Implicit drx cycle length adjustment control in lte_active mode
Abstract
Control of adjustment of the length of the DRX cycle implicit in LTE_Active mode. A method of controlling discontinuous reception in a wireless transmission and reception unit includes the definition of a series of XRD levels, where each XRD level includes a corresponding XRD cycle length and transition between XRD levels based on a set of criteria. The transition can be triggered by implicit rules.

Term
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Projected expiry 30 January 2028, counted from filing; an application has no term until it is granted.
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15 claims: 2 independent, 13 dependent
- 1Reivindicações 1. Método de controle da recepção descontínua (DRX) em uma unidade de transmissão e recepção sem fio (WTRU), caracterizado pelo fato em que o método compreende:- definição de uma série de comprimentos de ciclos de DRX;e - transição entre os comprimentos de ciclos de DRX com base em pelo menos um acionador de transição implícito.
- 2Método conforme a reivindicação 1, caracterizado pelo fato de que o acionador de transição implícito é baseado em eventos detectados pela WTRU.
- 3Método conforme a reivindicação 1, caracterizado pelo fato de que o acionador de transição implícito é definido por sinais explícitos recebidos pela WTRU.
- 4Método conforme a reivindicação 1, caracterizado pelo fato de que a transição entre a série de comprimentos de ciclos de DRX é baseada em eventos medidos.
- 5Método conforme a reivindicação 1, caracterizado pelo fato de que compreende adicionalmente a definição de dois níveis de DRX.
- 6Método conforme a reivindicação 1, caracterizado pelo fato de que cada comprimento de ciclo de DRX correspondente é uma função do comprimento de um ciclo de DRX mais curto.
- 7Método conforme a reivindicação 1, caracterizado pelo fato de que compreende adicionalmente:- definição de um período de vida de DRX;e - redefinição dos comprimentos de ciclos de DRX uma vez por período de vida de DRX.
- 8Método conforme a reivindicação 1, caracterizado pelo fato de que o acionador de transição implícito é o término de um temporizador.
- 9Método conforme a reivindicação 8, caracterizado pelo fato de que compreende adicionalmente a reconfiguração do temporizador mediante atividade de transmissão.
- 10Método conforme a reivindicação 8, caracterizado pelo fato de que o acionador de transição implícito é um evento de tráfego.
- 11Unidade de transmissão e recepção sem fio (WTRU) que compreende um processador, caracterizada pelo fato em que o processador é configurado para:- definir uma série de comprimentos de ciclos de DRX;e - realizar transição da WTRU entre os comprimentos de ciclos de DRX com base em pelo menos um acionador de transição implícito. 2/2
- 12WTRU conforme a reivindicação 11, caracterizada pelo fato de que o processador é adicionalmente configurado para realizar transição periódica entre um comprimento de ciclo de DRX longo e um comprimento de ciclo de DRX curto.
- 13WTRU conforme a reivindicação 11, caracterizada pelo 5 fato de que o acionador de transição implícito compreende um evento de medição.
- 14WTRU conforme a reivindicação 11, caracterizada pelo fato de que o acionador de transição implícito compreende um temporizador.
- 15WTRU conforme a reivindicação 14, caracterizada pelo fato de que, desde que o temporizador tenha vencido, o processador é configurado para 10 realizar transição de um comprimento de ciclo de DRX curto para um comprimento de ciclo de DRX longo. 1/8 100
Independent claims15
146 paragraphs in 5 sections, as filed
(54) Title: ADJUSTMENT CONTROL
DRX CYCLE LENGTH IMPLIED IN LTE_ACTIVE MODE (30) Unionist Priority: 30/01/2007 us 60 / 887,276 (73) Holder (s): interdigital Technology Corporation (72) Inventor (s): jin wang, peter s. wang, stephen e. terry (74) Attorney (s): Advocacia Pietro Ariboni S / C (86) International Request: pct US2008001344 of 01/30/2008 (87) International Publication: wo 2008 / 09468ide 07/08/2008 (57) Summary: Control for adjusting the length of the DRX cycle implicit in LTE_Active mode. A method of controlling discontinuous reception in a wireless transmission and reception unit includes the definition of a series of XRD levels, where each XRD level includes a corresponding XRD cycle length and transition between XRD levels based on a set of criteria. The transition can be triggered by implicit rules.
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XRD level -1
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Control of adjustment of the length of the DRX cycle implicit in LTE_Active mode.
FIELD OF THE INVENTION
The present invention is in the field of wireless communications.
BACKGROUND
An objective of the Third Generation Partnership Project (3GPP) Long Term Evolution (LTE) program is the development of new technology, new architecture and new methods of adjustments and configurations in wireless communication systems, in order to improve the spectrum efficiency, reduce latency and better use the radio resource to bring faster user experiences, richer applications and services to lower cost users.
