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Distributed Compression for Condition Monitoring of Wind Farms

机译:分布式压缩风电场状态监测

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A good understanding of individual and collective wind farm operation is necessary for improving the overall performance of the wind farm “grid,” as well as estimating in real time the amount of energy that can be generated for effectively managing demand and supply over the smart grid. This paper proposes a scheme for compressing wind speed measurements exploiting both temporal and spatial correlation between the readings via distributed source coding. The proposed scheme relies on a correlation model based on true measurements. Two compression schemes are proposed, both of low encoding complexity, as well as a particle-filtering-based belief propagation decoder that adaptively estimates the nonstationary noise of the correlation model. Simulation results using realistic models show significant performance improvements compared to the scheme that does not dynamically refine correlation.
机译:对个人和集体风电场的运行有一个很好的了解,对于提高风电场“电网”的整体性能,以及实时估算可产生的能量数量,以有效管理智能电网的需求和供应是必不可少的。 。本文提出了一种利用分布式源编码利用读数之间的时间和空间相关性来压缩风速测量值的方案。所提出的方案依赖于基于真实测量的相关模型。提出了两种压缩方案,这两种编码方案都具有较低的编码复杂度,以及基于粒子滤波的置信传播解码器,它们可以自适应地估计相关模型的非平稳噪声。与不动态细化相关性的方案相比,使用实际模型的仿真结果显示出显着的性能改进。

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