This invention relates generally to wireless communications and, more specifically, to methods, apparatuses, and computer readable storage media for inter-frequency small cell detection and reporting.
This section is intended to provide a background or context to the invention disclosed below. The description herein may include concepts that could be pursued, but are not necessarily ones that have been previously conceived, implemented or described. Therefore, unless otherwise explicitly indicated herein, what is described in this section is not prior art to the description in this application and is not admitted to be prior art by inclusion in this section.
The inter-frequency cell measurement procedures set forth in the current Long Term Evolution (LTE) specification includes cell identification (ID) detection, as well as related Reference Signal Receive Power (RSRP)/Reference Signal Receive Quality (RSRQ) measurement and reporting. The cell ID is detected by a user equipment (UE) over a Primary Synchronization Signal (PSS) or a Secondary Synchronization Signal (SSS). The PSS or SSS is transmitted every five milliseconds, for example, in SF #0 and SF #5 in each frame. The RSRP/RSRQ is measured by the UE over Cell Specific Reference Signals (CRS) within a measurement bandwidth and a measurement period.
Release 12 of the LTE standard supports a small cell scenario wherein a Macro cell and a small cell within the coverage area of the Macro cell each deploy different carrier frequencies. Illustratively, the Macro cell and the small cell may be time-synchronized based upon network listening. However, in order to perform an offloading or a handover, the UE must perform inter-frequency measurements. Existing inter-frequency small cell discovery processes may be insufficient for providing adequate opportunities for small cell offloading. Moreover, the interruption time for the UE performing inter-frequency measurements may be undesirably lengthy, thereby restricting downlink (DL)/uplink (UL) scheduling flexibility.
According to one embodiment of the invention, a method comprises receiving a first measurement setting for synchronization signal detection, and receiving a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. Synchronization detection is performed using the first measurement setting. In response to a small cell being detected, a feedback indication is provided on an indication channel. Radio resource management measurement is then performed according to the second measurement setting.
According to another embodiment of the invention, a method comprises transmitting a first measurement setting for synchronization signal detection and transmitting a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. A feedback indication signal is received. In response to the receipt of the feedback indication signal, a downlink/uplink scheduling strategy is modified in accordance with the second measurement setting.
According to another embodiment, an apparatus comprises at least one processor, and at least one memory including computer program code for one or more computer programs, the at least one memory and the computer program code configured to, with the at least one processor, cause, at least in part, the apparatus to receive a first measurement setting for synchronization signal detection, and to receive a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. Synchronization detection is performed using the first measurement setting. In response to a small cell being detected, a feedback indication is provided on an indication channel. Radio resource management measurement is then performed according to the second measurement setting.
According to another embodiment, an apparatus comprises at least one processor, and at least one memory including computer program code for one or more computer programs, the at least one memory and the computer program code configured to, with the at least one processor, cause, at least in part, the apparatus to transmit a first measurement setting for synchronization signal detection, and to transmit a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. A feedback indication signal is received. In response to the receipt of the feedback indication signal, a downlink/uplink scheduling strategy is modified in accordance with the second measurement setting.
According to another embodiment, a computer-readable storage medium carries one or more sequences of one or more instructions which, when executed by one or more processors, cause, at least in part, an apparatus to receive a first measurement setting for synchronization signal detection, and to receive a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. Synchronization detection is performed using the first measurement setting. In response to a small cell being detected, a feedback indication is provided on an indication channel. Radio resource management measurement is then performed according to the second measurement setting.
According to another embodiment, a computer-readable storage medium carries one or more sequences of one or more instructions which, when executed by one or more processors, cause, at least in part, an apparatus to transmit a first measurement setting for synchronization signal detection, and to transmit a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. A feedback indication signal is received. In response to the receipt of the feedback indication signal, a downlink/uplink scheduling strategy is modified in accordance with the second measurement setting.
