This application claims the benefit of the filing date under 35 U.S.C. § 119(a)-(d) of European Patent Application No. 20182599, filed on Jun. 26, 2020.
The present invention relates to a receiver unit for an entertainment system of a vehicle and, more particularly, to a method of operation of a receiver unit for an entertainment system of a vehicle.
Entertainment systems of vehicles usually comprise a head unit placed in the vehicle in such a way that a driver and/or a passenger of the vehicle may access controls of the head unit. The entertainment system further comprises a receiver unit which is connected to the head unit that comprises connectors for antennas, or the antennas itself, and receiving electronics which may receive an antenna signal and convert the antenna signal to an entertainment signal. The entertainment signal is then transferred to the head unit and output to a loudspeaker and/or a display.
The receiver unit is usually placed in close vicinity to the antenna to minimize the need for coax cables between the antennas and the receiver unit. However, the receiver unit may also be placed in close vicinity to the head unit. If the receiver unit is placed close to the antennas, cooling of electronics of the receiver unit with an air conditioning system provided by the vehicle is no longer possible, compared to a location of the receiver unit close to the head unit and therefore in a vicinity of the inside of the vehicle.
During operation, when the receiver unit receives signals from the antennas and transforms these signals to entertainment systems, heat is dissipated by the receiving electronics and therefore, a heat management for the receiver unit may be needed. Particularly, the receiver unit may be placed just below a roof of the vehicle. Sunlight hitting the vehicle roof may further increase the temperature of the receiver unit, particularly if the vehicle is painted in a dark color. Furthermore, known receiver units may include a temperature sensor which may shut off the receiver unit or parts of the receiver unit if the temperature is above an operation temperature of the receiver unit.
A method of operation of a receiver unit for an entertainment system of a vehicle includes providing the receiver unit having a pair of receiving electronics and a controller electronics. The receiving electronics output an entertainment signal to a main unit of the entertainment system. The method includes determining a pre-defined system parameter with the controller electronics and at least partially deactivating one of the receiving electronics based on the pre-defined system parameter.
The invention will now be described by way of example with reference to the accompanying Figures, of which:
The problem of the invention, the technical implementation of the solution and the advantages of the invention become clear with reference to the exemplary embodiments, which are to be described hereinafter with the help of Figures.
As shown in
If the vehicle 1 is standing, some light incident on the roof 3 of the vehicle 1 may lead to an increase in temperature of the receiver unit 100. If the vehicle 1 is moving, airstream around the vehicle 1 cools the roof 3 and therefore also the receiver unit 100.
Entertainment signals received by antennas connected to the connectors 111, 112, 113 may be processed by the receiving electronics 121, 122, 123 and an entertainment signal may then be output via the outputs 141, 142, 143 to the main unit 200 of
In another embodiment, instead of one connector 111, 112 for each receiving electronics 121, 122, there may be one connector for all receiving electronics 121, 122. This connector may be connected to an antenna or a set of antennas. The connectors 111, 112 may further receive different radio frequency bands simultaneously, so the number of connectors 111, 112 is independent from the number of receiving electronics 121, 122.
The controller electronics 130 shown in
The vehicle velocity may particularly be below a threshold velocity when the vehicle velocity is zero. This means that the expression that the vehicle velocity is below a threshold velocity also includes a deactivation of the receiving electronics 121, 122, 123 only at a standstill of the vehicle in an embodiment. In this case, simultaneously receiving the same entertainment signal by multiple antennas is not necessary anymore. At a given position, the antenna with the better signal-to-noise ratio can be determined and subsequently only this antenna and its corresponding receiving electronics 121, 122, 123 could be used to receive radio transmissions. The other antenna and the other receiving electronics may be switched off without a user of the vehicle even noticing, saving energy within the receiver unit 100, leading to less dissipated heat and therefore leading to a slower increase in temperature of the receiver unit 100. This is particularly the case as a standing vehicle is less cooled by airstream, leading to an increased temperature of the receiver unit 100, particularly when the receiver unit 100 is placed below the roof 3 of the vehicle 1.
