GB2407005A - Controlling interference from a transmitter in one communication system to a receiver in another communication system - Google Patents

Controlling interference from a transmitter in one communication system to a receiver in another communication system Download PDF

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Publication number
GB2407005A
GB2407005A GB0406219A GB0406219A GB2407005A GB 2407005 A GB2407005 A GB 2407005A GB 0406219 A GB0406219 A GB 0406219A GB 0406219 A GB0406219 A GB 0406219A GB 2407005 A GB2407005 A GB 2407005A
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United Kingdom
Prior art keywords
beacon
receiver
transmitter
frequency
power
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GB0406219A
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GB0406219D0 (en
GB2407005B (en
Inventor
Anthony Peter Hulbert
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Roke Manor Research Ltd
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Roke Manor Research Ltd
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Priority to GBGB0323429.1A priority Critical patent/GB0323429D0/en
Application filed by Roke Manor Research Ltd filed Critical Roke Manor Research Ltd
Priority to GB0406219A priority patent/GB2407005B/en
Publication of GB0406219D0 publication Critical patent/GB0406219D0/en
Priority to US10/573,811 priority patent/US7848730B2/en
Priority to KR1020067006022A priority patent/KR100826059B1/en
Priority to JP2006530590A priority patent/JP2007507952A/en
Priority to CN2004800291995A priority patent/CN1864424B/en
Priority to PCT/GB2004/004222 priority patent/WO2005036909A1/en
Priority to MXPA06003966A priority patent/MXPA06003966A/en
Priority to EP04768759A priority patent/EP1671509A1/en
Publication of GB2407005A publication Critical patent/GB2407005A/en
Application granted granted Critical
Publication of GB2407005B publication Critical patent/GB2407005B/en
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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/246TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters where the output power of a terminal is based on a path parameter calculated in said terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/309Measuring or estimating channel quality parameters
    • H04B17/318Received signal strength
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/14Spectrum sharing arrangements between different networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/06TPC algorithms
    • H04W52/10Open loop power control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/06TPC algorithms
    • H04W52/14Separate analysis of uplink or downlink
    • H04W52/146Uplink power control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/242TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account path loss
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/243TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account interferences
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/245TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account received signal strength
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/247TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters where the output power of a terminal is based on a path parameter sent by another terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/02Selection of wireless resources by user or terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/08Access restriction or access information delivery, e.g. discovery data delivery

Abstract

A method of controlling interference from a transmitter 4 in one communication system to a receiver 1 in another communication system wherein a beacon 3, representative of a frequency at which the receiver 1 is trying to receive, is transmitted from a beacon transmitter associated with the receiver 1 and a beacon receiver associated with the transmitter 4 listens for the beacon 3. A power spectral density limit for a transmission 2 from the transmitter 4 is derived based upon the signal strength of the beacon 3 received at the beacon receiver. The transmitter 4 will only transmit 2 on a frequency represented by a received beacon 3 if the derived power spectral density limit exceeds a minimum power spectral density. Preferably, a frequency for transmission 2 is selected for the transmitter 4 that permits the maximum power spectral density for the transmission 2.

