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首页> 外文期刊>IEEE Transactions on Signal Processing >Multitask Diffusion Adaptation Over Asynchronous Networks
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Multitask Diffusion Adaptation Over Asynchronous Networks

机译:<?Pub _newline?>异步网络上的多任务扩散自适应

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摘要

The multitask diffusion LMS is an efficient strategy to simultaneously infer, in a collaborative manner, multiple parameter vectors. Existing works on multitask problems assume that all agents respond to data synchronously. In several applications, agents may not be able to act synchronously because networks can be subject to several sources of uncertainties such as changing topology, random link failures, or agents turning on and off for energy conservation. In this paper, we describe a model for the solution of multitask problems over asynchronous networks and carry out a detailed mean and mean-square error analysis. Results show that sufficiently small step-sizes can still ensure both stability and performance. Simulations and illustrative examples are provided to verify the theoretical findings.
机译:多任务扩散LMS是一种以协同方式同时推断多个参数向量的有效策略。有关多任务问题的现有工作假设所有代理都同步响应数据。在某些应用中,代理可能无法同步运行,因为网络可能会受到多种不确定性因素的影响,例如拓扑变化,随机链路故障或为节能而打开和关闭代理。在本文中,我们描述了用于解决异步网络上多任务问题的模型,并进行了详细的均值和均方误差分析。结果表明,足够小的步长仍然可以确保稳定性和性能。提供了仿真和说明性示例以验证理论发现。

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