In a typical LTE network, a wireless transmission and reception unit (WTRU) can operate in a number of modes. While in LTE_ACTIVE mode, the WTRU can operate in a batch reception mode (DRX). DRX mode allows the WTRU to operate in low power, or automatic shutdown mode for a predetermined time and then switch to a full power mode, or awake, for a previously defined time in order to reduce the battery consumption. The lengths of XRD cycles are generally configured by the enhanced universal terrestrial radio access network (E-UTRAN), in such a way that an enhanced B-Node (eNB) and the WTRU are synchronized in a consistent cycle of turning off and waking up.
Live traffic situations and WTRU mobility may require frequent adjustments of the DRX cycle period in order to balance system performance, WTRU performance and WTRU energy savings. Relying only on WTRU / E-UTRAN signaling to perform fine DRX cycle adjustment may, however, incur a heavy system and WTRU signaling load.
Implicit rules of the DRX cycle length adjustment can be used for smooth LTE_ACTIVE DRX operations to reduce battery power consumption without affecting WTRU or system performance issues. Implicit rules can assist the implicit DRX cycle length transitions between the WTRU and the E-UTRAN without the use of excessive explicit signaling. SUMMARY OF THE INVENTION
A method and apparatus for controlling discontinuous reception in a WTRU are described. The method may include the definition of a series of XRD levels, where each XRD level includes a corresponding XRD cycle length and transition between the XRD levels based on a set of criteria. The transition can be triggered by implicit rules. The drive can be
2/14 invoked by a measurement event, timer, counter or lower link command, for example. Transitions between XRD states can occur without explicit signaling.
BRIEF DESCRIPTION OF THE FIGURES
A more detailed understanding can be obtained from the description below, provided as an example and to be understood together with the attached Figures, in which:
- Figure 1 shows a wireless communication system according to an embodiment;
- Figure 2 is a functional block diagram of a WTRU and an eNode B (eNB) according to an embodiment;
Figure 3 is an implicit XRD transition state diagram according to an embodiment;
Figure 4 is a signal flowchart for implicit XRD transition as per an embodiment;
Figure 5 is a flow chart of an implicit XRD signaling method according to an embodiment;
Figure 6 is a flow chart of an implicit XRD signaling method according to another embodiment;
Figure 7 is a flow chart of an implicit XRD signaling method according to an alternative embodiment; and
Figure 8 is a flow chart of an implicit XRD signaling method according to another alternative embodiment.
DETAILED DESCRIPTION
When indicated below, the terminology “wireless transmission and reception unit (WTRU)” includes, but is not limited to, user equipment (UE), mobile station (STA), fixed or mobile subscriber unit, pager, cell phone, personal digital assistant (PDA), computer or any other type of user device capable of operating in a wireless environment. When indicated below, the terminology “base station” includes, but is not limited to, a Node B, location controller, access point (AP) or any other type of interface device capable of operating in a wireless environment.
Figure 1 shows a wireless communication system 100 as shown in one embodiment. System 100 includes a series of WTRUs 110 and an eNB 120. As shown in Figure 1, WTRUs 110 are in communication with eNB 120. Although three WTRUs 110 and one eNB 120 are displayed in Figure 1, note that any combination of wired and wireless devices can be included in the wireless communication system 100. The eNB 120 and WTRUs 110 can communicate while in DRX mode and can have coordinated DRX cycles.
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Figure 2 is a function block diagram 200 of a WTRU 110 and the eNB 120 of the wireless communication system 100 of Figure 1. As shown in Figure 1, the WTRU 110 is in communication with the eNB 120. The WTRU 110 and eNB 120 can operate in DRX mode.
In addition to the components that can be found in a typical WTRU, the WTRU 110 includes a processor 215, a receiver 216, a transmitter 217 and an antenna 218. Processor 215 can be configured to adjust the length of the DRX cycle as needed. Receiver 216 and transmitter 217 are in communication with processor 215. Antenna 218 is in communication with receiver 216 and transmitter 217 to facilitate wireless data transmission and reception.
In addition to the components that can be found in a typical eNB 120, the eNB 120 includes a processor 225, a receiver 226, a transmitter 227 and an antenna 228. Processor 225 is configured to communicate with receiver 226 and transmitter 227 to adjust XRD cycles as needed. Receiver 226 and transmitter 227 are in communication with processor 225. Antenna 228 is in communication with receiver 226 and transmitter 227 to facilitate wireless data transmission and reception.
In order to increase the life of the battery, but without limiting the performance of the eNB and WTRU 110, transitions between DRX cycle length states can be defined implicitly and not explicitly. The implicit rules can be implemented at the radio resource control (RRC) and media access control (MAC) levels while the WTRU 110 is in an LTE_ATIVO DRX state.
