Embodiments of the present invention will now be described in the context of an LTE compliant mobile wireless communications network operating in accordance with the 3GPP LTE standards up to Release-12 and beyond - in particular with a view to Release-13. However, it will be understood that this is by way of example only and that other embodiments may involve other wireless networks, operating at least partially in compliance with other releases and standards. For instance, although there is a difference in radio architecture between LAA systems (which involve LAA technology aggregated with LTE) and WLAN, the skilled person will appreciate that the considerations being applied to an LAA (or LTE-U, for example a standalone LTE-U system where only the unlicensed spectrum is used) system to provide a certain technical effect may also be applied to a WLAN system to provide the same or similar certain technical effect. Furthermore, the skilled person will appreciate that the present invention could also be realised for certain combinations of these technologies. For example, a network involving LAA and WLAN are aggregated with LTE. Therefore, while reference will typically be made to a base station or eNB, the skilled person would appreciate that, depending on the type of network, it may be more appropriate to refer to a router, an access point (AP), or some general network managing transceiver which is configured to connect managed devices to a wider network (such as a telephony network operated by a service operator, or the internet). Furthermore, these considerations should also be taken into account when considering, in the following detailed description, the role of the components referred to as a mobile device or hidden node.
Embodiments of the present invention will now be described in the context of a wireless telecommunication network including a mobile device (for example, user equipment, UE) and a base station (for example, E-UTRAN Node B or eNB). In certain embodiments, the wireless telecommunication network is operated employing an LAA radio access technology. Additionally, an LBT procedure may be implemented in the wireless telecommunication network.
In an LTE network such as that described above, the base station may attempt to communicate with the mobile device. For example, the base station may transmit scheduling information, reference signals for example, a Downlink Reference Signal, DRS or data to the mobile device. Similarly, the mobile device may transmit data or uplink information (for example, a Demodulation Reference Signal) to the base station. In the absence of other nodes (where a node is considered to a connection point, a redistribution point, or an endpoint such as a UE) in the network which are hidden to the mobile device or the base station, both the mobile device and the base station are expected to receive interference at substantially the same moments while the level of interference measured may be different due to differences in path loss to the node causing the interference. However, in a scenario in which there is a node which is hidden from the base station, this may not be the case. In this instance, the base station may consider that the interference level at a particular moment in time is negligible, corresponding to a free channel state. However, the mobile device may consider that the interference level at that very same moment in time is non-negligible, corresponding to a channel occupied state. This differing interpretation may cause problems in the transmissions between the components.
The use of LBT is intended to ensure that a node transmits only if the channel is free, however if there is a hidden node in the network then this may not be achieved. That is, for LBT the base station will transmit to the mobile device if the base station has determined that the channel is free (by measuring negligible interference). However, the channel may not, in fact, be free if the mobile device is aware of a transmitting node which is hidden from the base station. In such a case, the base station, although using LBT, may transmit at a time the mobile device is actually experiencing interference and hence may fail to receive the transmission by the base station.
Referring now to Figure 2 which illustrates the existence of a hidden node in a wireless telecommunication network. In the network 200, a base station 204 is in communication with a mobile device 202. In the figure, a communication range is shown for both the mobile device 202 and the base station 204. It will be appreciated that these communication ranges are for illustration purposes only and are not intended to provide an accurate depiction of a realistic situation. As can be seen, the mobile device 202 is located within communication range of the base station 204, indicating that the base station 204 will be able to transmit to the mobile device 202. Similarly, the base station 204 is located within communication range of the mobile device 202, and so the mobile device 202 will be able to transmit to the base station 204. If no other devices (or nodes) are present, then some degree of similarity between interference at the mobile device 202 and interference at the base station 204 could be expected. This circumstance is illustrated in Figure 3, wherein relative levels of interference are shown for the mobile device 202 and the base station 204. The situation of no other nodes transmitting is represented by time slots 1, 3, 5 and 9 in Figure 3, where the level of interference is shown to be effectively zero.
