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Ultrasound Intra Body Multi Node Communication System for Bioelectronic Medicine

机译:生物电子医学超声体内多节点通信系统

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摘要

The coming years may see the advent of distributed implantable devices to support bioelectronic medicinal treatments. Communication between implantable components and between deep implants and the outside world can be challenging. Percutaneous wired connectivity is undesirable and both radiofrequency and optical methods are limited by tissue absorption and power safety limits. As such, there is a significant potential niche for ultrasound communications in this domain. In this paper, we present the design and testing of a reliable and efficient ultrasonic communication telemetry scheme using piezoelectric transducers that operate at 320 kHz frequency. A key challenge results from the multi-propagation path effect. Therefore, we present a method, using short pulse sequences with relaxation intervals. To counter an increasing bit, and thus packet, error rate with distance, we have incorporated an error correction encoding scheme. We then demonstrate how the communication scheme can scale to a network of implantable devices. We demonstrate that we can achieve an effective, error-free, data rate of 0.6 kbps, which is sufficient for low data rate bioelectronic medicine applications. Transmission can be achieved at an energy cost of 642 nJ per bit data packet using on/off power cycling in the electronics.
机译:未来几年可能会出现支持生物电子医学治疗的分布式可植入设备的问世。可植入组件之间以及深层植入物与外界之间的通信可能具有挑战性。经皮有线连接是不希望的,并且射频和光学方法都受组织吸收和功率安全性限制。这样,在该领域中,超声通信存在巨大的潜在利基。在本文中,我们介绍了使用在320 kHz频率下工作的压电换能器的可靠,高效的超声通信遥测方案的设计和测试。关键的挑战来自多重传播路径效应。因此,我们提出一种使用具有松弛间隔的短脉冲序列的方法。为了对付增加的比特,从而对与距离有关的分组错误率,我们采用了纠错编码方案。然后,我们演示了通信方案如何扩展到可植入设备的网络。我们证明了我们可以实现0.6 kbps的有效,无错误的数据速率,这对于低数据速率的生物电子医学应用来说已经足够。使用电子设备中的开/关电源循环,可以以每位数据包642 nJ的能量成本实现传输。

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