Description

A METHOD OF CONTROLLING INTERFERENCE FROM A TRANSMITTER IN
ONE COMMUNICATION SYSTEM TO A RECEIVER IN ANOTHER
COMMUNICATION SYSTEM
This invention relates to a method of controlling interference from a transmitter in one communication system to a receiver in another communication system. In general, a certain frequency band is allocated for a particular type of communication system, e.g. mobile phones and then within that frequency band, any equipment which wishes to communicate must share the allocated spectrum with other user equipment giving rise to the possibility of interference. In any system with at least one transmitter and one receiver, it is assumed that the transmitter is the cause of the interference.
However, the fundamental problem of spectrum sharing is not the transmitters, but the receivers. This is because, with current systems, it is possible to sense the presence or absence of signal from a transmitter that is already operating on a frequency one wishes to share, but it is not possible to determine whether transmission on a particular frequency will cause interference at a receiver or not. The presence of a strong signal might indicate that a remote receiver will have no problem with any interference the transmitting terminal might generate. Equally a weak signal might indicate that a nearby receiver cannot cope with any interference the transmitting terminal might produce. This runs contrary to the standard philosophy of dynamic channel assignment in which the channels with minimum interference are preferred.
In accordance with a first aspect of the present invention, a method of controlling interference from a transmitter in one communication system to a receiver in another communication system comprises transmitting a beacon from the receiver representative of a frequency at which the receiver is trying to receive; listening for the beacon at a beacon receiver associated with the transmitter; and deriving a power spectral density limit for a transmission from the transmitter based upon the strength of the beacon received at the beacon receiver.
The problem of whether or not a transmission will cause interference can only be addressed if it is known where the receivers are, so in the present invention, receivers transmit and transmitters receive to convey this information.
Preferably, for a plurality of beacons received representing the same frequency, the derived maximum transmit power spectral density is related to that of the beacon received at the highest power.
it is assumed that if a transmission is set, such that it does not interfere with the receiver represented by the beacon at the highest power, then all the others will be unaffected too, whether because they are further away or otherwise more tolerant of interference.
Preferably, the method further comprises comparing the derived transmit power spectral density limit with a predetermined minimum transmit power spectral density required by the transmitter for that frequency; and transmitting a signal at that frequency, only if the determined transmit power spectral density limit exceeds the mmlmum.
If the transmission would not be of sufficient power to reach its intended destination, then it is not sent. This can be overcome by sending via an intermediate 1 S terminal, so that the required minimum level is lower.
Preferably, a predetermined maximum transmit power spectral density is set, if no beacons are received at the transmitter.
Preferably, the method further comprises choosing a transmission frequency for the transmitter which permits the maximum power spectral density for the transmission.
Preferably, the transmission from the transmitter is transmitted at a frequency derived by determining the strongest received beacon which represents any one frequency; thereafter selecting, from the determined strongest beacons, the beacon with the lowest power; and transmitting at the frequency represented by that selected beacon.
Preferably, a transmit power spectral density for a transmission from the transmitter is set dependent upon the strength of the received beacon at the chosen frequency.
Preferably, the maximum permitted power spectral density of the transmitter is set at the product of the receiver beacon power; and a factor by which the receiver can be de-sensitised minus one; and the resultant of the receiver noise figure divided by the product of the effective bandwidth at the beacon receiver for receiving the beacon, the minimum signal to noise ratio for receiving the beacon in its effective bandwidth and the noise figure of the beacon receiver at the transmitter.
Preferably, a random time division multiple access (TDMA) protocol is applied, whereby beacons representing different frequencies transmit at different times, such that over a series of cycles a beacon representing each frequency will be heard at a different time relative to another particular represented frequency, such that no one frequency at a higher power consistently blocks reception of a beacon representing another frequency at a lower power.
Preferably, a code division multiple access (COMA) protocol is applied, whereby beacons representing different frequencies are distinguished from one another by different codes.
Preferably, a correlation period of a CDMA component of the beacon signal is controlled by an FFT controller.
Preferably, each beacon transmits a type identif er and each beacon receiver comprises type specific correlation means, such that a beacon receiver can ignore same type beacons in determining whether or not or how much power to transmit.
Preferably, a receiver transmits a beacon only if interference levels exceed an
acceptable value.
Preferably, the beacon power is adapted to the wanted signal power received at the receiver.
Preferably, the beacon power is adapted to the interference power received at the receiver.
Preferably, a bandwidth managed by a beacon is sufficiently narrow that substantial correlation of shadow fading applies across that bandwidth.
Preferably, beacon communication is separated from a spectrum that is managed by the beacons by using a different frequency.
Preferably, each beacon occupies a frequency bandwidth which is small compared with the total bandwidth managed by that beacon.
Preferably, neighbouring beacons in a managed bandwidth manage discrete contiguous sections of frequency, each section comprising a fraction of the beacon managed band, each beacon being separated from the frequency bandwidth which it manages by the alternate fraction.
The fractions can be unequal, such as 1/3 and 2/3, but typically each fraction is 1/2.
Preferably, the beacon receiver is periodically tested with an internal beacon of known power and its associated transmitter is prevented from transmitting if a beacon receiver fault occurs.
Alternatively, beacon and system communications are separated in time.
This requires timing control, for example, provided by putting satellite timing receivers in all transmit and receive terminals.
Preferably, beacon reception and transmission happen at the same equipment, separated in time, by arranging for reception to take place whenever transmission is not according to schedules of the random TDMA protocol.
In accordance with a second aspect of the present invention, a communication system comprises at least one transmitter and at least one receiver, wherein a beacon transmitter is associated with the at least one receiver and a beacon receiver is 1 S associated with the at least one transmitter, whereby a power spectral density for transmission at any one transmitter is determined based upon the strength of the or each beacon received at the associated beacon receiver.
In accordance with a third aspect of the present invention, a transmitter for a communication system, the transmitter being provided with an associated beacon receiver, whereby a power spectral density for transmission from the transmitter is determined based on the strength of one or more beacons received at the associated beacon receiver.
In accordance with a fourth aspect of the present invention, a receiver for a communication system, the receiver being provided with an associated beacon transmitter, whereby a beacon can be transmitted by the beacon transmitter to control interference, such that a desired maximum power spectral density of interference received at the receiver is achieved.
An example of a method of controlling interference from a transmitter to a receiver in a communication system will now be described with reference to the accompanying drawings in which: Figure 1 illustrates use of beacons in a method according to the present invention; and, Figure 2 illustrates a frequency band structure for the beacons and managed bands using the method of the present invention.
Fig. I illustrates one example where the method of the present invention may be applied. A first receiver I which is trying to receive from a first transmitter (not shown) needs to prevent interference 2 on the frequency that it is trying to receive. To do this it transmits a beacon 3 representing that frequency. This beacon is received at a beacon receiver associated with a second transmitter 4 which is trying to transmit to a second receiver (not shown). If the second transmitter 4 transmits it will produce interference 2 at the first receiver I. The beacon 2 transmitted from the first receiver represents the frequency at which the receiver I is trying to receive. Clearly this cannot be the same frequency as that being received, so a nearby frequency is assigned for this purpose. A compromise is required, so that the frequency used is near enough to have good correlation of path loss, but far enough away to allow diplexing.
Although Fig. 1 only shows one receiver and one transmitter, in a practical system there are multiple receivers and transmitters. The basic principle is that some or all of the receivers I transmit a beacon 3 at a suitable power level. Any terminal with a transmitter 4 that can hear a beacon related to a given frequency must reduce its transmitter power according to the strength of the beacon. If the permissible power is too low to allow the required communications then the terminal cannot use that frequency. A terminal operating dynamic channel allocation (DCA) would scan around the beacons and select the frequency whose beacon was received at the lowest power. If multiple beacons representing the same frequency are received at different powers the power of interest is taken to be the strongest.