About half of the WTRU 110 to eNB 120 interaction involves WTRU 110 requests and reports and eNB 110 responses while the WTRU 110 is in LTE_ACTIVE DRX mode. When WTRU 110 measures a specific scenario, measurement events can be reported for eNB 120 and eNB 120 can respond to the situation by ordering WTRU 110 to start a new service, mobility activity and the like. If the transmission or reception of the lower link command is limited by a relatively long DRX cycle length, the system performance of the WTRU 110 and eNB 120 during LTE_ACTIVE DRX mode may be impaired. Certain measurement events can, however, be good candidates for the anticipated network lower link commands.
Figure 3 shows a transition state machine from
Implicit XRD 300 as per an embodiment. The state machine 300, as well as transition mechanisms and associated parameter values, can be configured by eNB (120 in Figure 1). The state machine 300 can have a lifetime
4/14 also configured by eNB 120. Each state can be applied to the WTRU (110 in Figure 1) and eNB 120, so that the operation is consistent and synchronized. In each defined and configured DRX state, a different DRX cycle length is associated with the operations of the WTRU 110 and eNB 120.
The XRD cycle length transition rules can be based on experiences from the WTRU 110 and eNB 120. Given a certain period of time or a given set of measurement values, the WTRU 110 and eNB 120 can learn and predict patterns of traffic. These learned and predicted traffic patterns can be superimposed on a general model for a state machine, which results in the DRX 300 state machine for a WTRU 110 and eNB 120 system that allows the implicit transition operation and consistent DRX actions for WTRU 110 and eNB 120. eNB 120 can prescribe XRD states for service and mobility conditions with the potential for continuous improvement and traffic patterns learned through each invocation.
Figure 3 shows three defined DRX levels, 302, 304, 306 and an undefined DRX level 308. At DRX level 3 306, WTRU 110 operates on a normal DRX cycle. The actual length of the normal state can be defined by eNB 120. The DRX 2 304 level is a shorter cycle length than the DRX 3 306 level and is associated with more frequent activity than normal. The eNB 120 can also define the cycle length for the DRX level 2 304 and can also define a “resume” period. A resume period is a period of time when there are no new transmissions and, after which, the WTRU 110 can return to DRX 3 level operation 306, unless the WTRU 110 is ordered to do something else.
The DRX level 1 302 has the shortest DRX cycle length and can be used by a WTRU 110 or eNB 120 to handle predicted immediate lower link commands and when upper link traffic patterns are recognized by the WTRU 110 and the eNB 120 as requiring immediate lower link action, such as during a delivery event, for example.
An XRD level 308 can be configured with XRD cycles that are longer than that of the XRD level 3 306. The eNB 120 can redefine the XRD cycle lengths for each state at the end of the life cycle of the XRD configuration, but you can observe a DXD cycle length rule that lower level DXD states have shorter DXD lengths.
For a WTRU 110 at DRX level 3 306, a timer or counter trigger can be set to trigger a transition to DRX Level 2 304 if eNB 120 determines that WTRU 110 should periodically transition to a “busy” cycle for check lower link data.
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This can be considered a trigger based on a measurement event. Another trigger based on a measurement event can also be set to transition a WTRU 110 from DRX Level 3 306 to DRX Level 1 when a traffic volume event on a certain radio carrier is reported accumulating a greater amount of higher link data than a threshold and an anticipated Radio Carrier Reconfiguration (RB) command is imminent.
If the WTRU 110 in the DRX Level 1 state 302 receives an RB Reset command, the current DRX Level 1 state has ended. If the WTRU 110 in the DRX Level 1 302 state does not receive the advance command for the defined “resume period”, it can return to its original DRX state and resume the energy-saving DRX cycle. Regular timers and counters can be used during a DRX mode to trigger the implicit DRX cycle length transition. The selection between timers and counters and the values of timers or counters can be based on patterns and traffic patterns learned with respect to the mobility and / or service status of the WTRU 110 at a specific time, while the WTRU 110 is in DRX mode LTE_ACTIVE. Timer or counter triggers can be used as transition triggers to increase the length of the DRX cycle, as well as reduce the length of the DRX cycle as the status of the DRX changes.
The eNB 120 can configure DRX parameters based on an analysis and operation of network traffic monitoring. There are several methods of selecting parameter values, such as by including a set of standard system values that is defined for the operation of the implicit XRD transition. Optionally, the parameters can be published in system information transmissions or can be determined by the eNB 120 periodically and loaded into a specific WTRU 110 by signaling upper layers before a desired DRX mode period.
Transitions between different states can be signaled in an information element. An example of a signaling skeleton for an implicit XRD cycle transition is shown in Table 1. As shown in Table 1, the Implicit XRD Transition List is mandatory and limited to a value that indicates a maximum number of XRD states.
