The propagation delay is non-negligible in underwater acoustic networks (UANs) since the propagation speed is five orders of magnitude smaller than the speed of light. In this case, space and time factors are strongly coupled to determine the collisions of packet transmissions. To this end, this paper analyzes the impact of spatial-time coupling on slotted medium access control (MAC). We find that both inter-slot and intra-slot collisions may exist, and the inter-slot collision may span multiple slots. The sending slot dependent interference regions could be an annulus inside the whole transmission range. It is pointed out that there exist collision-free regions when a guard interval larger than a packet duration is used in the slot setting. In this sense, the long slot brings spatial reuse in a transmission range. However, we further find that the successful transmission probabilities and throughput are the same for the slot lengths of one packet duration and two packet durations. Simulation results show that the maximum successful transmission probability and throughput can be achieved by a guard interval less than a packet duration, which is much shorter than the existing slot setting in typical Slotted-ALOHA. Simulations also show that the spatial impact is greater for vertical transmission than for horizontal transmissions due to the longer vertical transmission range in three-dimensional UANs.
翻译:在水下声学网络(UANs)中,传播延迟是不可忽略的,因为传播速度比光速低5个数量级,因此传播延迟是不可忽略的,因为传播速度比光速低5个数量级。在此情况下,空间和时间因素是紧密结合的,以决定包传输的碰撞。为此,本文件分析空间-时间连接在定档中型出入控制(MAC)上的影响。我们发现,间线和地块内部的碰撞可能同时存在,而间线碰撞可能跨越多个空格。发送点依赖干扰区域可能是整个传输范围内的废墟。指出,当在设置空档时使用比包长度更大的间隔时,就存在无碰撞区域。从这个意义上讲,长空档带来空间再利用范围。然而,我们进一步发现,成功的传输概率和吞吐量对于一个包持续时间和两个包持续时间长度的空档都是相同的。模拟结果显示,最大成功传输概率和吞吐量可以通过一个不长的间隔来达到整个传输范围,而这个间隔比现有空格设置的间隔要短得多,因为Slot-al-AL-A的垂直传送距离也比正常的垂直射程要长得多。