In one embodiment, the controller electronics 130 receives the vehicle velocity from a vehicle control unit 5, as shown in
The receiver unit 100 of
If one of the receiving electronics 121, 122, 123 is at least partially deactivated, less heat is dissipated within the receiver unit 100 and therefore it may be easier to keep the receiver unit 100 below an emergency shut-off temperature which corresponds to the temperature where the electronics 121, 122, 123 of the receiver unit 100 might be affected and thusly a shut-down of the receiver unit 100 is necessary. Therefore, the method allows for a shut-down of parts of the receiver unit 100 before the critical emergency shut-off temperature is reached and therefore, parts of the entertainment system 10 still may be usable.
The receiver unit 100 may comprise several receiving electronics for the same entertainment service. For example, the receiver unit may comprise two receiving electronics which are radio tuners and both are connected to a radio antenna individually. This is useful in a moving vehicle, as due to the movement, the signal-to-noise ratio of both antennas may differ and the signals of both antennas may be combined properly to operate the entertainment system.
In the embodiment shown in
The receiver unit 100 is shown to comprise three receiving electronics 121, 122, 123 in the embodiment of
In this formula, N is the number of frequencies evaluated, n is the index of the actual frequency,
Alternatively, a standard deviation could be used and calculated from the formula above. Another alternative would be to calculate the probability with the formula:
In another embodiment, the change in the frequency spectrum comprises a change of a signal-to-noise ratio of the frequency spectrum. The formulas for the probability p may be modified accordingly.
The methods mentioned above may be combined. The controller electronics 130 may be equipped to both receive a velocity signal from a vehicle control unit 5 and also identify a vehicle standstill based upon measurements of frequency spectra.
In one embodiment, the station scanning of the station scanning unit 160 is also partially deactivated based upon a pre-defined system parameter. This may include greater intervals between the station scanning or a complete shut-off of the station scanning. If, for example, a standstill of the vehicle is either detected by the method described in
In one embodiment, the at least partially deactivated receiving electronics 121, 122, 123 are reactivated based upon the pre-determined system parameter. If, for instance, the temperature decreases, for instance due to the partially deactivating of the receiving electronics 121, 122, 123 or due to increased airstream around the vehicle 1 due to a higher velocity, the partially deactivated receiving electronics 121, 122, 123 may be again reactivated to improve the entertainment system 10. Additionally or alternatively, the end of a standstill of the vehicle may also allow for or result in a need to reactivate the receiving electronics 121, 122, 123.
Reactivation may also be based upon all of the system parameters discussed herein or of a combination of these system parameters. It may also be the case that the reactivation of the receiving electronics is based on a different pre-determined system parameter than the deactivation. For instance, the standstill of the vehicle may have been detected by a change in the frequency spectrum. At this point, any increased velocity of the vehicle, particularly provided by the vehicle control unit 5, may be used as signal to reactivate the receiving electronics 121, 122, 123 again. Another possibility is that the standstill of the vehicle was determined due to a signal provided by the vehicle control unit 5. When the vehicle still stands but a large vehicle like a bus or a truck moves in the vicinity of the vehicle, the frequency spectrum may also change and the therefore the need for reactivating the receiving electronics 121, 122, 123, may arise, as now another antenna might provide a better signal-to-noise ratio.
In one embodiment, the deactivating of the receiving electronics 121, 122, 123 is performed in a pre-defined sequence, wherein the sequence comprises an initial reduction or switching-off of station scanning and a subsequent switching-off of all but one of the receiving electronics 121, 122, 123.
