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Beyond underwater acoustic communications

机译:超越水下声通信

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The ability to communicate underwater using acoustic energy in place of electromagnetic energy is rapidly becoming commonplace. Indeed, vendors and academic researchers in many advanced countries are pursuing the development of acoustic modems. The emphasis often varies among these efforts: some, especially academic researchers, focus on increased throughput, or data rate, others investigate the development of undersea networks, and others concentrate on autonomous schemes enabling modems to establish “optimal” links with each other. We focus on low power operations, small size, reliability, and flexibility in application. The Teledyne Benthos approach to modem development is to design for many auxiliary capabilities that, while not explicitly communications functions, rely on the communications capabilities and computing infrastructure of the modem. The internal structure of the Telesonar modem is based on a file-sharing system which supports all aspects of the modem: acoustic and/or sensor (digital) data storage, stored wavefiles (for experimental transmissions), and algorithm implementations. In particular, it supports an SD-card data storage system, currently providing 64 Gbyte of storage. As an example, integration with an ADCP is simply provided by a parallel data storage wherein the ADCP stores data in its native format, and the modem stores exactly the same data, but in a time-stamped file system. This form of storage is known to any remote modem such that any file or files can be uploaded and acoustically transmitted. The remote modem may also query any aspect of the stored data - the amount of storage used, the number of files stored, etc., without impact of any The combination of arbitrary waveform transmission (from stored files) and acoustic data recording was recently used to demonstrate the ability of a specialized waveform for use in highly reverberant and physically constricted environments. This combination of capabilities enabled t--he complete design, testing, and data analysis to be completed in under one week without the necessity of embedded programming within the modem DSP.
机译:使用声能代替电磁能在水下进行通信的能力正在迅速普及。实际上,许多发达国家的供应商和学术研究人员都在追求声学调制解调器的发展。在这些工作中,重点通常会有所不同:一些人,尤其是学术研究人员,专注于提高吞吐量或数据速率,其他人则研究海底网络的发展,而另一些人则专注于使调制解调器能够彼此建立“最佳”链接的自治方案。我们专注于低功耗操作,小尺寸,可靠性和应用程序灵活性。 Teledyne Benthos进行调制解调器开发的方法是设计许多辅助功能,这些功能虽然不是明确的通信功能,但仍依赖于调制解调器的通信功能和计算基础结构。 Telesonar调制解调器的内部结构基于文件共享系统,该系统支持调制解调器的所有方面:声学和/或传感器(数字)数据存储,存储的波形文件(用于实验性传输)和算法实现。特别是,它支持SD卡数据存储系统,当前可提供64 GB的存储空间。例如,与ADCP的集成仅由并行数据存储提供,其中ADCP以其本机格式存储数据,而调制解调器以时间戳文件系统存储完全相同的数据。任何远程调制解调器都知道这种存储方式,因此可以上传和声音传输任何文件。远程调制解调器还可以查询存储数据的任何方面-使用的存储量,存储的文件数等,而不会受到任何影响。最近使用了任意波形传输(来自存储的文件)和声学数据记录的组合演示专用波形在高混响和物理受限环境中使用的能力。功能的这种组合使t- -- 他可以在不到一周的时间内完成设计,测试和数据分析,而无需在调制解调器DSP内进行嵌入式编程。

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