US9271240B2 - Combined open loop/closed loop method for controlling uplink power of a mobile station - Google Patents
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- US9271240B2 US9271240B2 US14/669,805 US201514669805A US9271240B2 US 9271240 B2 US9271240 B2 US 9271240B2 US 201514669805 A US201514669805 A US 201514669805A US 9271240 B2 US9271240 B2 US 9271240B2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/08—Closed loop power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/005—Control of transmission; Equalising
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1812—Hybrid protocols; Hybrid automatic repeat request [HARQ]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/10—Open loop power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/14—Separate analysis of uplink or downlink
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/14—Separate analysis of uplink or downlink
- H04W52/146—Uplink power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/18—TPC being performed according to specific parameters
- H04W52/24—TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
- H04W52/242—TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account path loss
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/20—Manipulation of established connections
- H04W76/28—Discontinuous transmission [DTX]; Discontinuous reception [DRX]
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Abstract
Description
PSDTx=PSDopen+α·Δclosed+ΔMCS; Equation (1)
where PSDopen represents pathloss based open loop PSD in dBm; Δclosed is a power correction factor which is determined based on the closed loop component, to be disclosed in detail hereinafter; ΔMCS is a power offset per granted MCS; and α is a weighting factor to enable (α=1) or disable (α=0) the closed loop component, depending on the availability of the downlink (DL) control channel, which embeds closed loop PC (correction) command signaling (explicitly or implicitly). The weighting factor may be determined by WTRU 20 via autonomously detecting the presence of the closed loop PC command signaling. Alternatively,
where PSD′Tx(n−1) represents the (n−1)th Tx PSD without the power offset per granted MCS, which is given by PSD′Tx(n−1)=PSDTx(n−1)−ΔMCS(n−1).
PSDopen=PSDtarget +
where
-
- PSDtarget is a target PSD received at serving
eNodeB 30, which is preferably a WTRU (or a sub-group of WTRUs)-specific parameter. The target PSD may be adjusted through an outer loop mechanism according to Quality of Service (QoS) (e.g., target block error rate (BLER)), and also a function of the pathloss measurement, to compensate for a fraction of the pathloss. The signaling of the target PSD target is done via higher layer signaling fromNode B 30 to WTRU 20 upon adjustment on a slow rate basis; and -
L is the filtered pathloss in dB, including shadowing, from servingeNodeB 30 to WTRU 20, whereWTRU 20 first measures the instantaneous pathloss based on the DL reference signal (RS) whose transmit power is known.WTRU 20 then applies a filtering method to the pathloss. For example, the filtered pathloss at the k-th instance,L k, can be calculated as
L k =ρ·L k−1+(1−ρ)·L k; Equation (4) - where
L k−1 and Lk represent the filtered pathloss at the (k−1)-th instance and instantaneous pathloss at the k-th instance; ρ is a filter coefficient, 0≦ρ≦1, which is generally determined byWTRU 20, depending on pathloss variation, fast fading rate, the time of UL transmission, and others, for example. The filtering for pathloss can be done in PHY layer and/orL 2/3 layer.
- PSDtarget is a target PSD received at serving
Δclosed =f(PC correction command(s)); Equation (5)
where Δclosed may take on a set of multiple step levels, for example, {+/−4, +/−1 dB} using 3 bits of the command.
Δclosed=└ESINRest−SINRtarget┘; Equation (6)
where ESINRest and SINRtarget denotes the effective SINR (ESINR) estimate at the receiver and target SINR, respectively, of the power controlled channel(s) in dB. [x] denotes a correction value in the correction set, which is nearest to x. The observed samples at the eNodeB for the ESINR estimation include (some of or all) SC-FDMA symbols of the UL power controlled channel(s), which have been received since the last correction command signaling in DL.
PSDTx(n)=PSDTx(n−1)+(PSDopen(n)−PSDopen(n−1))+ΔMCS(n) Equation (7)
where n is the Tx PSD setting time before resuming the UL transmission and (n−1) is the PSD setting time before the DTX. An example of the timing of this case is shown in
PSDTx(data)=PSDTx(control)+Δcontrol(data,control) Equation (8)
where PSDTx(control) is the most recent PSD (or PSD averaged over the recent updates) for the UL control channel and Δcontrol(data,control) represent the control channel power offset relative to the Tx PSD for data.