However, in the network 200 it is likely that there are additional nodes. Such a node is illustrated as visible node 208. Visible node 208 is located within the communication range of both the base station 204 and the mobile device 202. As such, visible node 208 can be considered to be visible to the base station 204 (and the mobile device 202) because if node 208 is transmitting then it will be received by both the base station 204 and the mobile device 202. The presence of visible node 208 in the network may result in interference to transmissions between mobile device 202 and base station 204. The situation of visible node 208 interference is also shown in Figure 3, referring to time slots 4 and 6 and also in time slot 7 where a hidden node 206 is also present. Here, it can be seen that visible node 208 causes the level of interference at the mobile device 202 and the base station 204 to increase. The level of interference detected by a component is influenced by the distance from the component to the interference-causing node. In Figure 2, visible node 208 is shown in a position which is approximately equidistant from mobile device 202 and base station 204, in which case it could be expected that the level of interference for both is the same. Time slot 4 in Figure 3 demonstrates the result of the visible node 208 being located closer to the mobile device 202, resulting in the mobile device 202 detecting a greater level of interference than the base station 204. Conversely, time slot 6 demonstrates the result of the visible node 208 being located closer to the base station 204, resulting in the base station 204 detecting a greater level of interference than the mobile device 202. The level of interference detected by, for example, the base station 204 may typically vary from time slot to time slot, depending on the node(s) that is transmitting at that time. It will be appreciated that mobile components and/or nodes in a wireless network are often likely to move around. Consequently, a node for which transmission is not experienced at a first moment T1 by, for example, the base station 204, may be experienced by said base station 204 at a later moment in time T2 i.e. when the concerned node is closer to said base station 204. It is noted that this mobility tends to result in slower changes in detected interference. Nevertheless, it should be noted that, due to node mobility, the presence of hidden nodes may change over time (albeit on a relatively slow time scale).
In addition to visible node 208, Figure 2 also shows another node 206 (for example, another mobile device). This node is located in such a position that it is within communication range of mobile device 202. However, it is not located within communication range of base station 204. As a result, this node is considered a hidden node 206. That is, the base station 204 is not aware of the presence of hidden node 206, even though mobile device 202 may be aware of transmission from hidden node 206. Such a hidden node 206 may arise from a mobile terminal moving from outside the communication range of mobile device 202 into said range, but remaining outside the communication range of the base station 208. Alternatively, visible node 208 may move within the network 200 such that it is located outside the communication range of base station 204 but still within that of mobile device 202. The effect of hidden node 206 on detected interference is shown in Figure 3, referring to time slots 2, 7 and 8, where each is further denoted with a ‘*’ to indicate that in these slots the mobile device 202 detects interference which is not detected by the base station 204. Here, it can be seen that a certain level of interference is detected at mobile device 202 while the base station 204 does not detect any interference. Additionally, for time slot 7 visible node 208 and hidden node 206 are both present. Here, even though visible node 208 is closer to the base station 204 than to the mobile device 202, the detected interference is roughly similar due to the influence of the hidden node 208 on the mobile device 202.
A result of the presence of hidden node 206 is that LBT transmissions between the mobile device 202 and the base station 204 may be disrupted. This disruption may have a detrimental effect to an LAA system. That is, transmissions from the base station 204 may collide with those of the hidden node 206 causing the base station 204 transmissions to not be receivable by the mobile device 202.
As described above, the present invention is not limited to LTE systems and the hidden node problem may occur in WLAN systems. In view of this and the on-going evolution of WLAN technology to support orthogonal frequency-division multiple access (OFDMA) schemes and denser networks, the skilled person will readily appreciate how the present invention may be implemented in such evolved WLANs. Furthermore, the skilled person would also realise that the present invention may be applied to standalone LTE-U systems where the unlicensed spectrum is used to carry system and control information which is critical to the operation of the network. In all these cases, the mobile terminal may be configured by the network to perform and report hidden node measurements based on which the network may determine to take action (for example, switching LAA channel).
Figure 4 shows a method for operating a mobile device in a wireless telecommunications network in accordance with an exemplary embodiment of the present invention. At step 310, the mobile device 202 measures interference at the mobile device 202.