The beacon transmission band is arranged as a band of frequencies at either end (or both ends) of the band being managed. There is one separate beacon signal relating to each frequency in the band and these must be multiplexed together. Determination of beacon power and interference limitation is explained below for the situation illustrated in Fig.l. In the two links, primary status has been allocated to a terminal trying to receive and secondary status to the one trying to transmit and for simplicity the transmitter for the primary link and the receiver for the secondary link are not shown. The primary receiver I is transmitting its beacon 3 in order to guarantee reception.
The following assumptions are made: Pa is the primary receiver beacon power Ps is the secondary transmitter power spectral density g iS the path gain between the two equipment connectors - this includes propagation path gain (<<1), antenna gains and feeder losses Np is the primary receiver noise figure As is the noise figure of the beacon receiver at the secondary transmitter Bs is the effective bandwidth at the beacon receiver for receiving the beacon Us is the minimum signal to noise ratio for receiving the beacon in its effective bandwidth d is the factor by which we allow the primary receiver to be de-sensitised The level of Ps needs to be set such that it is measurable at a point where a secondary transmitter could produce non-trivial interference at the primary receiver.
This is done by fixing the maximum power that a secondary transmitter can emit when the beacon is undetectable, such that only acceptable interference arises.
The limit sensitivity for the beacon receiver is Ls = kTBtiNSys (where k is Boltzmann's constant and T is the operating temperature in degrees Kelvin).
Thus, if the received beacon power is less than or equal to Ls, then the secondary transmitter will emit a power spectral density of PS MAX Watts/Hz. This is set so that if the beacon signal is equal to Ls then only acceptable interference will be generated at the primary receiver. Assuming that this condition happens for a path gain of g, then the received beacon power will be given by Ls = Pp.g. Thus Pp.g = kTBsiVsysThe interference power spectral density generated at the primary receiver will then be P.-MAXg- The acceptable level for this will be kTN',(d- 1). Thus PS-MAX-g = kTNp(d-1).
Eliminating g from the two equations gives x = Pc(d - l) No This assumes that the operating temperature is the same at both locations which will usually be true to a reasonable approximation.
In practice, for universal operation, a reference needs to be set. For example, if the reference is set at I W for a de-sensitisation of 3 dB with a 0 dB noise figure primary receiver, then conveniently this gives a beacon power for 3 dB de-sensitisation equal to l/Np Watts.
In the following example, the permitted de-sensitisation is 3 dB, both receivers have a noise figure of 6 dB, BS = I kHz and T/= 10 dB. Thus, the beacon power is I/. Watt and so PY MAX = 2.5 x 10 W/Hz.
In this example, a secondary transmitter with a bandwidth, for example, of 100 KHz is allowed to transmit up to 2.5 W if it cannot hear a beacon. As the beacon is detected and its received power climbs above Ls then the maximum allowable power has to be reduced pro-rata.
From this simple analysis it can be seen that the appropriate beacon power is independent of primary system bandwidth, operating range, range to the secondary transmitter(s) and the primary system required signal to noise ratio. The beacon power depends only on the primary receiver noise figure and the allowable de-sensitisation.
Once a reference for beacon power has been legislated, only relatively small variations will result. The reference power, assuming receiver noise temperatures no lower than 290 K and desensitization by no less than 3 dB, will be the maximum beacon power ever used.
Feeder loss and antenna patterns do not affect the beacon power or maximum secondary power conditions for the beacon system, although they do affect the spectrum sharing that is available. The maximum power a secondary transmitter may transmit depends on the sensitivity of its beacon receiver. Thus the equipment manufacturer is motivated to produce beacon receivers with low noise figure and good beacon detectability.
Fig. 2 illustrates an arrangement of a beacon band structure for the method of the present invention. A beacon signal represents the reception of a particular frequency in a band. At least one beacon type is required for every frequency. It is necessary to determine how large a beacon managed band 8, 9 ought to be, how much spectrum should be allocated to beacon transmission and how many frequencies should be allocated within a beacon managed band. As in all tradeoffs the result is a compromise.
On the one hand, it is desirable that the beacon managed band is as large as possible to reduce the relative overhead of the beacon channel, but on the other hand it should be as narrow as possible in order to guarantee the same radio propagation characteristics across the band and, in particular, between any sub-band and the beacon transmission band.
As it is not practical to reduce the managed bandwidth down to the multipath fading correlation bandwidth of the channel, then the beacon transmission band must be wide enough to have reasonable inherent multipath diversity. If this beacon reception diversity is greater than that available to the users of the band, then the interference sensing mechanism will be conservative, i.e. it will tend to overestimate the interference generated. In the alternative situation, an underestimate may occur, so it may be necessary to introduce a fading margin to account for this difference. This can be done by transmitting the beacon at slightly higher power.
Based on the above requirement, it is desirable that the beacon managed band is no greater than about 5% of its centre frequency, which gives reasonable correlation of average propagation characteristics. Some care is needed to ensure that no tight frequency selectivities in the antennas cause difficulties. Such a problem is more likely to arise in the primary service, which will probably be incumbent, than in the secondary service, since the secondary service is generally designed to use any of the frequencies in the beacon managed band. One solution to the problem for the primary service is to bias the beacon transmitted power according to the relative antenna gains in the beacon transmission band and the represented signal frequency. Another feature is that the beacon transmission band is preferably set so that it does not exceed about 5% of the beacon managed band in order to avoid there being an unacceptable overhead for the beacons.
Consideration must be given to the provision of duplexing filters since the primary receiver must transmit and the secondary transmitter must receive. Clearly if the beacon must be transmitted to represent a frequency that is right next to the beacon transmission band there will be a problem. This difficulty can be solved by having beacon transmission bands 5, 6, 7 at each end of the beacon managed band 8, 9. The frequencies available for use are then represented by the beacon transmission band which is further away i.e. a first range l 0 of frequencies in the managed band 8, are managed by the transmission band 5, whereas a second range of frequencies l l are managed by band 6. At first this might seem to double the overhead. However, this is overcome by having the beacon transmission bands manage bands on either side, hence band 6 also manages frequency range 12 of beacon managed band 9 whilst band 7 manages frequency range 13. The size of the first and second range 10, 1 1 is generally equal, i.c. half of each managed band is managed by one beacon transmission band 5 and half by the other 6, but these ranges can be different proportions of the total beacon managed band 8, such as 1/3 and 2/3 or other ratios.
In a specific example, a frequency band is set around 2 GHz, with a bandwidth of 100 MHz. This leads to a beacon transmission band 6 of 5 MHz (based on 5% bandwidth). According to the structure of Fig. 2, there is always a frequency spacing of at least 50 MHz to allow for duplexer filtering.
The choice of number of frequencies represented is again, a trade-off between complexity and flexibility. From the viewpoint of simplicity we would choose to have as few as possible. For example, if our 100 MHz wide band had an incumbent system with 5 MHz channels then the obvious answer would appear to be to have twenty, 5 MHz channels. However, this presupposes that there will be only one further tier of spectrum sharing and that the sharing system will also have a bandwidth of 5 MHz or multiples thereof. It may be that some sharing systems are introduced based on 7 MHz.
In this case they may need to transmit as many as 3 beacons to keep a channel free.
This would reserve 15 MHz of spectrum which would be inefficient. From the viewpoint of flexibility the answer would be to use the highest common divisor of all anticipated channel spacings. The disadvantage of this approach is that it might lead to the need for a large number of beacons for each frequency used. For example, a spacing of 1 MHz would require 5 beacons to keep a 5 MHz channel free. The number of frequencies would thus be a compromise between wasted spectrum and having a large number of beacons. At this stage a bandwidth of 5 MHz nevertheless seems reasonable leading to 20 beacons in this example.
At any given beacon receiver there may be beacons from a number of receivers, relating to some different and some common frequencies. A would-be transmitter wants to examine beacons for a particular frequency. If there are many beacons for that frequency it is desirable that the task should not grow unduly. The options for multiple access are division in frequency, time and code (FDMA, TDMA and COMA respectively).
If beacon transmitters and receivers are to be low cost, then implicitly they have relatively inaccurate frequency references. For example, a 20 ppm end to end error would not be unreasonable, but at 2 GHz this would correspond to an error of 40 kHz making any FDMA system difficult to operate. Additionally, each carrier would be relatively narrowband for FDMA. For example, representing 20 frequencies in 5 MHz gives a maximum channel spacing of 250 kHz and so the multipath diversity inherent in a bandwidth of 5 MHz is not exploited.
It is desirable for there to be no need for co-ordination between the different beacon transmitters, so no framing structures can be imposed, as required in TDMA.
GPS receivers could be used to achieve this, but these can also have problems, particularly given the need for indoor operation and without some sort of timing control, the only available form of multiplexing in the time domain is random transmission, akin to the Aloha protocol. However, a problem with this is that a priori it is not possible to be sure how many beacons need to be received in a given area, so it is difficult to dimension the average duty cycle of the transmission.