DR DRX cycle length IE is mandatory and is an integer. The triggering mechanisms are optional and can be a trigger for raising an XRD state level or moving an XRD state level down. The Lifetime IE configured by the Implicit DRX Transition is mandatory and defines the resumption period for abnormal states. The initial XRD status is optional and
6/14 can define the DRX status of the WTRU 110 at startup.
To assist in the easier transition of DRX cycle lengths and maintain synchronization of DRX cycle lengths between the WTRU 110 and eNB 120, the definition of DRX cycle length can be provided depending on the shorter DRX base number (L). Thus, the various XRD length values can be:
XRD cycle length = L x 2 Equation (1) where n = 0, 1, 2, ..., such that the resulting XRD cycle length does not exceed a maximum XRD cycle length. The shortest possible XRD cycle length occurs when n = 0 and is a fraction of a longest XRD cycle length.
The use of XRD cycle lengths that are multiple of each other reduces the likelihood that the XRD periods may be mismatched and provides an efficient mechanism for resynchronizing XRD periods between the WTRU 110 and the eNB 120. When XRD periods are defined as multiple of each other and when XRD periods are not coincident between WTRU 110 and eNB 120, each entity can determine the period of the other by increasing or decreasing the cycle length to determine the period being used by the other entity and resynchronize the entities accordingly.
Typically, a WTRU 110 at DRX Level 1 302 can count n times before transitioning back to the original DRX state. The standard can be provided as: n = (level X DRX cycle length or original DRX cycle length) / level 1 DRX cycle length; where the length of the k-level cycle is the length of the DRX cycle before the WTRU 110 enters the DRX Level 1 302. Alternatively, the network can configure n for the "resume method".
Table 1
<td>Name of group / information element</td><td>Need</td><td>Multi</td><td>Type and reference</td><td>description semantics</td>
<td>Implicit XRD transition list</td><td>MP</td><td>States of Max XRD (TBD)</td><td></td><td></td>
<td>> Length of XRD cycle</td><td>MP</td><td></td><td>Integer (TBD)</td><td></td>
<td>> Trigger for up 1</td><td>OP</td><td></td><td>Mechanism trigger</td><td>For the next XRD status</td>
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<td></td><td></td><td></td><td>A B C D</td><td>of level higher</td>
<td>> Trigger for top 2</td><td>OP</td><td></td><td>Mechanism trigger A B C D</td><td>Used by Level 1 to resumed</td>
<td>> Trigger for low 1</td><td>OP</td><td></td><td>Mechanism trigger A B C D</td><td>For the next XRD status lower level</td>
<td>> Trigger for low 2</td><td>OP</td><td></td><td>Mechanism trigger A B C D</td><td>To trigger Level 1</td>
<td>Period of life configured for implicit XRD transition</td><td>MP</td><td></td><td>TBD</td><td>Weather in seconds</td>
<td>XRD status initial</td><td>OP</td><td></td><td>TBD</td><td></td>
Transitions from one state to another can be initiated by a trigger. Table 2 shows an example of this transition trigger. Each of the lEs is mandatory, except for the resumption period. The Transition Trigger is mandatory and is specified by the network if specified as shown in Table 1. The SELECT mechanism allows the network to configure the WTRU 110 for implicit DRX operational triggers. The Timer Value trigger can be presented in absolute time units, LTE frames or transmission time intervals (TTIs) and is used to monitor or regulate ON and OFF periods for network signaling channel activities or channel activities of data for the
WTRU 110. Counter values can be an integer value used to check for occurrences of certain triggering events. The measurement event can enumerate the event that causes the trigger. The resume period can be a period of time provided in seconds, XRD cycles or some other value that indicates the total time that a WTRU 110 can remain in an elevated state without receiving a command to move back to the state normal.
Table 2
<td>Name of group / element of information</td><td>Need</td><td>Multi</td><td>Type and reference</td><td>Semantic description</td>
<td>Trigger</td><td>MP</td><td></td><td></td><td></td>
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<td>transition</td><td></td><td></td><td></td><td></td>
<td>SELECTION mechanism</td><td>MP</td><td></td><td></td><td></td>
<td>> Timer</td><td></td><td></td><td></td><td></td>
<td>»Value of timer</td><td>MP</td><td></td><td>Whole TBD</td><td></td>
<td>> Accountant</td><td></td><td></td><td></td><td></td>
<td>»Counts</td><td>MP</td><td></td><td>Whole TBD</td><td></td>
<td>> Event measurement</td><td></td><td></td><td></td><td></td>
<td>»Event ID measuring</td><td>MP</td><td></td><td>Listed (TBD)</td><td></td>
<td>> Period of resumed</td><td>CV- trigger up 2</td><td></td><td>TBD</td><td>It can be standard in level 1 state. The standard is that Level 1 cycles remain, so that the total length is equivalent to its XRD length of original DRX state.</td>
Figure 4 is a flow chart of implicit DRX transition signal 400 as an embodiment. A WTRU 402 can receive an RRC or IE 406 message from the E-UTRAN 404 that triggers the WTRU 402 to enter DRX mode. The WTRU 402 can enter DRX 408 mode at a standard level which can be a normal cycle length DRX level 3 (306 of Figure 3). The WTRU 402 and EUTRAN 404 enter DRX mode (408, 410, respectively). The WTRU 402 can receive another RRC or IE 412 message that triggers the WTRU 402 to enter a faster DRX cycle mode (DRX level 1 302 in Figure 3). The WTRU 402 and E-UTRAN 404 enter the DRX 1 level (414, 416, respectively).