PSDTx=PSDopen +α·f(UL grant assignment,SINRT)+ΔMCS(dBm); Equation (9)
where PSDopen, α, and, ΔMCS, respectively, are the same as defined above. f (UL grant assignment, SINRT) is a correction factor in dB which replaces the power correction factor, Δclosed, in Equation (1). SINRT is the target SINR in dB. The grant based correction factor, f (UL grant assignment, SINRT), can be expressed by the following:
f(UL grant assignment,SINTT)=SINRT −E{SINRest(UL grant assignment)}; Equation (10)
where SINRest(UL grant assignment) represents the eNodeB received SINR estimate which
E{SINRest(grantk)}=ρ·E{SINRest(grantk−1)}+(1−ρ)·E{SINRest(grantk)} Equation (11)
where grantk represents the k-th received UL grant assignment and ρ is the averaging filter coefficient, 0≦ρ≦1. The estimation of SINRest (UL grant assignment) at the WTRU can be based on a grant (MCS, TBS) mapping table, which is configurable by the network through higher layer signaling on a semi-static basis.
where P0 is a cell-specific parameter (in dBm) including UL interference level etc., which is signaled by the eNodeB via higher layer signaling.
-
- SINRTarget is a WTRU (or a subset of WTRUs) specific parameter (in dB), allowing the eNodeB to set classes of service for the UE (or subset of UEs). SINRTarget may be a function of pathloss to the serving cell and some neighboring cells. SINRTarget can be configured by the serving eNodeB on a semi-static basis and then signaled to the UE (or subset of UEs) via higher layer signaling;
- PL is the downlink pathloss (in dB);
- λ is a cell specific pathloss compensation factor for fractional power control where 0<α<=1. α can be configured by the eNodeB on a semi-static basis and signaled via higher layer signaling;
- Δclosed is a power correction factor in dB which is determined based on a closed loop mechanism;
- ∝ is a weighting factor to enable (∝=1) or disable (∝=0) the closed loop component, depending on the availability of the DL control channel carrying the closed loop correction command. The weighting factor is determined autonomously by the WTRU via detecting the presence of the PC correction command. It is assumed that the WTRU is informed via higher layer signaling from the eNodeB with regard to where and when the command signaling exists. For instance, in the initial UL transmission, since there may be no correct command available from the eNodeB, the WTRU sets ∝=0;
- ΔMCS is a power offset per granted MCS. Typically, the power offsets for the individual granted MCS are known by both the WTRU and the eNodeB.
where PSD′Tx(n−1) represents the (n−1)th Tx PSD without the power offset per granted MCS, which is given by PSD′Tx(n−1)=PSDTx(n−1)−ΔMCS(n−1).
P Tx=min{P max(10·log10(M)+PSDTx)}(dBm); Equation (14)
where M is the number of assigned RBs.
PSDTx actual =P Tx−10·log10(M)(dBm) Equation (15)
PSDopen =P 0+SINRTarget +λ·PL(dBm) Equation (16)
where
-
- The target SINR, SINRTarget, may be adjusted through an outer loop mechanism at serving
eNodeB 30 according to Quality of Service (QoS) (like target BLER) and be also a function of the pathloss measurements to the serving cell and neighboring cells; and - PL is the filtered pathloss in dB, including shadowing, from the serving eNodeB to the WTRU. The WTRU continuously (or periodically) measures the instantaneous pathloss based on the DL RS whose transmit power is known at the WTRU. A filtering method is then applied to the pathloss measurements, such as
PL k =ρ·PL k−1+(1−ρ)·PL k Equation (17)
where PLk and PLk−1 represent the filtered pathloss at the k-th instance and (k−1)-th instant, respectively. Lk is the instantaneous pathloss at the k-th instant. ρ is a filter coefficient, 0≦ρ≦1, which is generally determined byWTRU 20, depending on pathloss variation, fast fading rate, the time of UL transmission, etc. Alternatively, a moving averaging method may be considered for the pathloss filtering.
