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USRE48260E1 - Automatic retransmission in communications systems - Google Patents

Automatic retransmission in communications systems
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USRE48260E1
USRE48260E1US16/109,090US201816109090AUSRE48260EUS RE48260 E1USRE48260 E1US RE48260E1US 201816109090 AUS201816109090 AUS 201816109090AUS RE48260 EUSRE48260 EUS RE48260E
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retransmission
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Choo Eng Yap
Lee Ying Loh
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INVT SPE LLC
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Abstract

Automatic retransmission in communications systems. In one embodiment, a portion of data is identified to be retransmitted based on feedback information indicating a negative acknowledgement (NACK) during a cyclic redundancy check (CRC) on a previous transmission of the portion of data. A retransmission mode is selected for the portion of data, from at least a first mode that retransmits the portion of data on at least a first transmitter antenna while transmitting new data on at least a second transmitter antenna, based on first desired transmission characteristics; and a second mode that retransmits the portion of data simultaneously on at least the first and second transmitter antennas, based on second desired transmission characteristics.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation of U.S. patent application Ser. No. 11/575,015, filed Mar. 30, 2007, and entitled “AUTOMATIC RETRANSMISSION REQUEST CONTROL SYSTEM AND RETRANSMISSION METHOD IN MIMO-OFDM SYSTEM”, which patent claims the benefit and priority of PCT/JP04/13308, filed Sep. 13, 2004, and entitled “AUTOMATIC RETRANSMISSION REQUEST CONTROL SYSTEM AND RETRANSMISSION METHOD IN MIMO-OFDM SYSTEM”, and which published as WO 2006/030478 on Mar. 23, 2006. The entire contents of each of the foregoing are expressly incorporated by reference in their entirety herein.
TECHNICAL FIELD
The present invention relates to an automatic repeat request (ARQ) control system and a retransmission method in a multiple-input multiple-output (MIMO) communication system that employs orthogonal frequency division multiplexing (OFDM).
BACKGROUND ART
Simultaneous transmission of multiple data streams is carried out in a MIMO communication system that employs multiple (NT) transmission antennas and multiple (NR) receiving antennas. Depending on the usage, MIMO system contributes to improvement of performance by spatial diversity or contributes to increase of system capacity by spatial multiplexing. The presence of random fading and multipath delay spread in a wireless communication system enables such improvements.
The multiple communication channels present between the transmission antennas and receiving antennas usually change with time and have different link conditions. MIMO systems having feedback provide the transmitter with the channel state information (CSI), allowing the use of methods such as link adaptation and water filling to provide a higher level of performance.
A well-known technique to increase data rate by spatial multiplexing is discussed in Non-PatentDocument 1.
Spatial diversity is implemented by space-time block coding, which provides the full advantage of diversity. The space-time block code is disclosed, for example, in Non-PatentDocument 2.
MIMO techniques were first designed assuming a narrowband wireless system, namely a flat fading channel. Therefore, it is difficult to achieve high effects in frequency selective channels. OFDM is used in conjunction with MIMO systems to overcome the frequency selective channels proposed by the wireless environment.
OFDM is capable of converting the frequency selective channel into a set of independent parallel frequency-flat subchannels using the inverse fast Fourier transform (IFFT). The frequencies of these subchannels are orthogonal and mutually overlapping, thereby improving spectral efficiency and minimizing inter-carrier interference. Attaching a cyclic prefix to the OFDM symbol further reduces the multipath effects.
With future technology shifting to accommodate a high speed service with increased IP dependency, it is necessary to meet requirements such as spectral efficiencies, system user capacity, end-to-end latency, and quality-of-service (QoS) management. While MIMO-OFDM systems meet some of these criteria, ARQ techniques also play an important role in ensuring fast and reliable delivery.
ARQ is a technique for transmitting a retransmission request for received packet data upon detecting an error in the received packet data. With the transfer of a large volume of high-speed data, more efficient ARQ techniques are typically used to reduce the number of retransmission requests.
It is obviously shown that Hybrid ARQ (HARQ) techniques include chase combining and incremental redundancy and improve efficiency by reducing ARQ overheads. HARQ techniques are primarily designed assuming a single-antenna transmitter and receiver.