A WTRU 418 timer, synchronized with an E-UTRAN timer (not shown), ends. Since the timers are synchronized, there is no need to end the timer. The end of timer 418 triggers WTRU 402 and EUTRAN 404 to return to the normal DRX level. The WTRU 402 returns 422 to the level of DRX 3 306 at the same time that the E-UTRAN 404 returns 424 to the level of
DRX 3 306.
Figure 5 is a flow chart of an implicit signaling method 500 as an embodiment. In step 502, the WTRU is in standby mode
9/14 normal operation, or Level 3. In step 504, the WTRU checks whether the timer has ended or if a trigger has been received that would force the WTRU to move to another DRX state. Otherwise, in step 506, the WTRU remains in the normal state. If the WTRU detects an end timer or trigger signal in step 504, in step 508, the WTRU determines whether to move to the DRX 1 level or the DRX 2 level. If the WTRU determines that the trigger is a level 2 trigger, in step 510, the WTRU moves to DRX Level 2. In step 512, the WTRU determines that the recovery period has ended and returns to the DRX level 3. If, however, the WTRU, in step 508, determines that it has received a level 1 trigger, in step 514, the WTRU moves to DRX level 1. In step 516, the WTRU determines whether it has received a Reconfiguration message Radio Carrier. Otherwise, the WTRU, in step 518, waits for the resumption period to end and returns to normal operation in step 522. If, however, in step 518, the WTRU receives a radio carrier reconfiguration message, in step 520 , the WTRU returns to normal DRX cycle operation.
Figure 6 is a flow diagram of an implicit XRD method 600 according to another embodiment. In step 602, the WTRU is in normal mode or DRX Level 3. In step 604, the WTRU conducts a traffic volume measurement. In step 606, the WTRU compares the measurement of traffic volume with a threshold. If the volume is below the limit, in step 608, the WTRU takes no action and remains in DRX Level 3 mode. If, in step 606, the WTRU determines that the traffic is above a threshold, however, in step 610, the WTRU changes its mode to a shorter DRX cycle. Based on traffic, the new DRX mode can be either DRX level 2 or DRX level 1. In step 612, the WTRU determines whether a command or message has been received. If so, in step 614, the WTRU returns to Level 3 mode. Otherwise, the WTRU, in step 616, waits for the resumption period before returning to level 3 mode in step 618. Optionally, the EUTRAN can determine the threshold level for reporting the volume of traffic measurement for triggering state transition of XRD. When the defined traffic volume measurement event occurs, the DRX state transition is triggered.
While in LTE_ATIVO DRX mode, a WTRU can perform traffic volume measurements for higher link traffic. E-UTRAN can configure the WTRU to report events about crossing limits. Based on the learned traffic patterns, E-UTRAN determines that there is a major change in volume, which may mean that a command to add RB, reconfigure RB or release RB is imminent. Traffic volume event reports can therefore be used as implicit DRX transition drivers. A large change in volume can be used, for example, to trigger
10/14 the WTRU in the shortest DRX cycle (DRX level 1, 302 of Figure 3, for example), in order to receive the network command. The network, upon receiving the predetermined measurement event, can determine the DRX status of the WTRU using implicit DRX transition rules and either send the advance command to the WTRU or wait for the WTRU to return to its previous DRX state with the specified resume period.
As a form of another example, the WTRU, while in LTE_ACTIVE mode, can use configured delivery measurements. Certain measurement event reports may indicate that a delivery command (HO) is imminent for delivery between inter-radio access technology (RAT), inter-frequency or intra-frequency. Depending on delivery measurement events, certain different measurement events can act as triggers for XRD transition control. Figure 7 is a flow diagram of an implicit XRD signaling method 700 as an alternative embodiment. In step 702, the WTRU is in the normal DRX 3 level. In step 704, the WTRU determines that a measurement of cells in service is below a threshold. The WTRU can then determine that a measurement between frequencies is high 706, which indicates that an intra-frequency neighbor is measuring as the best cell. Alternatively, the WTRU can determine that an inter-frequency band measures as the best 708. As another alternative, the WTRU can determine that a non-LTE system measures the best 710.
