Methods for Adapting UE Measurement Period to Conditions
20190053087 · 2019-02-14
Inventors
Cpc classification
H04W24/10
ELECTRICITY
H04L1/0017
ELECTRICITY
H04L5/0048
ELECTRICITY
International classification
H04W24/10
ELECTRICITY
H04L1/00
ELECTRICITY
Abstract
Embodiments described herein are directed to methods for adaptively configuring a measurement period in a user equipment or another network node. The measurement period can be determined based at least in part on an assessment of one or more conditions, wherein each of the measurement periods is associated with at least one condition. The determined measurement period can be used for performing and/or reporting one or more measurements. According to certain embodiments, the measurement period may be adapted by maintaining concurrently two or more measurement filters with different measurement periods and then selecting the appropriate one, based on a condition assessment result.
Claims
1. A method performed by a user equipment (UE) (56), comprising: determining (700) an adaptive measurement period to use for one or more measurements, based at least in part on an assessment of one or more conditions, wherein each of the measurement periods is associated with at least one condition; and using (710) the determined measurement period for performing and/or reporting one or more measurements.
2. The method of claim 1, wherein the one or more conditions comprise at least one of a radio condition such as comparison of s/Jot, signal-interference-to-noise ratio (SINR), reference signal received power (RSRP), channel state information (CSI)-RSRP, or reference signal received quality (RSRQ) with a threshold.
3. The method of any of claims 1-2, wherein the determining (700) an adaptive measurement period further comprises using a first measurement period for performing a single-shot measurement if a first condition is met and using a second measurement period for performing a multi-shot measurement if a second condition is met.
4. The method of any of claims 1-3, wherein the determining (700) an adaptive measurement period further comprises determining (830) that the necessary signals are not present at a predetermined time and extending the measurement period accordingly.
5. The method of claim 4 further comprising maintaining (810,820) concurrently first and second filterings, where each filtering is associated with a different measurement period.
6. The method of any of claims 1-4, wherein the determining (700) an adaptive measurement period further comprising using (810) a first filtering configuration to obtain a first measurement estimate and using (820) a second filtering configuration to obtain a second measurement estimate corresponding to the first and the second measurement periods respectively.
7. The method of any of claims 5-6 further comprising reporting (840,850) one of the first and the second measurement estimates.
8. The method of any of claims 5-6 further comprising reporting (840,850) both of the first and the second measurement estimates.
9. The method of claim 1, wherein the determining (700) comprising mapping the assessment to the adaptive measurement period using a predetermined table.
10. The method of any of claims 7-8, wherein filtered measurement estimates correspond to at least one of RSRP, RSRQ or CSI-RSRP.
11. The method of any of claims 5-6, wherein at least one filtering scheme corresponds to a running average filter.
12. The method of claim 1, wherein the assessment includes determining whether one or more conditions have changed by an amount greater than a predetermined threshold.
13. The method of claim 1, wherein the determining (700) is performed at a predetermined periodicity.
14. The method of claim 1, wherein the determining (700) is performed upon a trigger condition.
15. The method of claim 1, wherein the adaptive measurement period is selected from a set of pre-defined or standardized measurement periods.
16. The method of any of claims 1-15 further comprising indicating to a network node the UE's capability to adaptively configuring measurement period.
17. A method in a network node (24), comprising: receiving (900) information to be used for performing an assessment of one or more conditions at a user equipment (UE) (56); determining (910) an adaptive measurement period to use for one or more measurements, based on the assessment, wherein each of the measurement periods is associated with at least one condition; and indicating (920) to the UE the determined adaptive measurement period.
18. The method of claim 17, further comprising: indicating to the UE whether a single-shot or a multi-shot measurement is to be performed, wherein the single-shot measurement is based on a first measurement period and the multi-shot measurement is based on a second measurement period.
19. The method of claim 17, wherein the assessment includes determining whether one or more conditions have changed by an amount greater than a predetermined threshold.
20. The method of claim 17, wherein the determining (910) is performed at a predetermined periodicity.
21. The method of claim 17, wherein the determining (910) is performed upon a trigger condition.
22. The method of claim 17, wherein the adaptive measurement period is selected from a set of pre defined or standardized measurement periods.