  • Non-Patent Document 1: V-BLAST: an architecture for realizing very high data rates over the rich-scattering wireless channel” by P W Wolniansky et al in the published papers of the 1998 URSI International Symposium on Signals, Systems and Electronics, Pisa, Italy, Sep. 29 to Oct. 2, 1998.
  • Non-Patent Document 2: Tarokh, V., Jafarkhani, H., Calderbank, A. R.: Space-Time Block Codes from Orthogonal Designs, IEEE Transactions on information theory, Vol. 45, pp. 1456-1467, July 1999, and in WO 99/15871.
DISCLOSURE OF INVENTIONProblem to be Solved by the Invention
However, no technique has been disclosed where HARQ is applied to MIMO-OFDM systems.
In the light of this fact, the present invention has been made, and it is therefore an object of the present invention to provide an automatic repeat request control system and a retransmission method capable of controlling the retransmission methods according to various system requests when HARQ is applied to MIMO-OFDM systems. Further, it is an object of the present invention to achieve improvement of data throughput performance by improving accuracy in the retransmission of signals and reducing the number of retransmission requests.
Means for Solving the Problem
The automatic repeat request control system and retransmission method in a MIMO-OFDM system according to the present invention comprise the following configurations and steps.
An ARQ controlling section module at the transmitter determines whether or not retransmission of signals is required. The module also controls the types of usage schemes when retransmission is required. The ARQ module makes decisions based on ARQ feedback information from the receiver. The system requirements such as whether or not the system allows an error and whether or not the system allows delay also play an important role in the decision process.
In the system of the present invention, the receiver carries out cyclic redundancy checks (CRC) for antenna chains and the transmitter determines whether or not data retransmission is required for transmission antennas by feedback information of acknowledgement (ACK) or negative acknowledgment (NACK) based on a result of CRC from the receiver.
When retransmission is required, the retransmission is carried out according to one of the four retransmission schemes the present invention proposes. An optimal retransmission scheme is selected, based on different system requirements criteria such as latency and performance level.
In the present invention, antennas that receive ACKs are considered to be more reliable than antennas that receive NACKs. Data transmitted by reliable antennas has a higher probability of recovering data correctly.
In one embodiment of the present invention, data for retransmission is transmitted using the same antennas as previous transmission while new data is transmitted using antennas without retransmission requests. This method provides an advantage of reducing complexity accompanying with data retransmission and improving efficiency.
In another embodiment of the present invention, data for retransmission is transmitted using the reliable antennas (antennas without retransmission requests), and new data is transmitted using other antennas. This method provides an advantage of reducing the number of retransmissions required for a certain error packet as well as a drawback of increased complexity.
In another embodiment of the present invention, data retransmission using STBC that is the spatial diversity technique is carried out using reliable antennas. By this method, it is possible to respond to a request even in a system that does not allow error required for accurate retransmission scheme having less delay.
In a further embodiment of the present invention, STBC is also used for data packet retransmission, but retransmission is performed using not only reliable antennas, but also all available antennas. This method is used as the most accurate retransmission scheme and is appropriate for a system that does not allow an error, but allows delay.
A variation of the embodiments using STBC for retransmission uses a higher order of modulation for improved retransmission efficiency.
Variations of the above embodiments include the use of Incremental Redundancy (IR) type of ARQ and retransmission using various sets of interleaving patterns to improve system performance.
A further variation of the above embodiments includes link adaptation using long-term ARQ statistical information. In this case, it is not necessary to perform feedback of channel status information (CSI) and complicated processing.
Effect of the Invention
According to the present invention, it is possible to control the retransmission method according to various system requests when HARQ is applied to MIMO-OFDM systems. Moreover, according to the present invention, it is possible to achieve improvement of data throughput performance by improving accuracy in the retransmission of signals and reducing the number of retransmission requests.
BRIEF DESCRIPTION OF DRAWINGS
FIG. 1 is a block diagram of the transmitter for the MIMO-OFDM communication system;
FIG. 2 is a block diagram of the receiver for the MIMO-OFDM communication system;
FIG. 3 is a diagram of the functional blocks of the transmission and receiving ARQ controlling section of the present invention;
FIG. 4 shows an example of scenario for the retransmission setting of data packets by a retransmission method of the present invention;
FIG. 5 shows an example of scenario for the retransmission setting of data packets by a retransmission method of the present invention;
FIG. 6 shows an example of scenario for the retransmission setting of data packets by a retransmission method of the present invention; and
FIG. 7 shows an example of scenario for the retransmission setting of data packets by a retransmission method of the present invention.