In step 712, the WTRU, due to the measurements, can anticipate a delivery command. In step 714, the WTRU reports the measurement event. It can invoke, in step 716, an implicit DRX transition trigger that causes the WTRU to enter a DRX level 1 state in order to receive the possible delivery command from the network. In step 718, the WTRU receives the delivery command. In step 720, the WTRU transitions back to its original DRX state.
Figure 8 is a flow chart of an implicit DRX cycle signaling method 800 as yet another embodiment. In step 802, the WTRU is in level 1 mode. In step 804, the WTRU starts monitoring a Level 1 / Level 2 control channel to intercept anticipated lower link commands. In step 806, the WTRU determines whether an early network command is received. If received, in step 808, the WTRU will follow the command to end DRX mode or receive instruction on the next DRX activity with the command. If the command is not received, in step 810, the WTRU transitions back to its original DRX state before entering the Level 1 state.
ACHIEVEMENTS
1. Method of controlling discontinuous reception (DRX) in a wireless transmission and reception unit (WTRU), in which the method comprises the definition of a series of
11/14 XRD levels, where each XRD level includes a corresponding XRD cycle length.
2. Method according to realization 1, which additionally comprises the transition between the levels of XRD based on a set of criteria.
3. Method according to realization 2, in which the set of criteria is previously defined.
4. Method according to realization 2, in which the set of criteria is based on events detected by the WTRU.
5. Method according to realization 2, in which the set of criteria is based on explicit signals received by the WTRU.
6. Method according to any of the realizations 2 or 3, in which the set of criteria is defined dynamically.
7. Method according to any of the realizations 2 to 6, in which the transition between the series of XRD levels is based on learned traffic patterns.
8. Method according to any of the realizations 2 to 6, in which the transition between the series of XRD levels is based on measured events.
9. Method according to any of the realizations 1 to 8, which additionally includes the definition of three levels of XRD.
10. Method according to any of the realizations 1 to 9, which additionally includes the definition of two levels of XRD.
11. Method according to any of embodiments 1 to 10, in which each corresponding XRD cycle length is a function of the length of a shorter XRD cycle.
12. Method according to realization 11, in which each corresponding XRD cycle length is below a maximum XRD cycle length,
13. Method according to any of the embodiments 1 to 12, in which each corresponding cycle length is a multiple of a base cycle length.
14. Method according to any of the realizations 1 to 13, which additionally includes the synchronization by the WTRU of the cycle length of DRX with an eNode B (eNB).
15. Method according to realization 14, which additionally includes the increase by
DRX cycle length WTRU upon loss of synchronization.
16. Method according to realization 15, which additionally includes the increase by
DRX cycle length WTRU until the WTRU is synchronized with the eNB.
17. Method according to realization 14, which additionally includes the reduction by
DRX cycle length WTRU upon loss of synchronization.
18. Method according to realization 17, which additionally includes the reduction by
DRX cycle length WTRU until the WTRU is synchronized with the eNB.
19. Method according to any of the achievements 1 to 18, which additionally comprises
12/14 the definition of a life period of XRD; and redefining the XRD cycle lengths of the XRD series of levels once per XRD life span.
20. Method according to any of the realizations 2 to 19, which additionally includes the periodic change of the DRX level of a WTRU to a DRX level that has a shorter DRX cycle length.
21. Method according to any of the realizations 2 to 20, which additionally includes the alteration of XRD levels based on a trigger.
22. Method according to realization 21, in which the trigger is the end of a timer.
23. Method according to realization 22, which additionally includes the reconfiguration of the timer through transmission activity.
24. Method according to realization 21, in which the trigger is a traffic event.
25. Method according to realization 24, in which the traffic event is a transmission.
26. Method according to realization 21, in which the trigger is a request to reconfigure the radio carrier.
27. Method according to any of the achievements 2 to 20, which additionally includes the periodic change of XRD levels based on learned traffic patterns.
28. Method according to any of the realizations 1 to 27, which additionally includes the measurement of the traffic volume in a WTRU; and adjusting the XRD cycle length of the XRD series of levels based on the volume of measured traffic.
29. Method according to realization 28, which additionally includes reducing the length of the XRD cycle when the traffic volume is above a previously determined limit; and extension of the XRD cycle length when the traffic volume is below a previously determined limit.
30. Method according to realization 27, which also includes the addition of a radio carrier when the volume of measured traffic exceeds a previously determined limit.