In certain embodiments, measuring interference may refer to measuring the total received power at the mobile device 202. In certain embodiment, measuring interference may include a measurement of the noise at the mobile device 202.
Measuring interference may be accomplished in a variety of conventional ways. To give one example, the mobile device 202 may determine the E-UTRA Carrier Received Signal Strength Indicator (RSSI) at the mobile device 202. The RSSI is defined in 3GPP Specification 36.302 (Section 9.2) as comprising the linear average of the total received power (in Watts [W]) observed only in OFDM symbols containing reference symbols for antenna port 0, in the measurement bandwidth, over N number of resource blocks by the UE (mobile device 202) from all sources, including co-channel serving and non-serving cells, adjacent channel interference, thermal noise etc. The mobile device 202 may then use the result to determine a level of interference at the mobile device 202. In this respect, an RSSI measurement may be a suitable choice because it does not rely on any reference symbols which may (or may not - due to the use of LBT) always be transmitted at regular intervals in the network. Alternatively, the skilled person would appreciate that other measures which are suitable for calculating interference at a mobile device could be used. Here, instead of reporting an RSSI value which concerns the average value over a longer period of time, it is intended that the measurement reported for the purposes of the present invention will provide more-detailed time information by relating to a small unit of time. . In certain embodiments, it may be advantageous for the type of measurement performed (for use in measuring interference) to be relatively general purpose such that, in addition to its use in detection of hidden nodes, the same measurement could be used for other purposes (for example, estimated of the channel occupancy/ load). Furthermore, the skilled person will understand that the above measurement of interference may not be relative to any specific signal.
In step 320, the mobile device 202 then determines whether or not to report the measured interference to the network 200. In certain embodiments of the present invention, this determination may be made based on the actual measured interference value. In certain other embodiments, this determination may be based on a graded interference value, where the graded value is obtained by performing an operation (for example, quantising) the actual measured interference value. For example, this operation may involve comparing the actual measured interference to a predetermined threshold, and recording a graded interference value indicating that the actual measured interference value is negligible (below threshold) or significant (above threshold).
In certain embodiments of the present invention, the message by which the mobile device 202 reports the measured interference may cover a period comprising several time slots i.e. the short periods for which the UE determines an interference value. The message also indicates when the interference was measured. For example, the message reporting interference may include information regarding the time (or times, in view of interference potentially being measured for a period comprising several time slots) at which the interference was measured. For example, this may be an absolute time (for example, an indication of a specific time slot) at which the interference occurred and was measured or a time relative to some predetermined start point. Alternatively, this time information may indicate, for instance, time periods during which the interference was measured, a proportion of a period of time during which interference was measured or any other form of timing information that could allow the base station 204 to correlate the interference measured by the mobile device 202 with locally measured interference in order to infer the presence of a hidden node. Alternatively, the time information may include an indication of a percentage of a set of time slots for which interference was measured. In this situation, the base station 204 may be aware of the set of time slots (that is, may be aware of the specifics regarding the time slots) and so be able to compare the received percentage with one calculated by the base station 204 itself for the same set of time slots.
In certain embodiments of the present invention, the message by which the mobile device 202 reports the measured interference may cover a time period comprising several time slots - that is, short periods of time for which the mobile device 202 measures interference. In further embodiments, the time period for which the mobile device 202 provides a measurement report may either be a set of consecutive time slots or a series comprising one or more time units for which a measurement is reported followed by several time units for which a measurement is not performed/ reported.
In certain embodiments, the message by which the mobile device 202 reports the measured may also comprise an indication of the measured interference. That is, to give a non-limiting example, the message may comprise an actual measured interference value for a time slot or a graded interference value determined from an actual measured interference value for a time slot.
In certain embodiments, it may always be determined to report measured interference to the network 200. As such, in these embodiments it may be useful for the network 200 to have knowledge of the actual RSSI measurements of the mobile device 202. Alternatively, the measured interference may be reported - for each measurement - using a predetermined indicator which indicates the interference level. This predetermined indicator may be based on a grading or a quantisation of the measured interference. For example, the mobile device 202 may assign each measurement one of two values, where one value may correspond to relatively low interference (negligible) and the other value to relatively high interference (significant). The value assigned to each measurement may then be transmitted to the network 200 (along with the relevant time indication), thereby informing the network of the general result without needing to provide detailed RSSI measurement information. In another embodiment, the mobile device 202 may instead only report when the graded value (or predetermined indicator) changes (for instance, from showing significant interference to negligible interference).