BEST MODE FOR CARRYING OUT THE INVENTION
Now, embodiments of the present invention will be described in detail with reference to the drawings.
FIG. 1 is a diagram oftransmitter100 for a multiple-input multiple-output communication system that utilizes orthogonal frequency division multiplexing (namely, a MIMO-OFDM system).FIG. 2 is a diagram ofreceiver200 of the same system. Although both figures show the system employing two transmission antennas and two receiving antennas, the present invention can be extended to a system for employing multiple (NT) transmission antennas and multiple (NR) receiving antennas.
Attransmitter100, data processing is performed for each individual antenna chain. Different streams of independent data are transmitted from the individual transmission antennas. The input data is first attached the cyclic redundancy check (CRC) code atCRC attaching section102. Then, channel coding such as convolutional coding and turbo coding is carried out atcoding section104. The coded data will then be interleaved byinterleaver106 to reduce burst errors in the data. M-ary modulation constellation symbol mapping is executed on the interleaved data atmapping section108. A pilot signal is inserted in the mapped signal atpilot inserting section110. Pilot signal insertion makes channel evaluation at the receiver straightforward.
Before carrying out OFDM modulation, the serial data stream is converted into parallel data streams by S/P converting section112.IFFT section114 causes the generated subcarriers mutually orthogonal. After the parallel data is converted into serial data by P/S converting section116, a cyclic prefix for reducing multipath effects is attached to the OFDM symbol byCP attaching section118. Prior to transmission, the digital signal is converted to analog signal by D/A converting section120. After the various processes in each transmitter chain, signals become available for transmission through the allocated transmittingantennas122.
Atreceiver200, the reverse processes such as conversion from analog to digital (A/D converting section204), removal of cyclic prefix (CP removing section206) and serial parallel conversion (S/P converting section208) fast Fourier transform (FFT section210) and parallel serial conversion (P/S converting section210) are carried out for the received signals from receivingantennas202. The received signals are comprised of overlapping signals from a plurality of transmission antennas, and it is therefore necessary to separate the signals into the individual streams. In this case, V-BLAST decoder214, which utilizes zero forcing (ZF) or minimum mean square error (MMSE) techniques, is used to perform this function.
After carrying out demapping (demapping section216), deinterleaving (deinterleaver218) and decoding (decoding section220), cyclic redundancy check (CRC processing section222) is then performed on each packet to validate the data. If it is determined that the checked packet does not include error, acknowledgment (ACK) is transmitted to the transmitter and the transmitter does not retransmit the packet. If there is an error, a negative acknowledgment (NACK) is transmitted totransmitter100 for retransmission request.
FIG. 3 is a diagram of the functional blocks of the transmission and receiving ARQ controlling section for the present invention.
As illustrated inFIG. 3, each antenna chain will have its dedicatedCRC attaching section302. Therefore, atARQ controlling section316 of the receiver, every data packet on each individual receiving antenna chain will undergo CRC for error detection inCRC processing section318. The receiver will then feedback ARQ information related to each of the data streams from ACK/NACK output section320 via fastARQ feedback channel322 to a plurality of ACK/NACK receiving sections308 atARQ controlling section306 of the transmitter. This configuration provides an advantage of not requiring data retransmission from all antennas when an error is detected. Only the corrupted data streams require a retransmission. The probability of all data streams having errors is low, and this transmission method leads to an improvement in the data throughput.
Based on the ARQ information obtained at ACK/NACK receiving section308, error datastream detecting section310 specifies data streams that require retransmission. Furthermore, error datastream detecting section310 stores the long-term statistics of ARQ performed, namely the average number of retransmissions occurred at the specific transmission antenna. This information is utilized in the process of M-ary modulation and coding atAMC section304. For example, if the number of retransmissions as the long-term ARQ statistics for a transmission antenna is smaller than that for other transmission antenna, a higher order of modulation is set at the transmission antenna. To the contrary, for a transmission antenna having a greater number of retransmissions compared to other transmission antenna, a lower order of modulation is set.