- The target SINR, SINRTarget, may be adjusted through an outer loop mechanism at serving
Δclosed=└ESINRest−SINRtarget┘ Equation (18)
where ESINRest and SINRtarget denotes the effective SINR (ESINR) estimate at the receiver and target SINR, respectively, of the power controlled channel(s) in dB. [x] denotes a correction value in the correction set, which is nearest to x.
PSDTx(n)=PSD′Tx(n−1)+(PSDopen(n)−PSDopen(n−1))+ΔMCS(n); Equation (19)
where n is the Tx PSD setting time before resuming the UL transmission and (n−1) is the PSD setting time before the DTX. An example of this case is shown in
PSDTx(PUSCH)=PSDTx(PUCCH)+Δcontrol(PUSCH,PUCCH); Equation (20)
where PSDTx(PUCCH) is the most recent PSD (or PSD averaged over the recent updates) for the UL control channel (PUCCH) and Δcontrol(PUSCH,PUSCH) represent the control channel (PUCCH) power offset relative to the Tx PSD for PUSCH.
PSDTx(pilot)=PSDTx(data)+Δpilot(data,pilot) Equation (21)
where Δpilot(data, pilot) represent the pilot power offset which may be a WTRU-specific parameter configured by the eNodeB on a semi-static basis.
E(PSDTx(data))=E(PSDTx(control))+Δcontrol(data,control) Equation (22)
where
-
- E(PSDTx(data)) represents the average PSD for data channel in dBm;
- E(PSDTx(control)) represents the average PSD for control channel in dBm; and
- Δcontrol(data, control) is a power offset between the data channel and the control channel.
PSDTx=SINRT +PL+IN 0 +K+Δ(IoT S)−10·log 10(BW RU ·N RU); Equation (23)
where SINRT is the target SINR in dB at serving
where δ is a predefined system parameter, for example, δ=−1 or −2 dB. With the use of Δ(IoTS), inter-cell interference in neighboring cells can be mitigated.
PSDTx=SINRT +PL+IN 0 +K+Δ(IoT S)+α·f(CQI,SINRT)−10·log 10(BW RU ·N RU) Equation (24)
where f (CQI, SINRT) is a correction factor based on the UL CQI, and the corresponding target SINR where both the CQI and the target SINR are signaled from serving
f(CQI,SINTT)=SINRT −E{SINRest(CQI)}(dB); Equation (25)
where SINRest(CQI) represents the eNodeB received SINR estimate, which the WTRU derives from the UL CQI feedback. E{SINRest(CQI)} denotes the estimated SINR average over time such as by the following:
E{SINRest(CQIk)}=ρ·E{SINRest(CQIk−1)}+(1−ρ)·E{SINRest(CQIk)}; Equation (26)
where CQIk represents the k-th received CQI and ρ is the averaging filter coefficient, 0≦ρ≦1.
Claims (26)
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US14/669,805 US9271240B2 (en) | 2007-03-07 | 2015-03-26 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US15/004,244 US9572112B2 (en) | 2007-03-07 | 2016-01-22 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US15/415,289 US10091740B2 (en) | 2007-03-07 | 2017-01-25 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US16/142,659 US10375650B2 (en) | 2007-03-07 | 2018-09-26 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
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US12/044,569 US8509836B2 (en) | 2007-03-07 | 2008-03-07 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US13/936,846 US8812048B2 (en) | 2007-03-07 | 2013-07-08 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US14/329,165 US9026169B2 (en) | 2007-03-07 | 2014-07-11 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US14/669,805 US9271240B2 (en) | 2007-03-07 | 2015-03-26 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
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US14/329,165 Active US9026169B2 (en) | 2007-03-07 | 2014-07-11 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US14/669,805 Active US9271240B2 (en) | 2007-03-07 | 2015-03-26 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
US15/004,244 Expired - Fee Related US9572112B2 (en) | 2007-03-07 | 2016-01-22 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
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US16/142,659 Active US10375650B2 (en) | 2007-03-07 | 2018-09-26 | Combined open loop/closed loop method for controlling uplink power of a mobile station |
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EP (3) | EP2464176B1 (en) |
JP (4) | JP5280377B2 (en) |
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