In other embodiments, it may only be determined to report the measured interference to the network 200 under certain circumstances. For example, such circumstances for reporting may be when the mobile device 202 has determined that the measured interference is non-negligible. In these embodiments, the network 200 may therefore simply assume that time slots for which nothing is reported (that is, no interference measurements) were those where the mobile device 202 determined it was not necessary to report, for example due to the measured interference being negligible. An advantage of the latter approach is to reduce signalling overhead.
In certain embodiments of the present invention, the network 200 may initially transmit, to the mobile device 202, a request for measuring interference. That is, the act of measuring interference by the mobile device 202 may be triggered as a result of the mobile device 202 having received a request for measuring interference from, for example, the base station 204. As described above, it will be appreciated that this interference measuring may be achieved in a variety of ways, as would be understood by the skilled person. For example, it has been described that the interference can be measured based on an appropriate measurement, for example an RSSI measurement by the mobile device 202. As will be appreciated, this request may be to perform a number of interference measurements over a certain time period, where a determination is then made for each measurement as to whether to report the measurement of not - as detailed above.
However, the skilled person will appreciate that the present invention is not limited to being performed at the request of the network. For example, an alternative implementation may be that measuring (and potentially reporting) interference is performed on a routine basis according to a schedule which has been defined in the mobile device 202. As another alternative, the measuring of interference may be performed as a result of some determination made by the mobile device 202 - for example, based on a detection of a change in network, a detection of a reduction in the quality of communications with the network 200, or a detection of an overly-long period of silence from the network 200. In certain embodiments, these triggers or conditions which prompt the mobile device 202 to measure interference may themselves be controlled or specified by the network 200, as may the conditions by which the mobile device 202 will determine to report any measured interference.
In further embodiments, the request for measuring may comprise configuration information, wherein the configuration information is used to configure the mobile device 202 for performing at least one of the measuring of interference, the determining whether to report, and the reporting of the interference itself. That is, the configuration information may include specific instructions or parameters which enable the mobile device 202 to perform the measurements and report the measurements in a manner determined by the network 200. For example, the network 200 may use the request to instruct the mobile terminal to measure interference using RSSI measurements for a time period, where the network 200 may also specify, in the configuration information, the time period itself (for example, by providing information on time slots within the time period for which the measurements should be performed, information on a number of consecutive time slots for which interference should be measured, or information on a number of time periods where, in each time period, interference is measured for at least one time slot defined in the time period ). As another example, the network 200 may provide, in the configuration information, a specific interference threshold which is to be used, by the mobile device 202, in determining whether to report the measured interference. As yet another example, the network 200 may instruct, using the configuration information, the mobile device 202 as to what information is to be included in when interference is reported; such as a specific manner for indicating the time corresponding to the measurement, or whether (and how) to include an indication of the interference measurement itself. The configuration information itself may also be an indication that the mobile device 202 should use one of a number of sets of configuration information which are already stored in the mobile device 202. That is, the network 200 does not provide extensive configuration information but rather instructs the mobile device 202 to use configuration settings which are already known to the mobile device 202 (for example, settings which have been previously provided to the mobile device 202 or which were stored in a storage unit of the mobile device 202 by a manufacturer).
However, it will be appreciated that no request for measuring may be transmitted to the mobile device 202 to prompt interference measuring, and so the present invention does not require that the configuration information is provided. For instance, the skilled person will understand the myriad of ways by which the mobile device 202 could have knowledge of or be provided with information indicating how to perform various actions. To give a non-limiting example, the mobile device 202 may comprise one or more sets of information suitable for configuring the mobile device 202 as required (for example, these sets of information may be provided by a manufacturer and stored in a storage unit of the mobile device 202).
