ScientISST CORE:生物医学工程新型硬件开发平台

IF 2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Leonor Pereira , Francisco de Melo , Frederico Almeida Santos , Afonso Fortes Ferreira , Hugo Plácido da Silva
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引用次数: 0

摘要

今天,由于生物医学工程原理和设备在其他领域的应用,生物信号的使用不再局限于传统的医疗保健和医学领域,为更广阔的生理计算领域铺平了道路。全球工程界对生物信号采集日益增长的兴趣,以及与生物信号采集的严格要求相关的挑战,推动了低成本生理传感仪器的发展。但是,在实验活动和实际项目中使用其中一些工具仍然受到费用和获得适当支助材料的机会有限的限制。在本文中,我们提出了一种新颖的低成本硬件架构,专为生物信号采集而设计,并预先编程了一个针对实时数据采集和流优化的固件。我们的方法可以与可用的开源软件和api无缝使用,而不需要广泛的电子或编程知识。我们还描述了一系列测试,以评估该设备的性能,作为验证其在工程和科学工作中使用的适用性的一种方式。总体而言,本文给出的结果表明,在测试条件下,通信中没有数据丢失,采样率准确,噪声抑制能力强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

ScientISST CORE: A novel hardware development platform for biomedical engineering

ScientISST CORE: A novel hardware development platform for biomedical engineering
Today, the use of biosignals is no longer limited to the traditional healthcare and medical domains, thanks to the application of biomedical engineering principles and devices in other domains, paving the way to the broader field of physiological computing. The increasing interest from the global engineering community, together with the challenges associated with the stringent requirements of biosignal acquisition, have motivated the development of enabling low-cost instruments for physiological sensing. Still, the use of some of these instruments in experimental activities and practical projects is still bounded by the cost and limited access to adequate support materials. In this paper, we present a novel low-cost hardware architecture especially designed for biosignal acquisition, and pre-programmed with a firmware optimized for real-time data acquisition and streaming. Our approach can be used seamlessly with available open-source software and APIs, without requiring extensive knowledge of electronics or programming. We also describe a series of tests conducted to evaluate the performance of this device, as a way of verifying its suitability for use in engineering and scientific work. Overall, the results presented here show that there is no loss of data in communication, accurate sampling rates, and high noise rejection capabilities in the tested conditions.
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来源期刊
HardwareX
HardwareX Engineering-Industrial and Manufacturing Engineering
CiteScore
4.10
自引率
18.20%
发文量
124
审稿时长
24 weeks
期刊介绍: HardwareX is an open access journal established to promote free and open source designing, building and customizing of scientific infrastructure (hardware). HardwareX aims to recognize researchers for the time and effort in developing scientific infrastructure while providing end-users with sufficient information to replicate and validate the advances presented. HardwareX is open to input from all scientific, technological and medical disciplines. Scientific infrastructure will be interpreted in the broadest sense. Including hardware modifications to existing infrastructure, sensors and tools that perform measurements and other functions outside of the traditional lab setting (such as wearables, air/water quality sensors, and low cost alternatives to existing tools), and the creation of wholly new tools for either standard or novel laboratory tasks. Authors are encouraged to submit hardware developments that address all aspects of science, not only the final measurement, for example, enhancements in sample preparation and handling, user safety, and quality control. The use of distributed digital manufacturing strategies (e.g. 3-D printing) is encouraged. All designs must be submitted under an open hardware license.
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