CDMA allows for a very large number of beacons relating to the same frequency since they would have the same code and would be separated only in time, but this suffers from the near far problem. If a strong beacon relating to one frequency is received then the receiver may know that that frequency is unavailable. However, it cannot know whether other frequencies are available since the beacon receiver is de sensitised and it must be assumed that other beacons may be present.
Overall, a combination of random TDMA and CDMA is preferred. The CDMA element provides the ability to measure multiple beacons relating to the same frequency and the TDMA element provides resistance to the near far effect. By listening for long enough, a beacon receiver can accumulate adequate confidence that, if there had been a beacon for a particular receiver at a lower level than a strong signal then it would have had an opportunity to receive it. Where a beacon transmitter needs to send multiple signals from one location (e.g. for a frequency that requires several contiguous sub bands) they must all be transmitted simultaneously and not in sequence. This is to avoid a single source occupying too much of the time.
It is desirable that the beacon receiver is made as sensitive as possible, which can be done by making the correlation period for the CDMA component as long as practically possible. The problem here is that correlating for a long period is subject to the effects of the frequency error between the beacon transmitter and the receiver. For example, at 2 GHz there could be an end-to-end error of 40 kHz. The longest period over which it is usually possible to correlate is one half cycle of the error frequency, in this case 12.5 its. This leads to an effective bandwidth of 80 kHz which is too wide for sensitive reception. This can be radically improved by the use of an FFT correlator, for example as described in D J R Van Nee & A J R M Coenen, "New Fast GPS Code Acquisition Technique Using FFT", IKE Electronic Letters, 17'h January 1991 Vol 27, pp l 58 - 160. By choosing the number of FFT bins, a correlation period of any length can be made. The maximum useful correlation period depends on the correlation time of the channel. This varies from about 200 ps to l ms depending on the mobility of the transmitter, receiver or both. The underlying code can be set to have a duration of l O around 200 ps with up to, for example, 4 repetitions allowed which can be used in a static receiver to improve sensitivity. This gives an effective bandwidth from 5 kHz down to 1.25 kHz allowing good sensitivity. The preferred FFT size is 16, 32 or 64, all practical with today's technology for a 10 MHz sampling rate, although with changes in technology other sizes may be appropriate. There is some scalloping loss from the FFT, but this can be improved by randomising the frequency over 0.5 bins.
A further issue for the beacon information is that although it appears that it is only necessary to know the frequency represented by the beacon, it is also necessary to distinguish beacons transmitted from receivers in the same system as the transmitter, otherwise the transmitter never gets an opportunity to transmit. At any given time there are only a relatively small number of systems sharing any given band. Thus, only a small number of codes are needed to distinguish the different systems will be needed.
Eight bits would normally be sufficient. Every beacon transmitter appends its system type identifier to each beacon and transmits this using the applicable spread spectrum code. This part is not related to the represented frequency, but is married to it by its fine frequency, i.e. the FFT bin selected and its timing. Terminals for a given system only need to correlate codes for their own system, so a single matched filter can be used here. Thus, there is no loss in sensitivity in determining whether a beacon came from a beacon receiver's own type of system. In this case, the beacon receiver ignores this particular signal when determining the power at which it could operate.
As stated earlier, for a given represented frequency the preferred power to use for the beacon is the largest of the received powers. However, in multipath, there may be several paths all relating to the same beacon transmission. Inevitably there will be some ambiguity in determining this situation, but this can be resolved in most cases by only taking other multipath components from the same FFT bin output as that which identified the strongest output, which means that in the absence of significant Doppler the multipath components from any given beacon transmitter all fall on the same fine frequency. In addition, only multipath components are taken from a narrow window around the largest peak, which constrains the components taken to within the maximum delay span of the propagation medium. Finally, a maximum number of paths are taken to avoid including peaks of noise.
The description above sets out the situation for a primary and a secondary system in which the receivers of the primary system have beacon transmitters and the transmitters of the secondary system have beacon receivers, but this case gives no protection for the secondary system. A more general set of possibilities is shown in
Table 1
Table I
Type of System Beacon Beacon Transmitter Receiver 1. Primary (Dominant) 2. co-operating x 3. Tertiary (Unprotected) x In addition, beacon transmissions could be made responsive for systems that could tolerate brief loss of communications. In this case a receiver would only transmit a beacon when it encountered unacceptable interference. The interfering sources would then detect the beacon and either stop transmitting or reduce their power. It might in some cases be desirable for type 2 systems to receive and transmit essentially simultaneously on the beacon channel. This would apply if the dynamics of spectrum sharing were such that it was not appropriate for the terminal to stop transmitting the beacon when it was making its own system transmissions. The random TDMA transmission format for the beacon would allow this to happen. The choice of level of protection for a system would be a matter for a combination of common sense and legislation.
There is potentially a great deal more flexibility in the actual beaconpower a device may transmit. This may be influenced by a number of factors such as the manufacturer needing or wanting to increase the nominal transmitted beacon power to take account of inaccuracies in RF gains, beacon transmitters etc. Regulation would seek to prevent manufacturers degrading their equipment performance requirements excessively at the expense of spectral efficecncy and for this reason there may be a case for regulating an absolute maximum beacon transmitted power for a certain class of receiver. Further, it may be desirable, and in some cases, acceptable to increase the beacon transmitted power to take account of multipath fading that sometimes reduces the received beacon power without affecting the interference path There are several fundamental approaches that can be applied to the setting of the beacon power. A fixed beacon power can be transmitted, based on the equipment design. This approach is robust, but not very flexible and does not always lead to the best protection for the receiving equipment against multiple interferers. Another option is to arrange for the primary receiver to estimate the received noise and set the beacon power accordingly. In this case, as more interferers share the frequency the interference rises. This rise reduces the margin for further increase in interference leading to an increase in the beacon power. This increase forces the interferers to reduce their power, or prevents additional interferers from operating, in order to maintain the receiver sensitivity. Alternatively, the primary receiver is arranged to set its beacon power according to the maximum acceptable level of interference given the signal that it is receiving. This approach clearly should not be used in conjunction with power control within the system, as the two systems will interact in complex and potentially undesirable or unpredictable ways. However, for fixed power systems this approach can be used to maximise spectrum sharing.
The fundamental beacon concept is flexible enough to allow any or all of the above approaches to apply for different systems operating in the same beacon managed band. In any given band, care needs to be taken in considering the types of system sharing the spectrum to ensure that overall stability is preserved. It would be possible, for example, to operate one of each of the types of system in Table I without instability. The type I system does not respond to beacons; the type 2 system defers to the type 1 system and protects itself from the type 3 system and the type 3 system defers to the types I and 2 systems and uses whatever spectrum it can find. For broadcast systems there are further degrees of freedom. For example, if one wished to use the beacon concept to allow sharing with the television band then every receiver needs to be equipped with a beacon transmitter, however, a beacon only needs to be transmitted corresponding to the channel that the viewer is receiving at the time.
The strong desirability for transmitting the beacon through the same antenna as that used for reception, in order to share the antennas properties, precludes the use of S simple masthead pre-amplifiers. Instead, either a masthead pre-amplifier is arranged to be the source of the beacon transmission and the reference power chosen in such a way that the absolute power requirement is always modest, or else a diplexer is built into the masthead pre-amplifier with gain for the beacon transmitter as well.
Although these requirements add complexity, they do not create insuperable problems and additional revenue from the freed up spectrum should more than cover such costs.
The whole concept of spectrum sharing through beacons depends on the beacons being received whenever present with power above the presumed reference sensitivity. Equipment with a failed beacon receiver may transmit at maximum power on any frequency and cause arbitrary interference, so the status of the beacon receivers must be known at all times. To deal with this a built in self-test for the beacon receivers can be provided, in which a known beacon is injected periodically into the receiver at limit range level in order to test its function. Failure to receive the test beacon results in the equipment being prevented from transmitting.

