum access (DSA) based on cooperative spectrum sensing relies on a centralized fusion centre to fuse and store the sensing results, which is vulnerable to single point of failure. In this paper, we propose a sensing-based DSA framework which is enabled by blockchain. The proposed DSA framework includes a protocol that specifies a time-slotted-based five-phase operations. In the proposed framework, each secondary user (SU) acts as both a sensing node for cooperatively sensing the spectrum and a node, i.e., a miner and a verifier, in the blockchain network for mining and updating the sensing and access results in a distributed and secure manner without the need for a fusion centre. In order to incentivize SUs for participating in such energy-consuming operations of the blockchain network, we reward them with tokens for sensing and mining, which can be used to bid for the access to the spectrum opportunities. The sensing and mining policies which they use to determine when to sense and mine affect the number of tokens they can obtain and subsequently how they bid for the spectrum. Hence, the performance of the system depends on their sensing-access-mining policy. Therefore, we consider a heuristic sensing- access-mining policy that determines whether to participate in sensing and mining in a probabilistic manner and that determines how much to bid based on its buffer occupancy and the number of available tokens. Simulation results show that although increasing sensing and mining probabilities can increase average transmission rate, it also leads to higher energy consumption. Moreover, there exists an optimal set of sensing and mining probabilities that maximize the system energy efficiency.
机译:传统上,基于协作频谱感测的动态频谱访问(DSA)依赖于集中式融合中心来融合和存储感测结果,这很容易出现单点故障。在本文中,我们提出了一种基于感知的DSA框架,该框架由区块链支持。提议的DSA框架包括一个协议,该协议指定了基于时隙的五阶段操作。在所提出的框架中,每个次要用户(SU)既充当用于协作感测频谱的感测节点,又充当区块链网络中的节点(即矿工和验证者),用于在分布式系统中挖掘和更新感测和访问结果无需融合中心,而且安全可靠。为了激励SU参与区块链网络的此类能源消耗操作,我们对它们进行感测和挖掘的代币进行奖励,这些代币可用于竞标获得频谱机会。他们用来确定何时进行感应和挖掘的感应和采矿策略会影响他们可以获得的代币数量,进而影响他们如何竞标频谱。因此,系统的性能取决于其感应访问挖掘策略。因此,我们考虑一种启发式感应访问-挖掘策略,该策略确定是否以概率方式参与感知和挖掘,并基于其缓冲区占用率和可用令牌数量来确定要出价的数量。仿真结果表明,尽管增加传感和挖掘概率可以提高平均传输速率,但也会导致更高的能耗。此外,还存在一组最佳的检测和挖掘概率,可最大程度地提高系统能效。

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