23. The method of claim 17, further comprising: determining the UE's ability to adaptively configure a measurement period.
24. The method of claim 23, wherein the determining is performed autonomously based on at least one of a predefined rule, one or more measurements, or measurement report time.
25. The method of claim 23, wherein the determining is based on an indication received from the UE (56).
26. The method of claim 23, further comprising: if the UE is capable of adaptively configuring a measurement period, indicating to the UE that a multi-shot measurement is to be performed; and otherwise, indicating that a single-shot measurement is to be performed.
27. The method of claim 23, further comprising: if the UE (56) is incapable of adaptively configuring a measurement period, configuring characteristics of signal transmission to be received by the UE to meet the conditions for a measurement period supported by the UE.
28. The method of claim 23, further comprising: informing one or more other nodes of the presence of a UE with or without the ability of adaptively configure a measurement period.
29. A method comprising: obtaining (810, 820) from a UE a first and a second measurement estimate corresponding to a first and a second measurement period; and determining (830) which of the measurement estimates to use based on at least one factor.
30. The method of claim 29, wherein the factor includes at least one of: a determination whether one or more conditions have changed by an amount greater than a predetermined threshold, determining based on a predetermined periodicity, a presence of a trigger condition, or a set of pre-defined or standardized measurement periods.
31. A user equipment (UE) (56), comprising: a processor (58) communicatively coupled to a memory (60) configured to: determine an adaptive measurement period to use for one or more measurements, based at least in part on an assessment of one or more conditions, wherein each of the measurement periods is associated with at least one condition; and use the determined measurement period for performing and/or reporting one or more measurements.
32. The UE (56) of claim 31, wherein the one or more conditions comprise at least one of a radio condition such as comparison of Es/Jot, signal-interference-to-noise ratio (SINR), reference signal received power (RSRP), channel state information (CSI)-RSRP, or reference signal received quality (RSRQ) with a threshold.
33. The UE (56) of any of claims 31-32, wherein the processor (58) is further configured to use a first measurement period for performing a single-shot measurement if a first condition is met and use a second measurement period for performing a multi-shot measurement if a second condition is met.
34. The UE (56) of any of claims 31-33, wherein the processor (58) is further configured to determine that the necessary signals are not present at a predetermined time and extending the measurement period accordingly.
35. The UE (56) of claim 34, wherein the processor (58) is further configured to maintain concurrently first and second filterings, where each filtering is associated with a different measurement period.
36. The UE (56) of any of claims 31-34, wherein the processor (58) is further configured to use a first filtering configuration to obtain a first measurement estimate and use a second filtering configuration to obtain a second measurement estimate corresponding to the first and the second measurement periods respectively.
37. The UE (56) of any of claims 35-36 further comprising a transceiver (62) configured to report one of the first and the second measurement estimates.
38. The UE (56) of any of claims 35-36 further comprising a transceiver (62) configured to report both of the first and the second measurement estimates.
39. The UE (56) of claim 31, wherein the processor (58) is further configured to map the assessment to the adaptive measurement period using a predetermined table.
40. The UE (56) of any of claims 37-38, wherein filtered measurement estimates correspond to at least one of RSRP, RSRQ or CSI-RSRP.
41. The UE (56) of any of claims 35-36, wherein at least one filtering scheme corresponds to a running average filter.
42. The UE (56) of claim 31, wherein the assessment includes determining whether one or more conditions have changed by an amount greater than a predetermined threshold.
43. The UE (56) of claim 31, wherein the processor (58) performs the determining at a predetermined periodicity.
44. The UE (56) of claim 31, wherein the processor (58) performs the determining upon a trigger condition.
45. The UE (56) of claim 31, wherein the adaptive measurement period is selected from a set of pre-defined or standardized measurement periods.
46. The UE (56) of any of claims 31-45 further comprising a transceiver (62) configured to indicate to a network node the UE's capability to adaptively configuring measurement period.
47. A network node (24), comprising: a receiver (38) receiving information to be used for performing an assessment of one or more conditions at a user equipment (UE) (56); a processor (28), communicatively coupled to a memory (30), configured to determine an adaptive measurement period to use for one or more measurements, based on the assessment, wherein each of the measurement periods is associated with at least one condition; and a transmitter (36) transmitting to the UE the determined adaptive measurement period.
