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Energy-Efficient Multi-Mode Compressed Sensing System for Implantable Neural Recordings

机译:用于植入式神经记录的高能效多模式压缩传感系统

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Widely utilized in the field of Neuroscience, implantable neural recording devices could capture neuron activities with an acquisition rate on the order of megabytes per second. In order to efficiently transmit neural signals through wireless channels, these devices require compression methods that reduce power consumption. Although recent Compressed Sensing (CS) approaches have successfully demonstrated their power, their full potential is yet to be explored. Built upon our previous on-chip CS implementation, we propose an energy efficient multi-mode CS framework that focuses on improving the off-chip components, including (i) a two-stage sensing strategy, (ii) a sparsifying dictionary directly using data, (iii) enhanced compression performance from Full Signal CS mode and Spike Restoration mode to Spike CS Restoration mode and; (iv) extension of our framework to the Tetrode CS recovery using joint sparsity. This new framework achieves energy efficiency, implementation simplicity and system flexibility simultaneously. Extensive experiments are performed on simulation and real datasets. For our Spike CS Restoration mode, we achieve a compression ratio of 6% with a reconstruction SNDR dB and a classification accuracy for synthetic datasets. For real datasets, we get a 10% compression ratio with dB for Spike CS Restoration mode.
机译:植入式神经记录设备在神经科学领域得到了广泛的应用,可以捕获神经元的活动,其捕获速率约为每秒兆字节。为了通过无线信道有效地传输神经信号,这些设备需要减少功耗的压缩方法。尽管最近的压缩感知(CS)方法已经成功展示了它们的功能,但是它们的全部潜力尚待探索。基于我们以前的片上CS实施,我们提出了一种节能多模CS框架,该框架着重于改善片外组件,包括(i)两阶段传感策略,(ii)直接使用数据的稀疏字典,(iii)增强了从全信号CS模式和峰值恢复模式到峰值CS恢复模式的压缩性能;以及(iv)使用联合稀疏性将我们的框架扩展到Tetrode CS恢复。这个新框架同时实现了能源效率,实现简单性和系统灵活性。在模拟和真实数据集上进行了广泛的实验。对于我们的Spike CS恢复模式,我们实现了6%的压缩率,并具有重建SNDR dB和合成数据集的分类精度。对于真实的数据集,对于Spike CS恢复模式,我们得到10%的压缩比,dB。

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