If retransmission is required, the retransmissionmode selecting section312 will execute decision process of selecting the appropriate scheme to use for data retransmission. Transmission buffers314 is updated accordingly.
FIG. 4 toFIG. 7 show the examples of scenarios for the four different retransmission methods proposed in the present invention. The methods will be described below in detail. Each method is suitable for a different set of system requests. Therefore, the method to be executed is a method that is most likely to optimize system performance according to the user requests.
FIG. 4 andFIG. 5 depict examples of the previous transmission status and the current retransmission arrangement for methods I and II. Both methods retransmit data only for the corrupted streams while simultaneously transmit new data for antennas which are not used for retransmission purposes. These methods provide advantage of transmitting new data continuously even when retransmission is occurred. Therefore, a consistent level of data rate is maintained without wasting the request for accuracy.
In one embodiment of the present invention, as shown inFIG. 4,packets1 to4 are transmitted on each of the transmission antennas. Based on the ACK and NACK information from the receiver,packets2 and4 are found to have an error. For retransmission using method I, data to be retransmitted, namelypackets2 and4, are transmitted using the same antennas as before. New data is transmitted on antennas without retransmission requests.
In the case of retransmission using method II, retransmission data is transmitted using not the same antenna, but the antenna where the error did not occur at the previous transmission. By transmitting retransmission data through antennas that are considered to be more reliable, retransmission data is likely to have no error, thereby increasing the data accuracy. The assumption of an antenna being reliable if an ACK is received for that particular antenna is applied to a stable environment where fading is slow or static.
The above two methods have a difference in antenna allocation. In method I where allocation is not performed, data processing kept to a minimum, thereby reducing complexity. Therefore, the processing delay in this case will be short. For method II, attention has to be put to both transmission and receiving buffers due to the changed data setting. The transmitter needs to inform the receiver of the difference in arrangement between previous and current transmissions so that the buffers can be properly updated. This notification from the transmitter to the receiver is regulated by an upper layer. This method II aims at improving the accuracy of retransmission to reduce the number of retransmissions requested for a data frame.
Methods I and II is useful to systems which allow error. For such systems, transmission of a large volume of data in a short time is required while the accuracy follows next. Some examples of such applications include video streaming and facsimile. Compared to method I, method II is suitable for systems which do not allow delay.
On the other hand, when the system does not allow error, methods III or IV is more suitable. In this case, obtaining a right accuracy is given the highest priority. These applications include e-commerce, web browsing, email access and other interactive services such as instant messaging.
FIG. 6 andFIG. 7 show examples of the previous transmission status and the current retransmission arrangement for methods III and IV. Data is retransmitted using space-time block coding (STBC) that is the spatial diversity technique for higher accuracy of retransmission data. In both methods, new data transmission does not occur simultaneously with the data retransmission. If retransmission is requested, antennas will be used for this purpose only.
In another embodiment of the present invention, as shown inFIG. 4C, retransmission of data packets using method III is carried out on those reliable antennas (antennas where ACKs are received in the previous transmission). Transmissions do not occur for the rest of the antennas.
In a further embodiment of the present invention using method IV, data to be retransmitted is transmitted using STBC on all available antennas. Therefore, the probability of error at the receiver is greatly reduced.
For both methods III and IV, in the example where two data packets need to be retransmitted,packet 2 is retransmitted at the first slot whilepacket 4 is retransmitted at the next slot. One way of improving the efficiency is to use a higher order of modulation so that the retransmission data rate can be improved. More retransmission data can be transmitted at the same instance if this solution is employed.
Unlike method IV, method III aims at reducing the time for processing at the receiver. Usage of fewer transmission antennas makes the decoding for STBC straight forward and fast. Furthermore, by retransmitting on reliable antennas, method III attempts to achieve a balance between complexity and accuracy. Although method IV is more complicated and takes more time, a higher accuracy of retransmission is obtained compared to method III. Therefore, method III is suitable for system which allows not error, but delay.
One aspect of this present invention is that selection of methods may vary according to the performed retransmissions. This is because the system requests may change after a certain number of retransmissions of the same data packet. For instance, system which allows error selects method I or II for retransmission. However, after a couple of retransmissions, the same data packet is still in error. Hence, to improve the accuracy of that packet, retransmissionmode selecting section312 may decide on a more accurate method III or IV. Instructions to switch retransmission methods are regulated by the upper layer.