48. The network node (24) of claim 47, wherein the transmitter (36) is further configured to indicate to the UE (56) whether a single-shot or a multi-shot measurement is to be performed, wherein the single-shot measurement is based on a first measurement period and the multi-shot measurement is based on a second measurement period.
49. The network node (24) of claim 47, wherein the assessment includes determining whether one or more conditions have changed by an amount greater than a predetermined threshold.
50. The network node (24) of claim 47, wherein the processor (28) performs the determining at a predetermined periodicity.
51. The network node (24) of claim 47, wherein the processor (28) performs the determining upon a trigger condition.
52. The network node (24) of claim 47, wherein the adaptive measurement period is selected from a set of pre-defined or standardized measurement periods.
53. The network node (24) of claim 47, wherein the processor (28) is further configured to determine the UE's (56) ability to adaptively configure a measurement period.
54. The network node (24) of claim 53, wherein the determining is performed autonomously based on at least one of a predefined rule, one or more measurements, or measurement report time.
55. The network node (24) of claim 53, wherein the determining is based on an indication received from the UE (56).
56. The network node (24) of claim 53, further comprising: if the UE is capable of adaptively configuring a measurement period, a transmitter (36) transmitting to the UE an indication that a multi-shot measurement is to be performed, and otherwise, transmitting an indication that a single-shot measurement is to be performed.
57. The network node (24) of claim 53, wherein if the UE is incapable of adaptively configuring a measurement period, the processor (28) configures characteristics of signal transmission to be received by the UE (56) to meet the conditions for a measurement period supported by the UE (56).
58. The network node (24) of claim 53, further comprising: a transmitter (36) transmitting an indication to one or more other nodes of the presence of a UE (56) with or without the ability of adaptively configure a measurement period.
59. A network node (24), comprising: a receiver (38) receiving from a UE (56) a first and a second measurement estimate corresponding to a first and a second measurement period; and a processor (28), communicatively coupled to a memory (30), configured to determine which of the measurement estimates to use based on at least one factor.
60. The network node (24) of claim 59, wherein the factor includes at least one of: a determination whether one or more conditions have changed by an amount greater than a predetermined threshold, determining based on a predetermined periodicity, a presence of a trigger condition, or a set of pre-defined or standardized measurement periods.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The accompanying drawing figures incorporated in and forming a part of this specification illustrate several aspects of the disclosure, and together with the description serve to explain the principles of the disclosure.
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DESCRIPTION OF EMBODIMENTS
[0040] In the following description, numerous specific details are set forth. However, it is understood that embodiments of the invention may be practiced without these specific details. In other instances, well-known circuits, structures and techniques have not been shown in detail in order not to obscure the understanding of this description. Those of ordinary skill in the art, with the included descriptions, will be able to implement appropriate functionality without undue experimentation.
[0041] References in the specification to one embodiment, an embodiment, an example embodiment, etc., indicate that the embodiment described may include a particular feature, structure, or characteristic, but every embodiment may not necessarily include the particular feature, structure, or characteristic. Moreover, such phrases are not necessarily referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is submitted that it is within the knowledge of one skilled in the art to implement such feature, structure, or characteristic in connection with other embodiments whether or not explicitly described.
[0042] In the following description and claims, the terms coupled and connected, along with their derivatives, may be used. It should be understood that these terms are not intended as synonyms for each other. Coupled is used to indicate that two or more elements, which may or may not be in direct physical or electrical contact with each other, co-operate or interact with each other. Connected is used to indicate the establishment of communication between two or more elements that are coupled with each other.
[0043] The embodiments set forth below represent information to enable those skilled in the art to practice the embodiments and illustrate the best mode of practicing the embodiments. Upon reading the following description in light of the accompanying drawing figures, those skilled in the art will understand the concepts of the disclosure and will recognize applications of these concepts not particularly addressed herein. It should be understood that these concepts and applications fall within the scope of the disclosure.
[0044] Radio Node: As used herein, a radio node is either a radio access node or a wireless device.