As evident from the above, it will be appreciated that reporting the measured interference to the network may actually comprise, in certain embodiments, reporting the measured interference to the base station 204. However, as indicated above the present invention is not limited to LTE networks. For example, in a WLAN the mobile device 202 may measure interference, and report the measured interference to the AP if so determined.
Determining whether to report the measured interference may be achieved through a number of different methods. One such method is illustrated in Figure 5, which illustrates a method in accordance with a further embodiment the present invention. It will therefore be appreciated that Figure 5 corresponds to embodiments of the present invention where a report is not always sent to the network. However, the skilled person will readily understand how such embodiments could be adapted to relate to other embodiments where every measurement is reported a manner such as - but not limited to - those which have been described.
In Figure 5, steps 410 and 420 essentially describe similar processes to step 310 of Figure 4. That is, the mobile device 202 measures or otherwise determines interference using, in the specific case of Figure 5, an RSSI measurement.
The RSSI measurement may be performed according to different methods. It will be appreciated that some methods may be more suitable than others depending on the configuration of the network or the specific circumstances at hand.
For example, a first option for the RSSI measurement is to perform a single, ‘one shot’ measurement for a period of N consecutive time units. A time unit corresponds to the period for which the mobile device 202 determines an individual RSSI value. A time unit may be defined in an arbitrary way, for instance to have a value of 4 ms. Alternatively, the time unit may be linked to a network property such as the maximum transmission duration or the LBT estimation duration. A period of N consecutive time units may then correspond to a time period of, for example, 640 ms, indicating that N = 160 (160 consecutive RSSI measurements performed by the mobile device 202, each associated with a certain time slot).
A second option is for the mobile device 202 to periodically measure the RSSI for one or more time units. For example, every 160 ms the mobile device 202 may measure one or more time units of 4 ms (to use the values of the first option). This option may be useful if the method for measuring interference involves the use of some hardware or internal component of the mobile device 202 (for example, a receiver) which also needs to be used by the mobile device 202 for other operations (for example, on-going communications). It will be appreciated that the use of the hardware over a number of consecutive time slots (that is, essentially constant use for a period of time) could impact the performance these other operations. Periodically measuring the RSSI according to the second option may mitigate this issue.
In step 430, the determined interference is compared to an interference threshold. The interference threshold may represent a predetermined value stored in the mobile device 202 which is set according to expected levels of interference. That is, the interference threshold is set such that determining a level of interference which is similar to that of typical background levels (that is, deemed negligible) will be discounted. It will be appreciated that the comparison may be between the interference threshold and a single RSSI measurement from a given point in time. Alternatively, the comparison may be between the interference threshold and a number of RSSI measurements taken for a specific time period, where the RSSI measurements may be filtered or averaged in some manner.
In step 440, a check is made as to whether the comparison indicates that the determined interference exceeds an interference threshold.
If the interference threshold is not exceeded, the method may reset to step 410 and the mobile device 202 will perform another RSSI measurement to once again determine interference. Alternatively, the method may simply terminate there - for example it may be concluded that there are no hidden nodes on the frequency channel used by the mobile device 202 and the base station 204.
If the interference threshold is exceeded, the method proceeds to step 450 where the interference is reported to the network 200. Upon reporting the interference, the method may end or reset to step 410 to perform a new RSSI measurement to determine interference.
As an alternative to comparing determined interference to an interference threshold in step 430, instead the determined interference may be compared to a previous interference measurement. The result of this comparison could then be used, in an alternative step 440, to determine whether to report the measured interference. For example, if it is determined that the measured interference is different to the previous interference measurement, then the mobile device 202 may determine to report this interference measurement to the network 200.
As yet another alternative, the comparison with the interference threshold may be used to grade each interference measurement, for example based on whether each measurement is less than or greater than (or equal to) the interference threshold. Then, the graded result for each measurement could be compared to the graded result for the preceding measurement, and if the result has changed then it is determined to report to the network 200.