31. Method according to any of the realizations 1 to 30, which additionally includes the configuration of a recovery period timer by adjusting an XRD cycle length; and returning the DRX cycle length to an original value upon the end of the resume period timer.
32. Method according to any of the realizations 1 to 21, which additionally includes changing the level of XRD of a WTRU based on delivery measurements.
33. Method according to realization 32, which additionally includes changing the level of XRD of a WTRU when a measurement of cells in service is below a previously determined limit.
34. Method according to realization 33, which additionally includes changing the level of XRD of a WTRU when an intra-frequency neighbor cell measurement
13/14 is above a limit.
35. Method according to realization 34, which additionally includes the alteration of the XRD level of a WTRU when a measurement of neighboring inter-frequency cells is above a limit.
36. Method according to realization 34, which additionally includes changing the level of XRD of a WTRU when a measurement of inter-radio neighbor neighbors (RAT) is above a limit.
37. Method according to any of the realizations 1 to 36, which additionally includes the receipt of lower link commands in the WTRU; and changing the XRD level based on the type of lower link command.
38. Wireless transmission and reception unit (WTRU) comprising a processor, where the processor is configured to define a series of DRX levels, where each DRX level includes a corresponding DRX cycle length.
39. WTRU according to realization 38, in which the processor is additionally. configured to transition the WTRU between the DRX levels based on a set of criteria.
40. WTRU according to any of the realizations 38 or 39, in which the processor is additionally configured to periodically change the DRX level of the WTRU to a shorter DRX cycle length.
41. WTRU according to any of the realizations 38 to 40, in which the processor is additionally configured to carry out the transition of the WTRU between the DRX levels based on a trigger.
42. WTRU according to realization 41, in which the driver comprises a measurement event.
43. WTRU according to realization 41, in which the actuator comprises a timer.
44. WTRU according to realization 41, in which the driver comprises a counter.
45. WTRU according to realization 41, in which the actuator comprises a lower link command.
Although the characteristics and elements are described in the realizations in specific combinations, each characteristic or element can be used alone, without the other characteristics and elements or in various combinations with or without other characteristics and elements. The methods or flowcharts provided can be implemented in a computer program, software or firmware in tangible realization on a computer-readable storage medium for execution by a general purpose computer or processor. Examples of computer-readable storage media include read-only memory
14/14 (ROM), random access memory (RAM), registry, cache memory, semiconductor memory devices, magnetic media such as internal hard drives and removable discs, magneto-optical media and optical media such as CD-ROM discs and digital versatile discs (DVDs).
Suitable processors include, for example, a general purpose processor, special purpose processor, conventional processor, digital signal processor (DSP), a series of microprocessors, one or more microprocessors in association with a DSP core, controller, microcontroller, Application Specific Integrated Circuits (ASICs), Field Programmable Portal Sets (FPGAs), any other type of integrated circuit (IC) and / or state machine.
A processor in association with software can be used to implement a radio frequency transceiver for use in a wireless transmission and reception unit (WTRU), user equipment (UE), terminal, base station, radio network controller (RNC) ) or any host computer. The WTRU can be used in conjunction with modules, implemented in hardware and / or software, such as a camera, video camera module, videophone, headset, vibrating device, speaker, microphone, television transceiver, headset handsfree headset, keyboard, Bluetooth® module, frequency modulated radio (FM) unit, liquid crystal display (LCD) unit, organic light-emitting diode (OLED) unit, digital music device, media player, video game module, Internet browser and / or any wireless local area network (WLAN) module.