[0045] Radio Access Node: As used herein, a radio access node is any node in a radio access network of a cellular communications network that operates to wirelessly transmit and/or receive signals. Some examples of a radio access node include, but are not limited to, a base station (e.g., an enhanced or evolved Node B (eNB) in a Third Generation Partnership Project (3GPP) Long Term Evolution (LTE) network), a high-power or macro base station, a low-power base station (e.g., a micro base station, a pico base station, a home eNB, or the like), and a relay node.
[0046] Core Network Node: As used herein, a core network node is any type of node in a core network. Some examples of a core network node include, e.g., a Mobility Management Entity (MME), a Packet Data Network (PDN) Gateway (P-GW), a Service Capability Exposure Function (SCEF), or the like.
[0047] Wireless Device: As used herein, a wireless device is any type of device that has access to (i.e., is served by) a cellular communications network by wirelessly transmitting and/or receiving signals to a radio access node(s). Some examples of a wireless device include, but are not limited to, a User Equipment device (UE) in a 3GPP network and a Machine Type Communication (MTC) device.
[0048] Network Node: As used herein, a network node is any node that is either part of the radio access network or the core network of a cellular communications network/system.
[0049] Note that the description given herein focuses on a 3GPP cellular communications system and, as such, 3GPP LTE terminology or terminology similar to 3GPP LTE terminology is oftentimes used. However, the concepts disclosed herein are not limited to LTE or a 3GPP system.
[0050]
[0051] The base stations 12 and the low power nodes 16 provide service to wireless devices 22-1 through 22-5 in the corresponding cells 14 and 18. The wireless devices 22-1 through 22-5 are generally referred to herein collectively as wireless devices 22 and individually as wireless device 22. In LTE, the wireless devices 22 are referred to as UEs.
[0052] In this example, the macro cells 14 are provided in either a licensed frequency spectrum (i.e., in the frequency spectrum dedicated for the cellular communications network 10), e.g., for LAA operation or an unlicensed frequency spectrum, e.g., for LAA in the unlicensed spectrum (LAA-U) or MulteFire operation. In this example, one or more (and possibly all) of the small cells 18 are provided in an unlicensed frequency spectrum (e.g., the 5 GHz frequency spectrum).
[0053] In this particular example, the base stations 12, 14 that operate on a carrier(s) in an unlicensed spectrum operate to perform LBT and transmit MBMS data according to any of the embodiments described herein.
[0054]
[0055]
[0056] As used herein, a virtualized radio access node is an implementation of the radio access node 24 in which at least a portion of the functionality of the radio access node 24 is implemented as a virtual component(s) (e.g., via a virtual machine(s) executing on a physical processing node(s) in a network(s)). As illustrated, in this example, the radio access node 24 includes the control system 26 that includes the one or more processors 28 (e.g., CPUs, ASICs, FPGAs, and/or the like), the memory 30, and the network interface 32 and the one or more radio units 34 that each includes the one or more transmitters 36 and the one or more receivers 38 coupled to the one or more antennas 40, as described above. The control system 26 is connected to the radio unit(s) 34 via, for example, an optical cable or the like. The control system 26 is connected to one or more processing nodes 42 coupled to or included as part of a network(s) 44 via the network interface 32. Each processing node 42 includes one or more processors 46 (e.g., CPUs, ASICs, FPGAs, and/or the like), memory 48, and a network interface 50.
[0057] In this example, functions 52 of the radio access node 24 described herein are implemented at the one or more processing nodes 42 or distributed across the control system 26 and the one or more processing nodes 42 in any desired manner. In some particular embodiments, some or all of the functions 52 of the radio access node 24 described herein are implemented as virtual components executed by one or more virtual machines implemented in a virtual environment(s) hosted by the processing node(s) 42. As will be appreciated by one of ordinary skill in the art, additional signaling or communication between the processing node(s) 42 and the control system 26 is used in order to carry out at least some of the desired functions 52. Notably, in some embodiments, the control system 26 may not be included, in which case the radio unit(s) 34 communicate directly with the processing node(s) 42 via an appropriate network interface(s).
