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The Largest Cognitive Systems Will be Optoelectronic

机译:最大的认知系统将是光电的

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Electrons and photons offer complimentary strengths for information processing. Photons are excellent for communication, while electrons are superior for computation and memory. Cognition requires distributed computation to be communicated across the system for information integration. We present reasoning from neuroscience, network theory, and device physics supporting the conjecture that large-scale cognitive systems will benefit from electronic devices performing synaptic, dendritic, and neuronal information processing operating in conjunction with photonic communication. On the chip scale, integrated dielectric waveguides enable fan-out to thousands of connections. On the system scale, fiber and free-space optics can be employed. The largest cognitive systems will be limited by the distance light can travel during the period of a network oscillation. We calculate that optoelectronic networks the area of a large data center (105 m2) will be capable of system-wide information integration at 1 MHz. At frequencies of cortex-wide integration in the human brain (4 Hz, theta band), optoelectronic systems could integrate information across the surface of the earth.
机译:电子和光子为信息处理提供了互补的优势。光子对于通讯非常有用,而电子在计算和存储方面比较出色。认知需要分布式计算在整个系统之间进行通信以实现信息集成。我们从神经科学,网络理论和设备物理方面提出推理,支持以下推测:大型认知系统将从结合进行光子通信的突触,树突和神经元信息处理的电子设备中受益。在芯片规模上,集成的介质波导使扇出可以成千上万个连接。在系统规模上,可以采用光纤和自由空间光学器件。最大的认知系统将受到光在网络振荡期间传播的距离的限制。我们计算出,光电网络覆盖了大型数据中心的面积(10 5 2 )将能够在1 MHz的频率范围内进行系统范围的信息集成。在人类大脑皮层范围内的整合频率(4 Hz,θ波段)下,光电系统可以整合地球表面的信息。

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