Claims (27)

1. A method of controlling interference from a transmitter in one communication system to a receiver in another communication system the method comprising transmitting a beacon from the receiver representative of a frequency at which the receiver is trying to receive; listening for the beacon at a beacon receiver associated with the transmitter; and deriving a power spectral density limit for a transmission from the transmitter based upon the strength of the beacon received at the beacon receiver.
2. A method according to claim 1, wherein for a plurality of beacons received representing the same frequency the derived maximum transmit power spectral density is related to that of the beacon received at the highest power.
3. A method according to claim 1 or claim 27 further comprising comparing the derived transmit power spectral density limit with a predetermined minimum transmit power spectral density required by the transmitter for that frequency; and transmitting a signal at that frequency, only if the determined transmit power spectral density limit exceeds the minimum.
4. A method according to any preceding claim wherein a predetermined maximum transmit power spectral density is set7 if no beacons are received at the transmitter.
5. A method according to any preceding claim7 the method further comprising choosing a transmission frequency for the transmitter which permits the maximum power spectral density for the transmission.
6. A method according to any of claims 1 to 47 wherein the transmission *om the transmitter is transmitted at a frequency derived by determining the strongest received beacon which represents any one frequency; thereafter selecting from the determined strongest beacons7 the beacon with the lowest power; and transmitting at the frequency represented by that selected beacon.
7. A method according to claim 5 or claim 6, wherein a transmit power spectral density for a transmission from the transmitter is set dependent upon the strength of the received beacon at the chosen frequency.
8. A method according to any preceding claim, wherein the maximum permitted power spectral density of the transmitter is set at the product of the receiver beacon power; and a factor by which the receiver can be de-sensitised minus one; and the resultant of the receiver noise figure divided by the product of the effective bandwidth at the beacon receiver for receiving the beacon, the minimum signal to noise ratio for receiving the beacon in its effective bandwidth and the noise figure of the beacon receiver at the transmitter.
9. A method according to any preceding claim, wherein a random time division multiple access (TDMA) protocol is applied, whereby beacons representing different frequencies transmit at different times, such that over a series of cycles a beacon representing each frequency will be heard at a different time relative to another particular represented frequency, such that no one frequency at a higher power consistently blocks reception of a beacon representing another frequency at a lower power.
10. A method according to any preceding claim, wherein a code division multiple access (CDMA) protocol is applied, whereby beacons representing different frequencies are distinguished from one another by different codes.
11. A method according to claim 10, wherein a correlation period of a COMA component of the beacon signal is controlled by an FFT controller.
12. A method according to any preceding claim, wherein each beacon transmits a type identifier and each beacon receiver comprises type specific correlation means, such that a beacon receiver can ignore same type beacons in determining whether or not or how much power to transmit.
13. A method according to any preceding claim, wherein a receiver transmits a beacon only if interference levels exceed an acceptable value.
14. A method according to any preceding claim, wherein the beacon power is adapted to the wanted signal power received at the receiver.
15. A method according to any of claims I to 13, wherein the beacon power is adapted to the interference power received at the receiver.
16. A method according to any preceding claim, wherein a bandwidth managed by a beacon is sufficiently narrow that substantial correlation of shadow fading applies across that bandwidth.
17. A method according to any preceding claim, wherein beacon communication is separated from a spectrum that is managed by the beacons by using a different frequency.
18. A method according to claim 17, wherein each beacon occupies a frequency bandwidth which is small compared with the total bandwidth managed by that beacon.
19. A method according to claim 18, wherein neighbouring beacons in a managed bandwidth manage discrete contiguous sections of frequency, each section comprising a fraction of the beacon managed band, each beacon being separated from the frequency bandwidth which it manages by the alternate fraction.
20. A method according to claim 19, wherein each fraction is /.
21. A method according to any preceding claim, wherein the beacon receiver is periodically tested with an internal beacon of known power and its associated transmitter is prevented from transmitting if a beacon receiver fault occurs.
22. A method according to any of claims I-16 or 21, wherein beacon and system communications are separated in time.
23. A method according to at least claim 9, wherein beacon reception and transmission happen at the same equipment, separated in time, by arranging for reception to take place whenever transmission is not required according to schedules of the random TDMA protocol.
24. A method of controlling interference between a primary receiver and a secondary transmitter in a communication system as hereinbefore described with reference to the accompanying drawings.
25. A communication network comprising at least one transmitter belonging to one communication system and at least one receiver belonging to another communication system, wherein a beacon transmitter is associated with the at least one receiver and a beacon receiver is associated with the at least one transmitter, whereby a power spectral density for transmission at any one transmitter is determined based upon the strength of the or each beacon received at the associated beacon receiver.
26. A transmitter for a communication system, the transmitter being provided with an associated beacon receiver, whereby a power spectral density for transmission from the transmitter is determined based on the strength of one or more beacons received at the associated beacon receiver.
27. A receiver for a communication system, the receiver being provided with an associated beacon transmitter, whereby a beacon can be transmitted by the beacon transmitter to control interference, such that a desired maximum power spectral density of interference received at the receiver is controlled.
GB0406219A 2003-10-07 2004-03-19 A method of controlling interference from a transmitter in one communication system to a receiver in another communication system Expired - Fee Related GB2407005B (en)