[0058] In some embodiments, a computer program including instructions which, when executed by at least one processor, causes the at least one processor to carry out the functionality of radio access node 24 or a node (e.g., a processing node 42) implementing one or more of the functions 52 of the radio access node 24 in a virtual environment according to any of the embodiments described herein is provided. In some embodiments, a carrier comprising the aforementioned computer program product is provided. The carrier is one of an electronic signal, an optical signal, a radio signal, or a computer readable storage medium (e.g., a non-transitory computer readable medium such as memory).
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[0061] In some embodiments, a computer program including instructions which, when executed by at least one processor, causes the at least one processor to carry out the functionality of the UE 56 according to any of the embodiments described herein is provided. In some embodiments, a carrier comprising the aforementioned computer program product is provided. The carrier is one of an electronic signal, an optical signal, a radio signal, or a computer readable storage medium (e.g., a non-transitory computer readable medium such as memory).
[0062]
[0063] Any two or more embodiments described in this document may be combined in any way with each other. Furthermore, even though the examples herein are given in the LAA context, the embodiments described herein are not limited to LAA and can also apply in a more general case when the UE may need to configure measurement period adaptively to one or more conditions, e.g., channel quality, s/Iot, SINR, received signal quality, total interference or interference on a specific resources or from a specific interferer(s), etc. Other non-limiting examples where the method is particularly beneficial include measurement s for DRX or extended DRX, and measurement s in high speed train environments.
[0064] The embodiments are applicable to single carrier as well as to multicarrier or carrier aggregation (CA) operation of the UE in which the UE is able to receive and/or transmit data to more than one serving cells. The term carrier aggregation (CA) is also called (e.g. interchangeably called) multi-carrier system, multi-cell operation, multi-carrier operation, multi-carrier transmission and/or reception. In CA one of the component carriers (CCs) is the primary component carrier (PCC) or simply primary carrier or even anchor carrier. The remaining ones are called secondary component carrier (SCC) or simply secondary carriers or even supplementary carriers. The serving cell is interchangeably called as primary cell (PCell) or primary serving cell (PSC). Similarly the secondary serving cell is interchangeably called as secondary cell (SCell) or secondary serving cell (SSC).
[0065] The term signaling used herein may comprise any of: high-layer signaling (e.g., via RRC), lower-layer signaling (e.g., via a physical control channel or a broadcast channel), or a combination thereof. The signaling may be implicit or explicit. The signaling may further be unicast, multicast or broadcast. The signaling may also be directly to another node or via a third node.
[0066] The term conditions used herein in general referrer to radio conditions. The radio conditions may be described e.g. by any one or more of: presence or absence (e.g., due to muting or LBT) of a certain signal or transmissions of a certain type or from a certain node, channel quality, s/Iot (e.g., as defined in 3GPP TS 36.133 where: s is the received energy per RE, power normalized to the subcarrier spacing, during the useful part of the symbol, i.e. excluding the cyclic prefix, at the UE antenna connector; Tot is the received power spectral density of the total noise and interference for a certain RE, power integrated over the RE and normalized to the subcarrier spacing, as measured at the UE antenna connector), signal to interference plus noise ratio (SINR), SIR (signal to interference ratio), SNR (signal to noise ratio), received signal quality, received signal strength, total interference or interference on specific time and/or frequency resources or from a specific interferer(s), RSRP, RSRQ, CSI-RSRP. An example of radio conditions corresponding to two different measurement periods: Es/Iot>=threshold1 and threshold1>Es/Iot>=threshold2.
[0067] The term measurement period used herein may refer to a time duration over which the UE is expected to filter measurement samples. In 3GPP specifications for both WCDMA and LTE, a measurement period is defined for UE physical layer measurements of serving and neighbor cells, for intra-frequency measurements, inter-frequency measurements, and CA measurements. The 3GPP standard also specifies the corresponding measurement accuracy requirements applicable for the specified measurement period. The measurement period is typically determined in time units (e.g., ms) or in number of time resources or blocks of time resources or measurement occasions (e.g., subframes, radio frames, discovery signal occasions, number of DRX cycles, etc.)
