Department of Anatomy and Neurobiology, University of California, Irvine, CA 92697, USA.
IEEE Rev Biomed Eng. 2008;1:115-42. doi: 10.1109/RBME.2008.2008250. Epub 2008 Nov 5.
As the most successful neural prosthesis, cochlear implants have provided partial hearing to more than 120000 persons worldwide; half of which being pediatric users who are able to develop nearly normal language. Biomedical engineers have played a central role in the design, integration and evaluation of the cochlear implant system, but the overall success is a result of collaborative work with physiologists, psychologists, physicians, educators, and entrepreneurs. This review presents broad yet in-depth academic and industrial perspectives on the underlying research and ongoing development of cochlear implants. The introduction accounts for major events and advances in cochlear implants, including dynamic interplays among engineers, scientists, physicians, and policy makers. The review takes a system approach to address critical issues in cochlear implant research and development. First, the cochlear implant system design and specifications are laid out. Second, the design goals, principles, and methods of the subsystem components are identified from the external speech processor and radio frequency transmission link to the internal receiver, stimulator and electrode arrays. Third, system integration and functional evaluation are presented with respect to safety, reliability, and challenges facing the present and future cochlear implant designers and users. Finally, issues beyond cochlear implants are discussed to address treatment options for the entire spectrum of hearing impairment as well as to use the cochlear implant as a model to design and evaluate other similar neural prostheses such as vestibular and retinal implants.
作为最成功的神经假体,人工耳蜗已为数以万计的全球患者提供了部分听力,其中一半是儿科患者,他们能够发展出近乎正常的语言能力。生物医学工程师在人工耳蜗系统的设计、集成和评估中发挥了核心作用,但整体的成功是与生理学家、心理学家、医生、教育工作者和企业家合作的结果。这篇综述从广泛而深入的学术和工业角度介绍了人工耳蜗的基础研究和正在进行的发展。引言部分介绍了人工耳蜗的重大事件和进展,包括工程师、科学家、医生和政策制定者之间的动态相互作用。该综述采用系统方法来解决人工耳蜗研究和开发中的关键问题。首先,阐述了人工耳蜗系统的设计和规格。其次,从外部言语处理器和射频传输链路到内部接收器、刺激器和电极阵列,确定了子系统组件的设计目标、原理和方法。第三,从安全性、可靠性以及当前和未来人工耳蜗设计者和使用者面临的挑战等方面介绍了系统集成和功能评估。最后,讨论了超越人工耳蜗的问题,以解决整个听力障碍治疗方案,并利用人工耳蜗作为模型来设计和评估其他类似的神经假体,如前庭和视网膜植入物。