Steps 440 and 450 may be implemented differently if it is intended that the mobile device 202 always determines to report measured interference. For example, the check may still be made as to whether or not the comparison indicates that the determined interference exceeds the interference threshold. However, the outcome of this check is to assign a predetermined indicator to each measurement; where the predetermined indicator may be one of two values used to indicate that the measured interference is greater than or equal to the threshold or that the measured interference is less than the threshold. Here, the reporting may be to report the indicators assigned to each measurement along with an indication of the time of the measurement.
The steps of comparing the interference to the interference threshold and reporting interference may be performed after every RSSI measurement, or can be performed once a number of RSSI measurements have been taken. For example, the first option mentioned above describes performing the measurement for a number of consecutive time units. After a measurement for an individual time unit, steps 430 to 450 may be performed to inform the network 200 that interference above threshold is detected. Alternatively, the mobile device 202 may measure RSSI for all of the consecutive time periods before reporting to the network 200 any interference. As another alternative, steps 430 to 450 may be performed at some point prior to the end of the time period comprising N consecutive time slots. Similar considerations could be made for the second option outlined above.
In certain embodiments, for both of the first measurement option and the second measurement option it is expected that all time slots (or periods comprising several time slots) where interference is detected to be above threshold will be reported. As indicated above, some accumulation of results may be beneficial. For example, for the second option where a measurement is made every 160 ms, the mobile device 202 may allow 640 ms of measurements to accrue before reporting any interference which occurred in this time.
It is described above that the reported interference includes an indication of the time at which the interference occurs. It will be appreciated that this may be achieved in many ways, of which several shall now be described. In the following, reference is made to Figure 6 which shows example interference measurements against the corresponding time at which they were measured (for example: consecutive 4 ms time slots; or consecutive 160 ms time periods each comprising one 4 ms time slot). For the purposes of Figure 6, the interference threshold may be assumed to be set at a value of 3. In this example, the mobile device 202 will therefore determine to report interference for the occasions when the measured interference is equal to or greater than 3.
A first example method of reporting interference involves reporting the amount (for example, the percentage) of time for which the mobile device 202 determined that the measured interference should be reported (for example due to being equal to or greater than the interference threshold). Based on the example shown in Figure 6, the mobile device 202 may then transmit to the network 200 (for example, the base station 202) an indication that measured interference exceeded the interference threshold for 50% of the time (that is, five different measurements out of the total ten that were performed).
A second example method of reporting interference involves indicating the specific times when the mobile device 202 determines to report the measured interference (for example, due to being equal to or greater than the interference threshold). It will be appreciated that this could be achieved in a number of ways. For instance, the mobile device 202 could report each relevant individual time, and so indicate, for example, times 2, 3, 6, 7 and 8 to the network 200. Alternatively, the mobile device 202 may report the relevant start and end times, and so indicate, for example, times 2 to 3 and times 6 to 8. An another alternative, the mobile device 202 may report when the times when the situation changes, and so indicate, for example, that time 2 is ‘above’, time 4 is ‘below’, time 6 is ‘above’ and time 9 is ‘below’ (for example, refer to the alternative implementation of step 430 described above). It will be understood that different reporting methods may be more suitable in different situations.
In some of the methods described above, reporting has entailed indicating that the measured interference is found to be greater than or equal to the threshold for a given time or range of times. As described above, it will be appreciated that more detailed information about the measured interference could be indicated in the reporting instead of, for example, simply providing a certain predetermined indicator which has been assigned to the interference measurement(s). For example, a precise degree by which the interference threshold is exceeded could be included, or alternatively the actual measurement itself. However, embodiments have also been described where, instead of simply reporting the times when it was conditionally determined to report the measured interference (for example based on a comparison to an interference threshold), the mobile device 202 is configured to report all interference measurements to the network 200. These embodiments may also involve, for example, reporting detailed information about each measurement (and so may not require comparisons with an interference threshold) or an indication of the result of each measurement (such as by using the above-described predetermined indicators which are assigned according to comparisons with an interference threshold). Further still, for either set of embodiments, additional thresholds could be implemented or made available for use in the mobile device 202, such that the mobile device could dynamically select an interference threshold to use according to certain situations. For example, there may be specific occasions when a greater than normal level of interference is expected at the mobile device 202. In this situation, an interference threshold which is used at other occasions may result in far too many interference measurements being deemed worthy of reporting to the network 200, whereas this is simply an expected consequence of the specific occasion. This potentially false reporting would be inefficient; for example increasing signalling overhead. The appropriate use of different interference thresholds could prevent or at least mitigate this issue.
