Method for suppressing transmission noise comprised in received downlink signal and communications apparatus utilizing the same
US-2015381223-A1 · Dec 31, 2015 · US
US2016126989A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016126989-A1 |
| Application number | US-201514875912-A |
| Country | US |
| Kind code | A1 |
| Filing date | Oct 6, 2015 |
| Priority date | Jun 6, 2013 |
| Publication date | May 5, 2016 |
| Grant date | — |
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Systems, methods, apparatuses, and computer readable media are disclosed for providing interference rejection in ultra-wideband real time locating systems. In one embodiment, an ultra-wideband (UWB) receiver is configured to: receive an interference signal from a source positioned outside a monitored region; receive a composite signal transmitted from a tagged object moving about a playing field within the monitored region, wherein the composite signal comprises a location signal and a component of the interference signal; detect whether the component of the interference signal exceeds a threshold value; and adjust, via a processor, filtering of the composite signal to attenuate the component of the interference signal based on whether the component of the interference signal exceeds the threshold value. Some embodiments provide for filtering of the composite signal using a combiner while others employ a tunable notch filter. Corresponding systems, methods, and computer-readable storage medium are also provided.
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1 . A method for providing interference rejection, the method comprising: receiving an interference signal from a source positioned outside a monitored region; receiving a composite signal transmitted from a tagged object moving about a playing field within the monitored region, wherein the composite signal comprises a location signal and a component of the interference signal; detecting whether the component of the interference signal exceeds a threshold value; and adjusting, via a processor, filtering of the composite signal to attenuate the component of the interference signal based on the detecting whether the component of the interference signal exceeds the threshold value. 2 . The method of claim 1 wherein adjusting filtering of the composite signal comprises attenuating the component of the composite signal using a tunable notch filter, a width of the tunable notch filter corresponding to the widest bandwidth allowed for commercial services in the 5.925-7.25 GHz range. 3 . The method of claim 1 , further comprising: causing a directional receive antenna to be directed toward the monitored region, the directional receive antenna operable to receive the composite signal; and causing a second sampling antenna to be directed away from the monitored region, the second sampling antenna operable to receive the interference signal. 4 . The method of claim 3 , further comprising: determining a first ratio of a signal strength of the interference signal to a ultra-wideband signal received by the second sampling antenna; causing the interference signal and the ultra-wideband signal received by the second sampling antenna to be summed in an instance in which the first ratio is greater than a second ratio of a signal strength of the interference signal to a ultra-wideband signal received by the directional receive antenna; and combining, using a combiner, the composite signal with the summed interference signal and the ultra-wideband signal to enable cancellation of the interference signal. 5 . The method of claim 1 wherein the adjusting filtering of the composite signal comprises attenuating the component of the composite signal using a tunable notch filter. 6 . The method of claim 5 wherein adjusting filtering of the composite signal comprises adjusting a variable controlled oscillator to tune the tunable notch filter. 7 . The method of claim 1 further comprising detecting, using a superheterodyne receiver, whether the component of the interference signal exceeds a threshold value. 8 . The method of claim 1 wherein the adjusting filtering of the composite signal comprises combining the composite signal and a second component of the interference signal to attenuate the component of the interference signal in the composite signal. 9 . The method of claim 8 wherein the combining the composite signal and the second component of the interference signal comprises using a combiner configured to: receive the composite signal from a first antenna; receive the second component of the interference signal from a second antenna; and combine the composite signal and the second component of the interference signal to generate an output signal providing attenuation of at least part of the component of the inference signal based at least in part on the second component of the interference signal. 10 . An apparatus comprising for providing interference rejection, the apparatus comprising a processor; and a memory including computer program code, the memory and the computer program code configured to, with the processor, cause the apparatus at least to: receive an interference signal from a source positioned outside a monitored region; receive a composite signal transmitted from a tagged object moving about a playing field within the monitored region, wherein the composite signal comprises a location signal and a component of the interference signal; detect whether the component of the interference signal exceeds a threshold value; and adjust filtering of the composite signal to attenuate the component of the interference signal based on the detecting whether the component of the interference signal exceeds the threshold value. 11 . The apparatus of claim 10 wherein the memory and the computer program code are further configured to, with the processor, cause the apparatus to attenuate the component of the composite signal using a tunable notch filter, a width of the tunable notch filter corresponding to the widest bandwidth allowed for commercial services in the 5.925-7.25 GHz range. 12 . The apparatus of claim 10 wherein the memory and the computer program code are further configured to, with the processor, cause the apparatus to: cause a directional receive antenna to be directed toward the monitored region, the directional receive antenna operable to receive the composite signal; and cause a second sampling antenna to be directed away from the monitored region, the second sampling antenna operable to receive the interference signal. 13 . The apparatus of claim 12 wherein the memory and the computer program code are further configured to, with the processor, cause the apparatus to: determine a first ratio of a signal strength of the interference signal to a ultra-wideband signal received by the second sampling antenna; cause the interference signal and the ultra-wideband signal received by the second sampling antenna to be summed in an instance in which the first ratio is greater than a second ratio of a signal strength of the interference signal to a ultra-wideband signal received by the directional receive antenna; and combine, using a combiner, the composite signal with the summed interference signal and the ultra-wideband signal to enable cancellation of the interference signal. 14 . The apparatus of claim 10 wherein the memory and the computer program code are further configured to, with the processor, cause the apparatus to combine the composite signal and a second component of the interference signal to attenuate the component of the interference signal in the composite signal. 15 . The apparatus of claim 14 , wherein the memory and the computer program code are further configured to, with the processor, cause the apparatus to: receive the composite signal from a first antenna; receive the second component of the interference signal from a second antenna; and cause the composite signal and the second component of the interference signal to be combined to generate an output signal providing attenuation of at least part of the component of the inference signal based at least in part on the second component of the interference signal. 16 . The apparatus of claim 10 wherein the adjusting filtering of the composite signal comprises attenuating the component of the composite signal using a tunable notch filter. 17 . The apparatus of claim 16 wherein adjusting filtering of the composite signal comprises adjusting a variable controlled oscillator to tune the tunable notch filter. 18 . The apparatus of claim 10 further comprising the memory and the computer program code configured to, with the processor, cause the apparatus to: detect, using a superheterodyne receiver, whether the component of the interference signal exceeds a threshold value. 19 . The method of claim 1 wherein adjusting filtering of the composite signal comprises attenuating the component of the composite signal using a tunable notch filter, a width of the tunable notch filter corresponding to the widest bandwidth allowed for
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