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Methods and Systems for Multi-Model Block Least Squares/Radial Basis Function Neural Network Based Non-Linear Interference Management for Multi-Technology Communication Devices

机译:基于多模型块最小二乘/径向基函数神经网络的多技术通信设备非线性干扰管理方法和系统

摘要

The various embodiments include methods and apparatuses for canceling nonlinear interference during concurrent communication of multi-technology wireless communication devices. Nonlinear interference may be estimated using a mixed-model block least squares/radial basis function neural network by generating aggressor kernels from the aggressor signals, augmenting the aggressor kernels by weight factors and executing a linear combination of the augmented output, at an intermediate layer to produce intermediate layer outputs. At an output layer, a linear filter function may be executed on the intermediate layer outputs to produce an estimated nonlinear interference used to cancel the nonlinear interference of a victim signal.
机译:各个实施例包括用于在多技术无线通信设备的并发通信期间消除非线性干扰的方法和装置。可以使用混合模型块最小二乘/径向基函数神经网络来估计非线性干扰,方法是从攻击者信号中生成攻击者内核,通过权重因子对攻击者内核进行扩充,并在中间层执行线性化组合增强后的输出。产生中间层输出。在输出层,可以在中间层输出上执行线性滤波器功能,以产生用于消除受害者信号的非线性干扰的估计的非线性干扰。

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