The above has been concerned with the mobile device 202 reporting the times, time slots, time periods etc. when it has been determined to report the measured interference to the network 200. In the following, it will be advantageous to consider that reporting to the network 200 has actually involved reporting to the base station 204. In certain embodiments, the base station 204 may be aware of the times for which the mobile device 202 performed the measurements. That is, the base station 204 may be aware of the start and end time of the period in which the mobile device 202 performed measurements for N consecutive time slots, or the start and end times of the time slot measurements occurring in periodically.
In view of this, in certain embodiments of the present invention the base station 204 may also have measured interference. Upon receiving the report from the mobile device 202, the base station 204 may therefore check the times indicated by the mobile device against interference measured by the base station 204 at the same times. It may be assumed that the base station 204 has knowledge of the interference threshold such that it has an indication as to the magnitude of interference measured at the mobile device for the relevant time(s). The base station 204 may therefore check whether or not it experienced or measured a similar level of interference at the times which the mobile device 202 found necessary to report. For example, with reference to Figure 6, the base station 204 may determine that it measured interference at time 3 to be at some value above the interference threshold (or simply above the interference threshold, if this is all that is reported by the mobile device 202). As another example, the mobile device 202 may indicate a specific time slot to the base station 204, where the base station 204 had not measured interference to be above the threshold for that specific time slot. That is, if an interference threshold of 3 is assumed then, based on the example shown in Figure 3, the mobile device 202 would indicate time slot 4 to the base station 204, thereby informing the base station 204 of a time of high interference which the base station 204 would otherwise not be aware of.
In certain embodiments, the reporting by the mobile device 202 may be such that, for the specific time, the base station 204 may more precisely determine the relationship between the measured interference of the base station 204 and the measured interference of the mobile device 202.
To give a further example, consider the first option for reporting described above, where the mobile device 202 reports to the base station 204 a percentage which indicates the amount of time (or number of time slots) that the measured interference was equal to or above the interference threshold. Upon receiving this information, the base station 204 can compare this percentage against a similar percentage computed by the base station 204 itself. If there is a difference between the two percentages, the base station may determine whether or not this difference is significant. The skilled person will appreciate that determining significance may depend on a number of factors. For instance, as mentioned above there may be occasions where additional interference is expected and so knowledge of these occasions could be used to determine whether or not a difference (relating to measurements made during one of these occasions) is significant. On the basis of these checks performed by the base station 204, an inference can be made as to whether or not a hidden node 208 exists in the network. If the base station 204 concludes that such a hidden node 208 exists, then the base station 204 may take action accordingly.
Alternatively, if the received percentage leads the base station 204 to believe that a hidden node 208 exists (for example, by determining the difference to be significant), then the base station may request the mobile device 202 to provide additional measurement information. This request for additional information, which can also be considered a measurement configuration request, is illustrated by step 530 of Figure 7. For example, the request may be to provide additional measurement information about the measured interference reported by the mobile device 202. As such, the additional measurement information may comprise more precise indications of the relevant time slots for which measured interference was equal to or above the interference threshold. To achieve this, the mobile device 202 may further be configured to store each interference measurement and relevant associated information (for example, a corresponding time slot) in case more detailed information is requested later. Furthermore, the mobile device 202 may be requested to provide, as the additional measurement information, the actual measured interference per individual time slot (this may be, for example, only for the time slots where interference was equal to or above the interference threshold, all time slots where interference was measured, or ever some specific subset of time slots where interference was measured. Alternatively, the request to provide additional measurement information may be a request for the mobile device 202 to perform additional measuring of interference. Here, the mobile device 202 may perform an additional measurement of interference, determine whether to report the additional measured interference, and report the additional measured interference in a manner similar to previously described. This reporting of the additional measured interference, or additional interference measurement report, is illustrated by step 540 of Figure 7. Upon receiving a report of the additional measured interference, the base station 204 may then compare this report to additional interference measurements made by the base station 204 (for time slots which correspond to those that the mobile device 202 has made additional interference measurements for). Based on this second comparison, the base station 204 may determine to reconfigure the network. In certain embodiments, the base station 204 instructs, in the request to provide additional measurement information, the mobile device to perform at least one of the interference measuring, the determining to report the measured interference, and the reporting of the measured interference in a manner different to that previously performed by the mobile device 202. For example, the base station 204 may request that the mobile device 202 performs a different type of measurement or specifies a different time slot, or may request that the mobile device 202 reports every measurement instead of those which exceed a threshold (assuming such was used previously), or that the mobile device includes more-specific time slot information when reporting the measured interference.