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GBGB0323429.1A GB0323429D0 (en) 2003-10-07 2003-10-07 Spectrum sharing
GB0406219A GB2407005B (en) 2003-10-07 2004-03-19 A method of controlling interference from a transmitter in one communication system to a receiver in another communication system
PCT/GB2004/004222 WO2005036909A1 (en) 2003-10-07 2004-10-05 A method of controlling interference from a transmitter in one communication system to a receiver in another communication system
KR1020067006022A KR100826059B1 (en) 2003-10-07 2004-10-05 A method of controlling interference from a transmitter in one communication system to a receiver in another communication system
JP2006530590A JP2007507952A (en) 2003-10-07 2004-10-05 Method for controlling interference from a transmitter in one communication system to a receiver in another communication system
CN2004800291995A CN1864424B (en) 2003-10-07 2004-10-05 Method for controlling interference from a transmitter in one communication system to a receiver in another communication system
US10/573,811 US7848730B2 (en) 2003-10-07 2004-10-05 Method of controlling interference from a transmitter in one communication system to a receiver in another communication system
MXPA06003966A MXPA06003966A (en) 2003-10-07 2004-10-05 A method of controlling interference from a transmitter in one communication system to a receiver in another communication system.
EP04768759A EP1671509A1 (en) 2003-10-07 2004-10-05 A method of controlling interference from a transmitter in one communication system to a receiver in another communication system