[0068] The term measurement herein refers to radio measurements. Some examples of the radio measurements are: signal strength or signal power measurements (e.g., RSRP or CSI-RSRP), signal quality measurements (e.g., RSRQ, SINR), timing measurements (e.g., Rx-Tx, RSTD, RTT, TOA), radio link monitoring measurements (RLM), CSI, PMI, cell detection, cell identification, etc. The measurements may be absolute or relative (e.g., absolute RSRP and relative RSRP). The measurements may be performed for one or more different purpose, e.g., RRM, SON, positioning, MDT, etc. The measurements may be, e.g., intra-frequency measurements, inter-frequency measurements, or CA measurements. The measurements may be performed in the licensed and/or unlicensed spectrum.
[0069] According to the present disclosure, a UE 56 is capable of performing the same measurement over at least two different measurement periods depending on one or more conditions.
Methods in a UE
[0070] In one embodiment, as shown in
[0071] At step 700, UE 56 determines an adaptive measurement period to use for one or more measurements. According to certain embodiments, UE 56 selects one from a set of pre-determined measurement periods, wherein each of the measurement periods is associated with at least one condition, the selection can be performed adaptively to the conditions and can be based on an assessment of one or more of the conditions. The assessment can be performed in the UE 56 or in another node, e.g., a radio access node, such as an eNB.
[0072] If the assessment is in another node, UE 56 can select the measurement period based on the received indication from an assessing node, e.g., a radio access node. The UE may also provide information or measurements for such assessment to be performed in the assessing node.
[0073] If the assessment is performed in the UE 56, the UE may use various information or measurements to determine which measurement period to select. The assessment in the UE may comprise, e.g., any one or more of: dynamic evaluation of one or more conditions, determining (e.g., upon a trigger condition or periodicity) whether one or more conditions have changed by an amount greater than a threshold, keeping track of one or more of conditions. Based on the assessment, the UE 56 can then select the measurement period. Such conditions may, for example be based on standardized UE 56 measurements or UE 56 internal estimates of radio conditions such as one or more of location, RSRP, RSRQ, RS-SINR, or other SINR estimates.
[0074] When the assessment is performed in a different node, it can be based e.g. on any one or more of: the UE measurements available in the assessing node, UE location, history information, conditions prediction by the second mode (e.g., interpolation or extrapolation), statistics. The assessing node can then select the measurement period, based on the assessment, and indicate to the UE the selected measurement period (see also Section 5.2.2). In one example, a network node may indicate to the UE whether a single-shot or a multi-shot measurement is to be performed. The UE thus selects the measurement period based on the received indication from the network node. The UE may also provide information or measurements for the assessment described above to be performed in the assessing node.
[0075] Optionally, the UE 56 may also determine that the necessary signals are not present at some predetermined times and can extend the measurement period accordingly. According to certain embodiments, filtering may also be adapted to avoid filtering when the signals are not present, for example. For example, filtering of LAA measurements may be avoided during LBT which makes the necessary signals unavailable.
[0076] At step 710, UE 56 configures and uses the selected measurement period for performing and/or reporting (e.g., to another node or to a higher layer) one or more measurements.
[0077] In one embodiment, when the UE has been performing concurrent sampling and filtering, the UE can create a measurement report based on the sampling and filtering corresponding to the selected measurement period. The measurement report is then reported to a higher layer or to another node (e.g., a network node or a second UE).
[0078] In another embodiment, the UE can configure sampling and filtering, based on the selected measurement period, and perform the measurement accordingly. The measurement can then be reported to a higher layer or another node (e.g., a network node or a second UE).
[0079]
[0080] As an exemplary embodiment, an M sample running average, and an N sample running average at time index t may be updates as follows. M>N, and M(t) is the t.sup.th physical layer sample of the measurement to be filtered. SN(t) is the sum of the last N samples, SM(t) is the sum of the last M samples, and FN(t) and FM(t) are the running averages over N and M samples respectively: It can be seen that:
[0081] At step 830, the UE 56 can additionally estimate at least one metric for each measured cell giving an indication of the measurement period needed to ensure a sufficiently accurate measurement. The metric in may correspond to RS-SINR, RSRQ or any other metric which gives an indication of the measurement period needed to ensure a sufficiently accurate measurement.