In certain embodiments, if the base station 204 determines the existence of a hidden node 208, the base station 204 may determine to reconfigure the wireless communication network. This reconfiguring may be intended to remove or mitigate the interference caused by the hidden node 208.
For example, in certain embodiments of the present invention the base station 204, upon determining the existence of a hidden node 208, may switch to another LAA channel (having another frequency) where its communications with the mobile device 202 will not collide or otherwise suffer interference from those of the hidden node 208. Here, the base station 204 may choose an LAA channel to move the mobile device 202 to by first verifying that there are no hidden nodes on the chosen LAA channel. To achieve this switching, in certain embodiments the base station 204 may transmit a control signal to the mobile device 202 to inform the mobile device of the change in channel. This control signal transmission is illustrated by step 550 of Figure 7.
In another embodiment, the base station 204 may attempt to identify the hidden node 208, for example by using timing information and/or physical identity. For example, in an LAA system the DRS (and so the physical cell ID, PCID) of the hidden node may be detected. Furthermore, in a WLAN, if the mobile device 202 can decode the 802.11 preamble then the mobile device 202 could identify the cell identity. The mobile device 202 could then report this information if necessary (for example, to an AP). This identification could then allow the base station 204 to contact the hidden node 208 by some appropriate means and coordinate transmissions with the hidden node 208 to mitigate interference.
It will be appreciated that these actions performed, in certain embodiments, by the base station 204 (or network 200) may also be performed as part of certain embodiments described above with regards to Figure 4.
Additionally, as may be evident from the above description of Figure 4, in certain embodiments the method of Figure 5 may further include an earlier step whereby the mobile device 202 receives, from the base station 204, a request for measuring interference. The transmission of this request, or measurement configuration request, is illustrated by step 510 in Figure 7. It will be appreciated that this request may further include configuration information, which may, for example, indicate that the mobile device 202 should achieve the interference measuring using an RSSI measurement - as is then performed in step 410 of Figure 5. The provision of a report of measured interference, or an interference measurement report, is illustrated by step 520 of Figure 7.
Throughout the description and claims of this specification, the words “comprise” and “contain” and variations of them mean “including but not limited to”, and they are not intended to (and do not) exclude other components, integers or steps. Throughout the description and claims of this specification, the singular encompasses the plural unless the context otherwise requires. In particular, where the indefinite article is used, the specification is to be understood as contemplating plurality as well as singularity, unless the context requires otherwise.
Features, integers or characteristics described in conjunction with a particular aspect, embodiment or example of the invention are to be understood to be applicable to any other aspect, embodiment or example described herein unless incompatible therewith. All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive. The invention is not restricted to the details of any foregoing embodiments. The invention extends to any novel one, or any novel combination, of the features disclosed in this specification (including any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.
The reader's attention is directed to all papers and documents which are filed concurrently with or previous to this specification in connection with this application and which are open to public inspection with this specification, and the contents of all such papers and documents are incorporated herein by reference.
The above embodiments are to be understood as illustrative examples of the invention. Further embodiments of the invention are envisaged. It is to be understood that any feature described in relation to any one embodiment may be used alone, or in combination with other features described, and may also be used in combination with one or more features of any other of the embodiments, or any combination of any other of the embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the invention, which is defined in the accompanying claims.