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Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1853006A2 (en) 2006-05-05 2007-11-07 Roke Manor Research Limited A method of transmission
WO2009009459A1 (en) * 2007-07-10 2009-01-15 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on rate capping in peer-to-peer networks
WO2009009458A1 (en) * 2007-07-10 2009-01-15 Qualcomm Incorporated Methods and apparatus for active successive interference cancellation in peer-to-peer networks
WO2009009462A1 (en) * 2007-07-10 2009-01-15 Qualcomm Incorporated Methods and devices for successive interference cancellation based on three rate reports from receiver device in peer-to-peer networks
US7756055B2 (en) 2006-05-05 2010-07-13 Roke Manor Research Limited Method of transmission
DE102009008321A1 (en) * 2009-02-10 2010-08-12 Volkswagen Ag Method for deciding on parallel use of common communication channel of wireless local area network for e.g. car-to-car application, involves transmitting data from subscriber to another subscriber via channel, when criterion is fulfilled
GB2479177A (en) * 2010-03-31 2011-10-05 Sony Corp Reducing interference to the reception of television signals from mobile communication devices
US8433349B2 (en) 2007-07-10 2013-04-30 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on transmit power control by interfering device with success probability adaptation in peer-to-peer wireless networks
US8855567B2 (en) 2007-07-10 2014-10-07 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on two rate feedback in peer-to-peer networks
US9668225B2 (en) 2007-07-10 2017-05-30 Qualcomm Incorporated Methods and apparatus for active successive interference cancellation based on one rate feedback and probability adaptation in peer-to-peer networks

Families Citing this family (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2426150B (en) * 2005-05-12 2007-09-19 Roke Manor Research A method of controlling communication
US8700082B2 (en) 2006-01-05 2014-04-15 Qualcomm Incorporated Power control utilizing multiple rate interference indications
US8295225B2 (en) 2006-09-08 2012-10-23 Qualcomm Incorporated Reverse link feedback for interference control in a wireless communication system
US8554146B2 (en) 2006-09-18 2013-10-08 Nokia Corporation Method and apparatus for reducing the guard band between wireless communication systems operating in the same geographical area
JP5258444B2 (en) * 2007-09-28 2013-08-07 株式会社エヌ・ティ・ティ・ドコモ Base station apparatus, mobile terminal, and frequency sharing method
EP2281406B1 (en) * 2008-05-22 2020-03-18 Nokia Technologies Oy Method and apparatus for providing cooperative spectrum usage among multiple radio networks
WO2010124331A1 (en) * 2009-04-28 2010-11-04 National Ict Australia Limited Interference management between overlapping networks
US8750803B2 (en) * 2009-06-17 2014-06-10 Nokia Corporation Interference cancellation for predictive signals
JP4917143B2 (en) * 2009-12-03 2012-04-18 株式会社エヌ・ティ・ティ・ドコモ Transmission / reception device, wireless terminal device, and wireless communication method
US20120088455A1 (en) * 2010-10-08 2012-04-12 Motorola Mobility, Inc. Inter-modulation distortion reduction in multi-mode wireless communication device
US9413395B2 (en) 2011-01-13 2016-08-09 Google Technology Holdings LLC Inter-modulation distortion reduction in multi-mode wireless communication terminal
CN105763241A (en) * 2014-12-18 2016-07-13 中兴通讯股份有限公司 Power control method, device and terminal
KR101811221B1 (en) * 2016-02-17 2017-12-21 주식회사 이노와이어리스 method for processing WCDMA signal timing offset for signal analyzing equipment
CN107231680B (en) * 2016-03-23 2021-04-30 中兴通讯股份有限公司 Method and device for open-loop power control
US10966150B2 (en) * 2017-02-13 2021-03-30 Telefonaktiebolaget Lm Ericsson (Publ) Wake-up signal with frequency information
CN108736982B (en) * 2017-04-24 2020-08-21 腾讯科技(深圳)有限公司 Sound wave communication processing method and device, electronic equipment and storage medium

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4567485A (en) * 1981-11-16 1986-01-28 Nippon Electric Co., Ltd. Earth station transmission power control system for keeping an EIRP of down link signals constant irrespective of weather
GB2174573A (en) * 1985-05-01 1986-11-05 Sinclair Res Ltd Radio telephone system
US5412658A (en) * 1993-10-22 1995-05-02 Bell Communications Research, Inc. Beacon detection method and apparatus for sharing spectrum between wireless communications systems and fixed microwave systems
WO1998006186A1 (en) * 1996-08-02 1998-02-12 Northern Telecom Limited Reducing crosstalk between communications systems
EP1168671A2 (en) * 2000-06-26 2002-01-02 Hughes Electronics Corporation Uplink power control system for satellite communication system employing on-board satellite processing and fade estimation
WO2002063897A1 (en) * 2001-02-06 2002-08-15 Ip Mobilenet, Inc. Method and apparatus for intelligent dynamic frequency reuse

