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The Stability Property of Cognitive Radio Systems with Imperfect Sensing

机译:具有不完善感知的认知无线电系统的稳定性

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In this paper, we study the stability property of a cognitive radio system comprised of a set of source-destination pairs having different priorities. In particular, we focus attention on the effect of imperfect sensing on the stability region of the system, which has been overlooked in most of related previous work. The adopted cognitive access protocol allows the secondary user not only to exploit the idle slots of the primary user but also to transmit along with the primary user with some probability. This is aimed at achieving the full utilization of the shared channel with capture, i.e., a transmission can be correctly decoded at the destination, even in the presence of other transmissions, if the received signal-to-interference-plus-noise ratio (SINR) exceeds a certain threshold for successful decoding. The abolition of strong primacy, however, requires the secondary user to properly regulate its multi-access probability in order not to impede the primary user's stability guarantee. To this end, the maximum stability region of the system is characterized which describes the theoretical limit on rates that can be pushed into the system while maintaining the queues stable. Interestingly, we found that even with non-zero sensing error rates, there exists a condition for which we can achieve the identical stability region that is achieved with perfect sensing. This is when the destinations enjoy fairly strong capture, and if then sensing errors do not affect the stability region for the queueing system. For the case when the specified condition does not hold, we precisely quantify the loss due to the imperfect sensing in terms of the size of the stability region. Finally, we study the problem of controlling the operating point of the sensing device over its receiver operating characteristic (ROC) and summarize some key aspects observed in the control.
机译:在本文中,我们研究了认知无线电系统的稳定性,该系统由一组具有不同优先级的源-目的地对组成。特别是,我们将注意力集中在不完善感测对系统稳定性区域的影响上,这在先前的大多数相关工作中都被忽略了。所采用的认知访问协议允许次要用户不仅利用主要用户的空闲时隙,而且还以一定概率与主要用户一起传输。这旨在通过捕获来充分利用共享信道,即,即使接收到其他信号,即使接收到的信噪比(SINR),也可以在目的地正确解码传输。 )超过某个成功解码的阈值。但是,强强优先权的废除要求次要用户适当地调节其多址访问概率,以便不妨碍主要用户的稳定性保证。为此,对系统的最大稳定性区域进行了表征,该区域描述了在保持队列稳定的同时可以推入系统的速率的理论极限。有趣的是,我们发现即使在非零检测错误率的情况下,也存在一个条件,我们可以达到与完美检测相同的稳定区域。这是目的地具有相当强的捕获能力的情况,如果这样,则检测错误不会影响排队系统的稳定性区域。对于指定条件不成立的情况,我们会根据稳定区域的大小精确地量化由于传感不完善而导致的损耗。最后,我们研究了在传感设备的接收器工作特性(ROC)上控制传感设备的工作点的问题,并总结了在控制中观察到的一些关键方面。

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