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    • 3. 发明授权
    • Sensory input processing apparatus and methods
    • 感觉输入处理装置和方法
    • US08942466B2
    • 2015-01-27
    • US13152119
    • 2011-06-02
    • Csaba PetreSach Hansen SokolFilip Lukasz PiekniewskiBotond SzatmaryEugene M. Izhikevich
    • Csaba PetreSach Hansen SokolFilip Lukasz PiekniewskiBotond SzatmaryEugene M. Izhikevich
    • G06K9/36H04N7/24H04N7/26G06K9/62G06N3/04G06K9/46
    • G06K9/6232G06K9/4628G06N3/049
    • Sensory input processing apparatus and methods useful for adaptive encoding and decoding of features. In one embodiment, the apparatus receives an input frame having a representation of the object feature, generates a sequence of sub-frames that are displaced from one another (and correspond to different areas within the frame), and encodes the sub-frame sequence into groups of pulses. The patterns of pulses are directed via transmission channels to detection apparatus configured to generate an output pulse upon detecting a predetermined pattern within received groups of pulses that is associated with the feature. Upon detecting a particular pattern, the detection apparatus provides feedback to the displacement module in order to optimize sub-frame displacement for detecting the feature of interest. In another embodiment, the detections apparatus elevates its sensitivity (and/or channel characteristics) to that particular pulse pattern when processing subsequent pulse group inputs, thereby increasing the likelihood of feature detection.
    • 感觉输入处理装置和方法对于特征的自适应编码和解码是有用的。 在一个实施例中,设备接收具有对象特征的表示的输入帧,产生彼此相移(并对应于帧内的不同区域)的子帧序列,并将子帧序列编码为 一组脉冲 脉冲的模式经由传输通道引导到检测装置,该检测装置被配置为在检测到与特征相关联的所接收的脉冲组内的预定模式时产生输出脉冲。 在检测到特定模式时,检测装置向位移模块提供反馈以优化用于检测感兴趣特征的子帧位移。 在另一个实施例中,当处理后续的脉冲组输入时,检测装置将其灵敏度(和/或通道特性)提升到该特定脉冲模式,从而增加特征检测的可能性。
    • 4. 发明申请
    • SENSORY INPUT PROCESSING APPARATUS AND METHODS
    • 传感器输入处理装置及方法
    • US20140064609A1
    • 2014-03-06
    • US13152119
    • 2011-06-02
    • Csaba PetreSach Hansen SokolFilip Lukasz PiekniewskiBotond SzatmaryEugene M. Izhikevich
    • Csaba PetreSach Hansen SokolFilip Lukasz PiekniewskiBotond SzatmaryEugene M. Izhikevich
    • G06K9/62
    • G06K9/6232G06K9/4628G06N3/049
    • Sensory input processing apparatus and methods useful for adaptive encoding and decoding of features. In one embodiment, the apparatus receives an input frame having a representation of the object feature, generates a sequence of sub-frames that are displaced from one another (and correspond to different areas within the frame), and encodes the sub-frame sequence into groups of pulses. The patterns of pulses are directed via transmission channels to detection apparatus configured to generate an output pulse upon detecting a predetermined pattern within received groups of pulses that is associated with the feature. Upon detecting a particular pattern, the detection apparatus provides feedback to the displacement module in order to optimize sub-frame displacement for detecting the feature of interest. In another embodiment, the detections apparatus elevates its sensitivity (and/or channel characteristics) to that particular pulse pattern when processing subsequent pulse group inputs, thereby increasing the likelihood of feature detection.
    • 感觉输入处理装置和方法对于特征的自适应编码和解码是有用的。 在一个实施例中,设备接收具有对象特征的表示的输入帧,产生彼此相移(并对应于帧内的不同区域)的子帧序列,并将子帧序列编码为 一组脉冲 脉冲的模式经由传输通道引导到检测装置,该检测装置被配置为在检测到与特征相关联的所接收的脉冲组内的预定模式时产生输出脉冲。 在检测到特定模式时,检测装置向位移模块提供反馈以优化用于检测感兴趣特征的子帧位移。 在另一个实施例中,当处理后续的脉冲组输入时,检测装置将其灵敏度(和/或通道特性)提升到该特定脉冲模式,从而增加特征检测的可能性。
    • 9. 发明授权
    • Round-trip engineering apparatus and methods for neural networks
    • 神经网络的往返工程设备和方法
    • US09117176B2
    • 2015-08-25
    • US13385937
    • 2012-03-15
    • Botond SzatmaryEugene M. IzhikevichCsaba PetreJayram Moorkanikara NageswaranFilip Piekniewski
    • Botond SzatmaryEugene M. IzhikevichCsaba PetreJayram Moorkanikara NageswaranFilip Piekniewski
    • G06N7/00G06N3/08G06N3/10G06F9/44
    • G06N3/08G06F8/355G06N3/10
    • Apparatus and methods for high-level neuromorphic network description (HLND) framework that may be configured to enable users to define neuromorphic network architectures using a unified and unambiguous representation that is both human-readable and machine-interpretable. The framework may be used to define nodes types, node-to-node connection types, instantiate node instances for different node types, and to generate instances of connection types between these nodes. To facilitate framework usage, the HLND format may provide the flexibility required by computational neuroscientists and, at the same time, provides a user-friendly interface for users with limited experience in modeling neurons. The HLND kernel may comprise an interface to Elementary Network Description (END) that is optimized for efficient representation of neuronal systems in hardware-independent manner and enables seamless translation of HLND model description into hardware instructions for execution by various processing modules.
    • 用于高级神经形态网络描述(HLND)框架的装置和方法,其可以被配置为使得用户能够使用统一且明确的表示来定义神经形态网络架构,其是可读和机器可解释的。 该框架可用于定义节点类型,节点到节点连接类型,不同节点类型的实例化节点实例,以及生成这些节点之间连接类型的实例。 为了促进框架使用,HLND格式可以提供计算神经科学家所需的灵活性,并且同时为具有有限的神经元建模经验的用户提供用户友好的界面。 HLND内核可以包括到基本网络描述(END)的接口,其被优化用于以与硬件无关的方式有效地表示神经元系统,并且能够将HLND模型描述无缝地转换成硬件指令以供各种处理模块执行。