[0082] the UE 56 can select one out of the at least two different measurement estimates depending on which measurement period is needed to ensure a sufficiently accurate measurement. In the example of
[0083] At steps 840, 850, the selected filtered measurement estimate can be provided to and used by the higher layers of the UE implementation which may perform L3 filtering, event evaluation, periodic reporting, reselection evaluation or any other higher layer procedures using measurement results. In the exemplary embodiment depicted in
Methods in a Node Other Than the UE
[0084] The methods in another node (e.g., another UE or any other network node) herein reflect the UE embodiments described above.
[0085] In one example, the information may comprise any one or more of: UE measurements available in the assessing node or which can be obtained (e.g., requested from the UE), UE location, history information, predicted conditions (e.g., by interpolation or extrapolation), statistics, etc.
[0086] Thereafter, at step 910, an appropriate processor at or accessible by the other node may be implemented to select or otherwise determine the measurement period, based on the assessment. Thereafter, a transmitter at the other node (or controllable by the other node) can indicate to the UE 56 the selected measurement period, at step 920.
[0087] In one further example, a network node may indicate to the UE 56 whether a single-shot or a multi-shot measurement is to be performed.
[0088] It is noted that regardless of in which node the adaptive measurement period is determined, the determining may comprise the following functionality at least in part, in various combinations and orders: [0089] Selecting a measurement period from a set of pre-configured or pre-determined measurement periods or measurement configurations, based on the assessment result and the determined condition, [0090] Selecting measurement period from a set of standardized measurement periods, based on the assessment result and the determined condition, [0091] Mapping the assessment result to the measurement period, e.g., based on a table, [0092] Deriving the measurement period by a function, [0093] Determining the presence or absence (e.g., due to muting or LBT) of a certain signal or transmissions of a certain type or from a certain node, e.g., when LBT is determined the measurement period may be further extended to account for unavailability of necessary signals at certain times, [0094] Applying a pre-defined rule, e.g.: [0095] A first measurement period is selected if a first condition is met, and a second measurement period is selected if a second condition is met, [0096] When a first measurement period is comprised in a second measurement period (e.g., during concurrent filtering), the first measurement period is selected when the first condition is met during the first measurement period, otherwise the second measurement period is selected. In one example, the first measurement period is one discovery signal occasion comprised in the second measurement period comprising two or more discovery signal occasions, and the first measurement period is associated with the condition Es/Iot>=0 dB, while the second measurement period is associated with the condition 0 dB>Es/Iot>=6 dB; the first measurement period is selected whenever the first condition is met during any of the discovery signal occasions within the second measurement period. In another example, whenever the first condition is met over the first measurement period (which is comprised in the second measurement period), the UE reports the measurement without waiting until the end of the second measurement period, and the UE may use all or any samples from the beginning of the second measurement period until the end of the first measurement period. [0097] This may be extended to selection of more than two measurement periods, based on more than two criteria. [0098] Selecting a filtering result from two or more available filterings which may be conducted concurrently.
[0099] According to various embodiments, not all the UEs may be capable of adaptive measurement period configuration, i.e., the UE being capable of performing the same measurement over at least two different measurement periods depending on the conditions.
[0100] In one embodiment, a first UE, which is capable of adaptively configuring measurement period, signals its capability to another node (e.g., a network node or another UE). The signaling may be implicit or explicit, and it may be upon a request or in an unsolicited way.
[0101] In another embodiment, another node (e.g., a network node or a second UE, which may or may not be an assessing node) determines the first UE's capability to adaptively configure measurement period and uses it for one or more operational tasks. In this example, the determination may be performed by the other node autonomously (e.g., based on one or more of: pre-defined rule, measurements, measurement report time, etc.) or based on the indication received from the first UE.
[0102] Some examples of the operational tasks can include configuring UE measurement (e.g., configuring UE LAA measurements accounting for the UE capability, configuring UE measurement bandwidth, configuring time and/or frequency resources for measurements, configuring measurement periodicity, configuring a certain measurement window, configuring measurement period); in one example, a UE without the capability may be configured with a single-shot measurement, otherwise with a multi-shot measurement;
[0103] Yet another example of an operational task can include configuring signal transmissions to be received by the UE with such capability (e.g., configuring one or more of: transmit power, time and/or frequency resources for the transmissions, the number of signal repetitions, signal periodicity, specific signal type) to meet the conditions for a certain target measurement period to facilitate the UE adaptation.
