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Hardware-Software Co-Design for Brain-Computer Interfaces

机译:脑机接口的软软件协同设计

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Brain-computer interfaces (BCIs) offer avenues to treat neurological disorders, shed light on brain function, and interface the brain with the digital world. Their wider adoption rests, however, on achieving adequate real-time performance, meeting stringent power constraints, and adhering to FDA-mandated safety requirements for chronic implantation. BCIs have, to date, been designed as custom ASICs for specific diseases or for specific tasks in specific brain regions. General-purpose architectures that can be used to treat multiple diseases and enable various computational tasks are needed for wider BCI adoption, but the conventional wisdom is that such systems cannot meet necessary performance and power constraints.We present HALO (Hardware Architecture for LOw-power BCIs), a general-purpose architecture for implantable BCIs. HALO enables tasks such as treatment of disorders (e.g., epilepsy, movement disorders), and records/processes data for studies that advance our understanding of the brain. We use electrophysiological data from the motor cortex of a non-human primate to determine how to decompose HALO’s computational capabilities into hardware building blocks. We simplify, prune, and share these building blocks to judiciously use available hardware resources while enabling many modes of brain-computer interaction. The result is a configurable heterogeneous array of hardware processing elements (PEs). The PEs are configured by a low-power RISC-V micro-controller into signal processing pipelines that meet the target performance and power constraints necessary to deploy HALO widely and safely.
机译:脑机接口(BCI)提供了治疗神经系统疾病,阐明脑功能并将脑与数字世界相连接的途径。然而,它们的广泛采用取决于获得足够的实时性能,满足严格的功率限制以及遵守FDA规定的慢性植入安全性要求。迄今为止,BCI已被设计为用于特定疾病或特定大脑区域特定任务的定制ASIC。为了更广泛地采用BCI,需要可用于治疗多种疾病并实现各种计算任务的通用体系结构,但传统的看法是此类系统无法满足必要的性能和功率约束。 BCI),一种用于植入式BCI的通用体系结构。 HALO可以执行诸如疾病治疗(例如癫痫,运动障碍)之类的任务,并记录/处理数据以促进我们对大脑的了解。我们使用来自非人类灵长类动物运动皮层的电生理数据来确定如何将HALO的计算能力分解为硬件构件。我们简化,修剪和共享这些构件,以明智地使用可用的硬件资源,同时启用多种模式的脑机交互。结果是硬件处理元件(PE)的可配置异构阵列。 PE由低功耗RISC-V微控制器配置到信号处理管道中,这些管道可满足广泛且安全地部署HALO所需的目标性能和功率约束。

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