For instance, a vehicle approaching a crossing with traffic lights may need to stop at the crossing. This stop may be either detected by the difference spectrum method according to the difference spectrum step 312 or may be detected according to the velocity determination step 313. If the zero velocity of the vehicle 1 is detected by the velocity determination step 313, all but one receiving electronics 121, 122, 123 may be switched off and the station scanning unit 160 may perform one last station scanning and afterwards also may be switched off. If now a truck or a bus approaches the vehicle 1 and therefore changes the signal received by the antennas and the receiving electronics 121, 122, 123, the receiving electronics 121, 122, 123 may be reactivated and, as the vehicle still stands, the receiving electronics 121, 122, 123 with the best signal-to-noise ratio may be selected and the other receiving electronics may be switched off again.
Subsequently, when a movement of the vehicle is again detected, for instance by the difference spectrum step 312, all receiving electronics 121, 122, 123 and the station scanning unit 160 may be reactivated.
A second pre-defined system parameter 412 shown in
A third pre-defined system parameter 413 shown in
A fourth pre-defined system parameter 414 shown in
The seventh connector 117 and the eighth connector 118 in the receiver unit 100 of
The antenna and the receiving electronics 121, 122, 123 may be equipped to measure frequency spectra, particularly signal intensity over frequency. If after a given time, ten seconds or one minute in an embodiment, the frequency spectrum stays the same or almost the same, it may be assumed that this is also true in the near future and therefore, the receiving electronics 121, 122, 123 which provides less signal may be switched off. The frequency spectrum particularly does not change at a standstill of the vehicle, so using this method allows for another possibility to detect a standstill of the vehicle.
If the receiver unit 100 comprises digital radio and analog radio, it may be possible to deactivate the receiving electronics of the analog radio, if the station selected by a user of the entertainment system 10 is only broadcasted via digital radio and not via analog radio. If the signal is only broadcasted via analog radio, the receiving electronics for the digital may be switched off as part of the partially deactivating of the receiving electronics as explained above.
The subparts of the receiver unit 100 of
The station scanning unit 160 internally also comprises a receiving electronics to process the signals of the antenna connected to the first connector 111. Therefore, a deactivation of the station scanning unit 160 also includes a deactivation of its receiving electronics.
In one embodiment, the receiving electronics are equipped to process digital radio signals and/or digital video signals and/or digital television signals and/or analog radio signals and/or analog video signals and/or analog television signals and/or internet services. Each of the signals/services mentioned above may be assigned to a plurality of antennas and receiving electronics within the receiver unit 100. For instance, the receiver unit 100 may be part of a radio tuner comprising two connectors for analog radio antennas and two connectors for digital radio antennas as well as two receiving electronics for analog radio and two receiving electronics for digital radio. In this case, the pre-defined sequence may comprise an initial switch-off or reduction of station scanning, a subsequent switching-off of the receiving electronics of the analog radio signal and subsequently a switching-off of all but one of the receiving electronics of the digital radio signal. If other services than radio, for instance video or television services or internet services are also processed by the receiver unit, the pre-defined sequence may also be adapted corresponding to the signal a user of the vehicle is using at the moment. Particularly, if the user uses the television or video signal part of the entertainment system, the receiving electronics for radio signals may be switched off before the receiving electronics of the television or video signals. If the user uses the radio, the sequence may be the other way around.
The invention allows for a shut-off of receiving electronics 121, 122, 123, 124, 125, 126, 127, 128 due to pre-defined system parameters. In modern vehicle entertainment systems 200, for example digital radio tuners and analog radio tuners are combined. If the signal quality of digital radio is insufficient, the analog radio may be used as a back fall option if the radio station provides both digital and analog service.
The receiver unit 100 and the entertainment system 10 with the receiver unit 100 perform the method described above. The methods described above are applicable to all transmission bands, particularly to VHF, VHF-3(DAB), MW, LW, DVB-T or 3G, 4G or 5G transmissions.
Although the invention has been described in detail the way of the exemplary embodiments, the invention is not limited by the disclosed exemplary embodiments. Other variations can be derived therefrom and from the description of the invention and the claims without departing from the scope of the protected invention.
Number | Date | Country | Kind |
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20 182 599.9 | Jun 2020 | EP | regional |