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Narrowband Interference Detection in MB-OFDM UWB Shih-Chang Chen Institute of Communications Engineering, National Tsing Hua University, Hsinchu, Taiwan
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Motivation UWB coexists with narrowband radios Required to detect presence of narrowband radios Implement avoidance technique
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NBI Detections Strong Interference When close to the transmitter Regard polluted sub-carriers as outliers Employ outlier detection algorithms Weak Interference Independent detection for each sub-carrier Joint detection for all sub-carriers
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NBI Detection Algorithms Outlier Detection Strong interference Low complexity Random Signal with Unknown Parameters Weak interference Independent detection for each sub-carrier Model Change Detection Weak interference Joint detection for all sub-carriers
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Random Signal Detection Tonal Interference Wi-MAX, sinusoid wave, etc. Autoregressive Interference General Gaussian random process signal.
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Random Signal Detection
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PDF under H1: It can be shown that to find the MLE of Po we must minimize:
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Random Signal Detection By Neyman-Pearson approach, the detector can be shown that:
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Tonal Interference Signal model:
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Tonal Interference The covariance of tonal interference is:
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Autoregressive Interference Signal model with normalized power:
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Autoregressive Interference Can be shown to be:
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Autoregressive Interference And we know: Or,in compact form:
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Autoregressive Interference Multiplying both sides of compact form by their transposes and taking expectations, we obtain:
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Performance analysis
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Conclusion Random Signal Detection Tonal Interference. Autoregressive Interference Independent detection for each sub-carrier Model Change Detection Coming soon.
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