Family Cites Families (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5491837A (en) * 1994-03-07 1996-02-13 Ericsson Inc. Method and system for channel allocation using power control and mobile-assisted handover measurements
US5884181A (en) * 1996-01-19 1999-03-16 Bell Communications Research, Inc. Interference reduction in shared-frequency wireless communication systems
US5794157A (en) * 1996-08-28 1998-08-11 Telefonaktiebolaget Lm Ericsson Method and system for autonomously allocating transmit power levels for communication between a cellular terminal and a telephone base station
US5870673A (en) 1996-08-30 1999-02-09 Telefonaktiebolaget Lm Ericsson Methods and systems for concurrent receipt of incoming calls from a wide area cellular network and a private radio communications network
FR2761224B1 (en) * 1997-03-20 2001-10-05 Alsthom Cge Alkatel METHOD OF RECORDING AT LEAST ONE BIMODE MOBILE STATION WITH AN ASSOCIATED HOME BASE STATION
US6078571A (en) * 1997-09-19 2000-06-20 Motorola, Inc. Apparatus and method for transmitting beacon signals in a communication system
JP3572933B2 (en) * 1998-03-31 2004-10-06 Kddi株式会社 Mobile communication system
JP2970653B1 (en) 1998-05-27 1999-11-02 日本電気株式会社 Spread spectrum communication system and its base station
US6724804B1 (en) * 1998-07-13 2004-04-20 Kabushiki Kaisha Kobe Seiko Sho Frequency converter and radio communications system employing the same
US6377608B1 (en) * 1998-09-30 2002-04-23 Intersil Americas Inc. Pulsed beacon-based interference reduction mechanism for wireless communication networks
US7174134B2 (en) * 2001-11-28 2007-02-06 Symbol Technologies, Inc. Transmit power control for mobile unit
JP3860762B2 (en) * 2002-02-14 2006-12-20 株式会社エヌ・ティ・ティ・ドコモ Mobile communication system, channel synchronization establishment method, and mobile station

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4567485A (en) * 1981-11-16 1986-01-28 Nippon Electric Co., Ltd. Earth station transmission power control system for keeping an EIRP of down link signals constant irrespective of weather
GB2174573A (en) * 1985-05-01 1986-11-05 Sinclair Res Ltd Radio telephone system
US5412658A (en) * 1993-10-22 1995-05-02 Bell Communications Research, Inc. Beacon detection method and apparatus for sharing spectrum between wireless communications systems and fixed microwave systems
WO1998006186A1 (en) * 1996-08-02 1998-02-12 Northern Telecom Limited Reducing crosstalk between communications systems
EP1168671A2 (en) * 2000-06-26 2002-01-02 Hughes Electronics Corporation Uplink power control system for satellite communication system employing on-board satellite processing and fade estimation
WO2002063897A1 (en) * 2001-02-06 2002-08-15 Ip Mobilenet, Inc. Method and apparatus for intelligent dynamic frequency reuse

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7756055B2 (en) 2006-05-05 2010-07-13 Roke Manor Research Limited Method of transmission
EP1853006A3 (en) * 2006-05-05 2008-05-21 Roke Manor Research Limited A method of transmission
EP1853006A2 (en) 2006-05-05 2007-11-07 Roke Manor Research Limited A method of transmission
CN101790873B (en) * 2007-07-10 2013-02-06 高通股份有限公司 Methods and apparatus for successive interference cancellation based on rate capping in peer-to-peer networks
CN101730989B (en) * 2007-07-10 2015-11-25 高通股份有限公司 For carrying out the method and apparatus of successive interference cancellation in peer-to-peer network based on three rate reports carrying out self-interference method, apparatus
WO2009009458A1 (en) * 2007-07-10 2009-01-15 Qualcomm Incorporated Methods and apparatus for active successive interference cancellation in peer-to-peer networks
US9668225B2 (en) 2007-07-10 2017-05-30 Qualcomm Incorporated Methods and apparatus for active successive interference cancellation based on one rate feedback and probability adaptation in peer-to-peer networks
US9521680B2 (en) 2007-07-10 2016-12-13 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on three rate reports from interfering device in peer-to-peer networks
WO2009009459A1 (en) * 2007-07-10 2009-01-15 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on rate capping in peer-to-peer networks
US8433349B2 (en) 2007-07-10 2013-04-30 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on transmit power control by interfering device with success probability adaptation in peer-to-peer wireless networks
US8849197B2 (en) 2007-07-10 2014-09-30 Qualcomm Incorporated Methods and apparatus for active successive interference cancellation in peer-to-peer networks
US8855567B2 (en) 2007-07-10 2014-10-07 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on two rate feedback in peer-to-peer networks
US8874040B2 (en) 2007-07-10 2014-10-28 Qualcomm Incorporated Methods and apparatus for successive interference cancellation based on rate capping in peer-to-peer networks
WO2009009462A1 (en) * 2007-07-10 2009-01-15 Qualcomm Incorporated Methods and devices for successive interference cancellation based on three rate reports from receiver device in peer-to-peer networks
DE102009008321A1 (en) * 2009-02-10 2010-08-12 Volkswagen Ag Method for deciding on parallel use of common communication channel of wireless local area network for e.g. car-to-car application, involves transmitting data from subscriber to another subscriber via channel, when criterion is fulfilled
DE102009008321B4 (en) 2009-02-10 2022-10-20 Volkswagen Ag Method for deciding on the parallel use of a communication channel of a radio network and communication participants suitable for this
GB2479177A (en) * 2010-03-31 2011-10-05 Sony Corp Reducing interference to the reception of television signals from mobile communication devices

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