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Spatial filtering of near-field radio frequency interference at a LOFAR LBA station

机译:LOFAR LBA站的近场射频干扰的空间滤波

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In preparation for the SKA, many new RFI (radio frequency interference) mitigation algorithms have been developed. However, these algorithms usually assume that the RFI source is in the far-field and that the array is calibrated. In this paper, the recovery of astronomical signals from uncalibrated RFI-corrupted LOFAR visibility data using spatial filtering methods are presented. For this demonstration, a near-field continuous-wave RFI source was generated by a hexacopter that was flown around one of the LOFAR LBA (low-band antenna) arrays. Four spatial filtering methods were applied to the RFI contaminated data: orthogonal projection, orthogonal projection with subspace bias correction, oblique projection and subspace subtraction. Overall, orthogonal projection with subspace bias correction performed the best, however it requires that the RFI source moves relative to the array and it is computationally expensive. Oblique projection performs similar to orthogonal projection with subspace bias correction when point sources are to be recovered and is furthermore considerably less computationally expensive. Subspace subtraction is a suitable alternative if a large field of view is to be recovered at a relatively low computational cost.
机译:为了准备SKA,已经开发了许多新的RFI(射频干扰)缓解算法。但是,这些算法通常假定RFI源在远场中并且已校准阵列。本文提出了使用空间滤波方法从未经校准的RFI损坏的LOFAR可见性数据中恢复天文信号的方法。在本演示中,由六旋翼飞机产生的近场连续波RFI源围绕着LOFAR LBA(低频带天线)阵列之一飞行。四种空间滤波方法应用于RFI污染数据:正交投影,具有子空间偏差校正的正交投影,倾斜投影和子空间减法。总的来说,带有子空间偏差校正的正交投影效果最好,但是它要求RFI源相对于阵列移动,并且计算量大。当要恢复点源时,斜投影的执行效果类似于具有子空间偏差校正的正交投影,而且计算量大为减少。如果要以相对较低的计算成本恢复大视场,则可以使用子空间减法。

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