According to another embodiment, an apparatus comprises means for processing and/or facilitating a processing of receiving a first measurement setting for synchronization signal detection, and receiving a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. Synchronization detection is performed using the first measurement setting. In response to a small cell being detected, a feedback indication is provided on an indication channel. Radio resource management measurement is then performed according to the second measurement setting.
According to another embodiment, an apparatus comprises means for processing and/or facilitating a processing of transmitting a first measurement setting for synchronization signal detection and transmitting a second measurement setting for radio resource management measurement. The first measurement setting includes a first gap length and a first measurement gap repetition period, and the second measurement setting includes a second gap length and a second measurement gap repetition period. A feedback indication signal is received. In response to the receipt of the feedback indication signal, a downlink/uplink scheduling strategy is modified in accordance with the second measurement setting.
In addition, for various example embodiments of the invention, the following is applicable: a method comprising facilitating a processing of and/or processing (1) data and/or (2) information and/or (3) at least one signal, the (1) data and/or (2) information and/or (3) at least one signal based, at least in part, on (or derived at least in part from) any one or any combination of methods (or processes) disclosed in this application as relevant to any embodiment of the invention.
For various example embodiments of the invention, the following is also applicable: a method comprising facilitating access to at least one interface configured to allow access to at least one service, the at least one service configured to perform any one or any combination of network or service provider methods (or processes) disclosed in this application.
For various exemplary embodiments of the invention, the following is also applicable: a method comprising facilitating creating and/or facilitating modifying (1) at least one device user interface element and/or (2) at least one device user interface functionality, the (1) at least one device user interface element and/or (2) at least one device user interface functionality based, at least in part, on data and/or information resulting from one or any combination of methods or processes disclosed in this application as relevant to any embodiment of the invention, and/or at least one signal resulting from one or any combination of methods (or processes) disclosed in this application as relevant to any embodiment of the invention.
For various example embodiments of the invention, the following is also applicable: a method comprising creating and/or modifying (1) at least one device user interface element and/or (2) at least one device user interface functionality, the (1) at least one device user interface element and/or (2) at least one device user interface functionality based at least in part on data and/or information resulting from one or any combination of methods (or processes) disclosed in this application as relevant to any embodiment of the invention, and/or at least one signal resulting from one or any combination of methods (or processes) disclosed in this application as relevant to any embodiment of the invention.
In various example embodiments, the methods (or processes) can be accomplished on the service provider side or on the mobile device side or in any shared way between service provider and mobile device with actions being performed on both sides. For various example embodiments, the following is applicable: An apparatus comprising means for performing the method of any of the originally filed method claims included herewith.
Still other aspects, features, technical effects, and advantages of the invention are readily apparent from the following detailed description, simply by illustrating a number of particular embodiments and implementations, including the best mode contemplated for carrying out the invention. The invention is also capable of other and different embodiments, and its several details can be modified in various obvious respects, all without departing from the spirit and scope of the invention. Accordingly, the drawings and description are to be regarded as illustrative in nature, and not as restrictive.
In the attached Figures:
Examples of a method, apparatus, and computer program product for performing inter-frequency small cell detection and reporting are disclosed. In the following description, for the purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the embodiments of the invention. It is apparent, however, to one skilled in the art that the embodiments of the invention may be practiced without these specific details or with an equivalent arrangement. In other instances, well-known structures and devices are shown in block diagram form in order to avoid unnecessarily obscuring the embodiments of the invention.
A generalized inter-frequency scheme for small cells is defined in Third Generation Partnership Project (3GPP) Technical Standard (TS) 36.133 v c.0.0. Essentially, two possible measurement gap patterns may be configured by an evolved Node B (eNB), each with a gap length of 6 ms. In a first pattern designated as pattern#0, the measurement gap occurs every 40 ms, while in a second pattern designated as pattern#1, the measurement gap occurs every 80 ms. A user equipment (UE) will feed back a detected cell ID and corresponding measured reference signal receiving power (RSRP)/reference signal receiving quality (RSRQ) through a radio resource management (RRC) measurement report when a UE-specific event is triggered.