A variation on the above embodiments is to employ ARQ using incremental redundancy instead of simple chase combining. Incremental redundancy information is transmitted in a retransmission packet for further improvement of performance during decoding process.
As another variation on the above embodiments, an interleaving pattern may be employed at retransmission. OFDM sub-carriers may experience different fading. When channel state information (CSI) is present, bit loading may be performed. For the present invention where CSI is not obtained at the transmitter, equal bit loading is employed. To utilize the sub-carrier fading differences, interleaving pattern is varied for each retransmission to balance the effects of fading.
In a further variation on the above embodiments, adaptive modulation, coding and power control may be employed concurrently with the present invention. Information obtained from long-term statistics of ARQ is helpful in identifying those reliable antennas. Those antennas having a low average rate of retransmissions is considered to be reliable. A higher order of modulation or a higher rate of coding can be employed on such antennas, whereas higher power can be applied to the other antennas to make signal strength higher. Using ARQ statistics as control information instead of the conventional use of CSI for link adaptation is useful for a method that is not complicated and does not take much time in determining the differences in link quality.
The above description is considered to be the preferred embodiment of the present invention, but the present invention is not limited to the disclosed embodiments, and may be implemented in various forms and embodiments and that its scope should be determined by reference to the claims hereinafter provided and their equivalents.
INDUSTRIAL APPLICABILITY
The present invention is suitable for using a multiple-input multiple-output (MIMO) communication system employing orthogonal frequency division multiplexing (OFDM).

Claims (28)

The invention claimed is:
1. A method in a multiple-input multiple-output (MIMO) communications system that includes a transmitter having a plurality of transmitter antennas and a receiver having a plurality of receiver antennas, for retransmitting data, the method comprising:
identifying that a portion of data is to be retransmitted based on a feedback information indicating that the portion of data received a negative acknowledgement (NACK) during a cyclic redundancy check (CRC) on a previous transmission of the portion of data;
determining an error allowance of an application type associated with the portion of data;
selecting a retransmission mode for retransmitting the portion of data based on the error allowance of the application type associated with the portion of data, including:
based at least on determining that the application type allows allowing for error by prioritizing volume of data transfer over data transfer accuracy, selecting a first mode of retransmission that retransmits the portion of data on at least a first transmitter antenna while transmitting new data on at least a second transmitter antenna; or
based at least on determining that the application type does not allow allowing for error by prioritizing data transfer accuracy over volume of data transfer, selecting a second mode of retransmission that retransmits the portion of data simultaneously on at least the first and second transmitter antennas; and
retransmitting the portion of data using the selected mode of retransmission.
2. The method ofclaim 1, wherein the second mode of retransmission retransmits the portion of data simultaneously on at least the first and second transmitter antennas using space-time block coding (STBC).
3. The method ofclaim 1, wherein the first mode of retransmission retransmits the portion of data on the same transmitter antenna on which it was previously transmitted.
4. The method ofclaim 1, wherein the first mode of retransmission retransmits the portion of data on a different transmitter antenna than the one on which it was previously transmitted.
5. The method ofclaim 1, wherein the second mode of retransmission retransmits the portion of data only on one or more transmitter antennas that transmitted data that received an acknowledgement (ACK) during a previous transmission.
6. The method ofclaim 1, wherein the second mode of retransmission retransmits the portion of data both on one or more transmitter antennas that transmitted data that received an acknowledgement (ACK) during a previous transmission and one or more transmitter antennas that transmitted data that received an a NACK during a previous transmission.
7. The method ofclaim 1, further comprising storing long-term retransmissions statistics for each transmitter antenna.
8. The method ofclaim 1, wherein the feedback information is determined based on an incremental redundancy method.
9. The method ofclaim 1, wherein selecting the retransmission mode for retransmitting the portion of data also includes selecting the retransmission mode based at least on one or more of latency, performance level, or quality of services associated with the portion of data.
10. The method ofclaim 1, wherein the application type is determined to allow for error when the portion of data is associated with video streaming or facsimile, and the application type is determined to not allow for error when the portion of data is associated with web browsing, email access, or instant messaging.
11. The method ofclaim 1, wherein the application type is selected from the group consisting of video, facsimile, web browsing, email, and instant messaging.