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Contents5
9 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9
90 members in 22 offices
Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 60887276 | United States of America | – | |
| 88727607 | United States of America | P | |
| 2008001344 | United States of America | W |
Members90
| Document | Office | Kind | |
|---|---|---|---|
| US2008181127A1 | United States of America | A1 | |
| TW200833139A | Taiwan Province of China | A | |
| AU2008210980A1 | Australia | A1 | |
| CA2677074A1 | Canada | A1 | |
| WO2008094681A1 | World Intellectual Property Organization (WIPO) | A1 | |
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| MX2009008111A | Mexico | A | |
| KR20090115180A | Republic of Korea | A | |
| EP2127420A1 | European Patent Office (EPO) | A1 | |
| KR20100017411A | Republic of Korea | A | |
| CN101682888A | China | A | |
| IL200180A0 | Israel | A0 | |
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| RU2009132517A | Russian Federation | A | |
| BRPI0806385A2This record | Brazil | A2 | |
| RU2433567C2 | Russian Federation | C2 | |
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| SG177986A1 | Singapore | A1 | |
| AU2012201632A1 | Australia | A1 | |
| US8238260B2 | United States of America | B2 | |
| US2012263088A1 | United States of America | A1 | |
| RU2011128099A | Russian Federation | A | |
| EP2568762A1 | European Patent Office (EPO) | A1 | |
| KR20130028786A | Republic of Korea | A | |
| EP2574136A1 | European Patent Office (EPO) | A1 | |
| IL200180A | Israel | A | |
| KR101293812B1 | Republic of Korea | B1 | |
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| CN101682888B | China | B | |
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| KR20140084331A | Republic of Korea | A | |
| MY151801A | Malaysia | A | |
| CN103974460A | China | A | |
| TW201442540A | Taiwan Province of China | A | |
| EP2574136B1 | European Patent Office (EPO) | B1 | |
| TWI471038B | Taiwan Province of China | B | |
| AU2012201632B2 | Australia | B2 | |
| KR101489310B1 | Republic of Korea | B1 | |
| TWI474745B | Taiwan Province of China | B | |
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| KR20150043532A | Republic of Korea | A | |
| US2015195782A1 | United States of America | A1 | |
| EP2127420B1 | European Patent Office (EPO) | B1 | |
| EP2568762B1 | European Patent Office (EPO) | B1 | |
| JP5775187B2 | Japan | B2 | |
| JP2015167424A | Japan | A | |
| ES2552505T3 | Spain | T3 | |
| KR101573999B1 | Republic of Korea | B1 | |
| EP2958395A1 | European Patent Office (EPO) | A1 | |
| KR101615837B1 | Republic of Korea | B1 | |
| KR101615868B1 | Republic of Korea | B1 | |
| JP5993989B2 | Japan | B2 | |
| JP2016192820A | Japan | A | |
| TWI558247B | Taiwan Province of China | B | |
| HK1219379A | Hong Kong, China | A | |
| HK1219379A1 | Hong Kong, China | A1 | |
| US9749951B2 | United States of America | B2 | |
| US2017318533A1 | United States of America | A1 | |
| EP2958395B1 | European Patent Office (EPO) | B1 | |
| DK2958395T3 | Denmark | T3 | |
| ES2661673T3 | Spain | T3 | |
| EP3310115A1 | European Patent Office (EPO) | A1 | |
| JP6314186B2 | Japan | B2 | |
| CN103974460B | China | B | |
| NO2958395T3 | Norway | T3 | |
| PL2958395T3 | Poland | T3 | |
| US10237820B2 | United States of America | B2 | |
| US2019174408A1 | United States of America | A1 | |
| BRPI0806385B1 | Brazil | B1 | |
| EP3310115B1 | European Patent Office (EPO) | B1 | |
| EP3840523A1 | European Patent Office (EPO) | A1 | |
| US11172441B2 | United States of America | B2 | |
| US2022007284A1 | United States of America | A1 | |
| US2022007285A1 | United States of America | A1 | |
| EP4236602A1 | European Patent Office (EPO) | A1 | |
| EP3840523B1 | European Patent Office (EPO) | B1 | |
| FI3840523T3 | Finland | T3 | |
| ES2966379T3 | Spain | T3 | |
| US11991627B2 | United States of America | B2 | |
| US12004080B2 | United States of America | B2 | |
| US2024276369A1 | United States of America | A1 | |
| EP4236602B1 | European Patent Office (EPO) | B1 | |
| FI4236602T3 | Finland | T3 | |
| ES3010726T3 | Spain | T3 | |
| EP4543102A2 | European Patent Office (EPO) | A2 | |
| EP4543102A3 | European Patent Office (EPO) | A3 |
6 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Patent or certificate of addition of invention granted [chapter 16.1 patent gazette]GrantedPRAZO DE VALIDADE: 10 (DEZ) ANOS CONTADOS A PARTIR DE 20/10/2020, OBSERVADAS AS CONDICOES LEGAIS.B16A | B16A | |
| Decision: intention to grant [chapter 9.1 patent gazette]B09A | B09A | |
| Technical and formal requirements: other requirements [chapter 6.7 patent gazette]B06G | B06G | |
| Preliminary requirement: requests with searches performed by other patent offices: procedure suspended [chapter 6.21 patent gazette]B06U | B06U | |
| Objections, documents and/or translations needed after an examination request according [chapter 6.6 patent gazette]B06F | B06F | |
| Requested change of headquarter approvedB25G | B25G |
Numbers
- Publication
- PI0806385
- Application
- 8063850
Titles2
- Portuguese
- CONTROLE DE AJUSTE DO COMPRIMENTO DO CICLO DRX IMPLÍCITO EM MODO LTE_ATIVO
- English
- IMPLIED DRX CYCLE LENGTH ADJUSTMENT CONTROL IN LTE_ACTIVE MODE
Classification
- CPC, 7
- H04W76/28
- H04W52/0212
- H04W52/0216
- Y02D30/70
- H04W52/0229
- H04W52/0235
- H04W52/288
- IPC, 1
- H04W52 02