According to TS 36.133 v c.0.0, the measurement gap, as well as the measurement pattern, are the same for cell ID detection and RSRP/RSRQ measurements. However, in order to increase the opportunity for offloading traffic to small cells, it may be possible to accelerate the inter-frequency small cell discovery process, as will be discussed in greater detail hereinafter. Likewise, it may be possible to reduce the interruption time for the UE engaged in inter-frequency measurements, so as to thereby reduce a corresponding downlink (DL)/uplink (UL) scheduling restriction for these UEs, as will also be discussed in greater detail hereinafter.
The first and second gap lengths 401, 405, respectively, and the first and second MGRPs 403, 407, respectively, are employed by the UE 108A for performing a small cell identification procedure. At block 303 (
The feedback indication may be used to indicate a transition from a first measurement configuration to a second measurement configuration, wherein the first measurement configuration comprises synchronization detection (for example, PSS/SSS detection and the second measurement configuration comprises radio resource management measurement (for example, RSRP/RSRQ measurement). For purposes of illustration, this synchronization detection may comprise detecting a cell identifier over a primary synchronization signal or a secondary synchronization signal.
The UE then performs RSRP/RSRQ measurements according to the measurement gap length and the measurement gap repetition period specified by the measurement settings (block 307), which in the example of
In the example of
According to a further set of embodiments of the invention, a unified measurement setting is received for synchronization signal detection and radio resource management measurement. The measurement setting includes a shorter gap length which is shorter than that specified in standard specification TS 36.133 v c.0.0, as well as a shorter MGRP which is shorter than that specified in standard specification TS 36.133 v c.0.0. For purposes of illustration, the measurement setting includes a shorter gap length of less than 6 ms and preferably 1 ms or less, and a shorter measurement gap repetition period of less than 20 ms and preferably 10 ms or less.
The unified measurement setting may be utilized for PSS/SSS detection, or for RSRP/RSRQ measurement, or for both PSS/SSS detection and RSRP/RSRQ measurement. For example, a first unified measurement setting may be configured for synchronization detection and a second unified measurement setting may be configured for RSRP/RSRQ measurement. As used herein, the terms “shorter gap length” and “shorter MGRP” are defined as set forth in the immediately preceding paragraph. For PSS/SSS detection, any of the following may be performed: (A) use the shorter gap length for PSS/SSS detection, and keep a non-shortened MGRP for PSS/SSS detection; or (B) use the shorter gap length for PSS/SSS detection, and also use the shorter MGRP for PSS/SSS detection. Likewise, for RSRP/RSRQ measurement, any of the following may be performed: (C) use the shorter gap length for RSRP/RSRQ measurement and a non-shortened MGRP for RSRP/RSRQ measurement; or (D) use the shorter gap length for RSRP/RSRQ measurement and the shorter MGRP for RSRP/RSRQ measurement. Thus, any of four possible configurations for PSS/SSS detection and RSRP/RSRQ measurement may be implemented as follows. A first configuration performs (A) and (C), a second configuration performs (A) and (D), a third configuration performs (B) and (C), and a fourth configuration performs (B) and (D). From such measurement settings, the gap length for PSS/SSS detection may be shorter than the gap length for RSRP/RSRQ measurement. The gap repetition period for PSS/SSS detection may be shorter than the measurement gap repetition period for RSRP/RSRQ measurement.
The UE may receive PCFICH/PDCCH/PHICH in the first 1/2/3 OFDM symbols and switch the RF transceiver to detect the PSS/SSS. Returning to
The UE follows the PSS/SSS detection configuration as shown in
Alternatively or additionally, the eNB may separately configure a cell-specific or UE-specific maximum time period for PSS/SSS detection and for RSRP/RSRQ measurement. If the UE does not find any small cell during this time period, it will not perform any more RSRP/RSRQ measurements. In addition, the possibility exists that for one specific carrier, the Macro eNB 102A (
The eNB 750 may suitably comprise a transmitter 752, receiver 754, and antenna 756. The eNB 750 may also include a processor 758 and memory 760. The eNB 750 may employ data 762 and programs (PROGS) 764, residing in memory 760.