[0104] Yet another example of an operational task can include configuring signal transmissions to be received by the UE without such capability (e.g., configuring one or more of: transmit power, time and/or frequency resources for the transmissions, the number of signal repetitions, signal periodicity, specific signal type) to meet the conditions for the measurement period supported by the UE without the capability.
[0105] A further example of an operational task includes scheduling adaptation (e.g., to create certain conditions such as reduced interference for UEs with or without the capability to facilitate their measurements; to optimize resource utilization in the transmitting node to account for that UEs capable of faster reporting require fewer transmissions from the transmitting node).
[0106] Another operational tasks can be to inform one or more other nodes about the presence of UEs with or without such capability, UE activity configuration (e.g., a longer DRX may be configured for UEs capable of reporting faster in some conditions), and/or power saving in the transmitting node (e.g., considering that UEs capable of faster reporting require fewer transmissions from the transmitting node).
[0107]
[0108] As shown in
[0109]
[0110] The diamond-shaped trace represents measurement samples filtered using a 1 sample running average (i.e. unfiltered for this case) and the square-shaped trace represents measurement samples using a 5 sample running average. The following aspects may be noted: [0111] 1) The diamond-shaped trace shows more rapid response (in this case instantaneous) to step changes in nominal RSRP due to the usage of a shorter filter; [0112] 2) The diamond-shaped trace shows more variance especially when the SINR becomes poor as multiple samples are not averaged; and [0113] 3) Both traces show a positive bias especially at low SINR (where the nominal RSRP is 90 dBm). This is a well-known property of RSRP as in high noise conditions some part of the noise power is incorrectly classified as CRS reference symbol power. The suppression of noise power in CRS power estimation will depend on the coherent averaging of reference symbols which is performed (depending on UE implementation). Additional incoherent averaging of power estimates does not reduce the bias since averaging a fixed bias does not remove it. However, the accuracy of the square-shaped trace may be significantly better than the diamond-shaped trace due to the reduction of variance caused by the averaging (as per observation 2).
[0114]
[0115] As can be seen, the adaptive method provides for a more rapid filter response to the step change at t=0.4 s (as SINR is above 0 dB, the single sample RSRP estimate is used) while reducing the variance in the low SINR regime after t=1.04 s. The response to the step change in RSRP is slower in this regime, because the result of the 5 sample running average filter is used, so the output only converges fully after 5 samples have been put into the filter history.
[0116] Based on the foregoing embodiments, the UE measurement period for a measurement is dynamically configured, adaptively to one or more conditions. The condition(s) are assessed dynamically by the UE or another node. In one example, assessing a condition may comprise evaluating various metrics, e.g., SINR.
[0117] In one embodiment, adapting the measurement period may comprise maintaining concurrently two or more measurement filters with different measurement periods and then selecting the appropriate one, based on the condition assessment result.
[0118] The measurement result based on the determined measurement period may then be reported to higher layers and/or another node.
[0119] According to advantages to the foregoing embodiments, measurements are reported more quickly in good radio conditions (e.g., high Es/Iot). Further, measurement reporting accuracy is not compromised in less good radio conditions (e.g., lower Es/Iot). The UE can track the conditions to facilitate dynamic configuration of the appropriate measurement period. Meanwhile, the network is aware of the UE's capability of dynamically configuring the measurement period.
[0120] While processes in the figures may show a particular order of operations performed by certain embodiments of the invention, it should be understood that such order is exemplary (e.g., alternative embodiments may perform the operations in a different order, combine certain operations, overlap certain operations, etc.).
[0121] While the invention has been described in terms of several embodiments, those skilled in the art will recognize that the invention is not limited to the embodiments described, can be practiced with modification and alteration within the spirit and scope of the appended claims. The description is thus to be regarded as illustrative instead of limiting.
Abbreviations
[0122]
TABLE-US-00002 Abbreviation Explanation CA Carrier Aggregation CSI-RSRP Channel State Information-Reference symbol received power DRS Discovery Signal DRX Discontinuous Reception eNB Evolved node B LAA License assisted access LBT Listen before talk LTE Long-Term Evolution RSRP Reference symbol received power RSRQ Reference symbol received quality