At least one of the PROGs 714 in the eNB 700 is assumed to include a set of program instructions that, when executed by the associated DP 708, enable the device to operate in accordance with the exemplary embodiments of this invention, as detailed above. In these regards the exemplary embodiments of this invention may be implemented at least in part by computer software stored on the MEM 710, which is executable by the DP 708 of the eNB 700, or by hardware, or by a combination of tangibly stored software and hardware (and tangibly stored firmware).
Similarly, at least one of the PROGs 764 in the eNB 750 is assumed to include a set of program instructions that, when executed by the associated DP 758, enable the device to operate in accordance with the exemplary embodiments of this invention, as detailed above. In these regards the exemplary embodiments of this invention may be implemented at least in part by computer software stored on the MEM 760, which is executable by the DP 758 of the eNB 750, or by hardware, or by a combination of tangibly stored software and hardware (and tangibly stored firmware). Electronic devices implementing these aspects of the invention need not be the entire devices as depicted at
In general, the various embodiments of the UE 750 can include, but are not limited to personal portable digital devices having wireless communication capabilities, including but not limited to cellular telephones, navigation devices, laptop/palmtop/tablet computers, digital cameras and music devices, and Internet appliances.
Various embodiments of the computer readable MEM 710 and 760 include any data storage technology type which is suitable to the local technical environment, including but not limited to semiconductor based memory devices, magnetic memory devices and systems, optical memory devices and systems, fixed memory, removable memory, disc memory, flash memory, DRAM, SRAM, EEPROM and the like. Various embodiments of the DP 08 and 758 include but are not limited to general purpose computers, special purpose computers, microprocessors, digital signal processors (DSPs) and multi-core processors.
At least one of the PROGs 778 in the core network element 770 is assumed to include a set of program instructions that, when executed by the associated DP 772, enable the device to operate in accordance with the exemplary embodiments of this invention, as detailed above. In these regards the exemplary embodiments of this invention may be implemented at least in part by computer software stored on the MEM 774, which is executable by the DP 772 of the core network element 770, or by hardware, or by a combination of tangibly stored software and hardware (and tangibly stored firmware). Similarly, at least one of the PROGs 778 in the core network element 770 is assumed to include a set of program instructions that, when executed by the associated DP 772, enable the device to operate in accordance with the exemplary embodiments of this invention, as detailed above.
Electronic devices implementing these aspects of the invention may, but need not, be the entire devices as depicted at
Various embodiments of the computer readable MEM 774 include any data storage technology type which is suitable to the local technical environment, including but not limited to semiconductor based memory devices, magnetic memory devices and systems, optical memory devices and systems, fixed memory, removable memory, disc memory, flash memory, DRAM, SRAM, EEPROM and the like. Various embodiments of the DP 772 include but are not limited to general purpose computers, special purpose computers, microprocessors, digital signal processors (DSPs) and multi-core processors.
While various exemplary embodiments have been described above it should be appreciated that the practice of the invention is not limited to the exemplary embodiments shown and discussed here. Various modifications and adaptations to the foregoing exemplary embodiments of this invention may become apparent to those skilled in the relevant arts in view of the foregoing description. It will be further recognized that various blocks discussed above may be performed as steps, but the order in which they are presented is not limiting and they may be performed in any appropriate order with or without additional intervening blocks or steps.
Furthermore, some of the various features of the above non-limiting embodiments may be used to advantage without the corresponding use of other described features. The foregoing description should therefore be considered as merely illustrative of the principles, teachings and exemplary embodiments of this invention, and not in limitation thereof.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2013/081068 | 8/8/2013 | WO | 00 |