12. A transmitter in a multiple-input multiple-output (MIMO) communication system, comprising:
an identifying section ARQ controller that: (i) identifies a portion of data that is to be retransmitted based on a feedback information from a receiver indicating that the portion of data received a negative acknowledgement (NACK) during a cyclic redundancy check (CRC) on a previous transmission of the portion of data; and
a selecting section that(ii) selects a retransmission mode for the portion of data based at least on an error allowance of the application type associated with the portion of data, wherein the selecting section ARQ controller selects from among at least:
a first mode of retransmission that retransmits the portion of data on at least a first transmitter antenna while transmitting new data on at least a second transmitter antenna, when the application type allows for error by prioritizing volume of data transfer over data transfer accuracy; and
a second mode of retransmission that retransmits the portion of data simultaneously on at least the first and second transmitter antennas, when the application type does not allow for error by prioritizing data transfer accuracy over volume of data transfer; and
a transmitting section set of antennas that retransmits the portion of data using the selected mode of retransmission.
13. The transmitter ofclaim 12, wherein the second mode of retransmission retransmits the portion of data simultaneously on at least the first and second transmitter antennas using space-time block coding (STBC).
14. The transmitter ofclaim 12, wherein the first mode of retransmission retransmits the portion of data on the same transmitter antenna on which it was previously transmitted.
15. The transmitter ofclaim 12, wherein the first mode of retransmission retransmits the portion of data on a different transmitter antenna than the one on which it was previously transmitted.
16. The transmitter ofclaim 12, wherein the second mode of retransmission retransmits the portion of data only on one or more transmitter antennas that transmitted data that received an acknowledgement (ACK) during a previous transmission.
17. The transmitter ofclaim 12, wherein the second mode of retransmission retransmits the portion of data both on one or more transmitter antennas that transmitted data that received an acknowledgement (ACK) during a previous transmission and one or more transmitter antennas that transmitted data that received an a NACK during a previous transmission.
18. The transmitter ofclaim 12, wherein the transmitter retransmits according to the feedback information that is determined based on an incremental redundancy method.
19. The transmitter ofclaim 12, wherein the selecting section ARQ controller also selects the retransmission mode based at least on one or more of latency, performance level, or quality of services associated with the portion of data.
20. The transmitter ofclaim 12, wherein the application type is determined to allow for error based at least on the portion of data being associated with video streaming or facsimile, and wherein the application type is determined to not allow for error based at least on the portion of data being associated with web browsing, email access, or instant messaging.
21. A computer program product comprising one or more non-transitory computer-readable media having stored thereon computer-executable instructions that, when executed by one or more processors of a multiple-input multiple-output (MIMO) communication system, cause a transmitter of the MIMO communication system to re-transmit data, including:
identifying that a portion of data is to be retransmitted based on a feedback information from a receiver indicating that the portion of data received a negative acknowledgement (NACK) during a cyclic redundancy check (CRC) on a previous transmission of the portion of data;
determining an error allowance of an application type associated with the portion of data;
selecting a retransmission mode for retransmitting the portion of data based on the error allowance of the application type associated with the portion of data, including:
based at least on determining that the application type allows allowing for error by prioritizing volume of data transfer over data transfer accuracy, selecting a first mode of retransmission that retransmits the portion of data on at least a first transmitter antenna while transmitting new data on at least a second transmitter antenna; or
based at least on determining that the application type does not allow allowing for error by prioritizing data transfer accuracy over volume of data transfer, selecting a second mode of retransmission that retransmits the portion of data simultaneously on at least the first and second transmitter antennas; and
retransmitting the portion of data using the selected mode of retransmission.
22. The computer program product ofclaim 21, wherein the first mode retransmits the portion of data on the same antenna on which it was previously transmitted.
23. The computer program product ofclaim 21, wherein the first mode retransmits the portion of data on a different antenna than the one on which it was previously transmitted.
24. The computer program product ofclaim 21, wherein the second mode retransmits the portion of data only on one or more antennas that transmitted data that received an ACK during a previous transmission.
25. The computer program product ofclaim 21, wherein the second mode retransmits the portion of data both on one or more antennas that transmitted data that received an ACK during a previous transmission and one or more antennas that transmitted data that received an a NACK during a previous transmission.
26. The computer program product ofclaim 21, wherein selecting the retransmission mode for retransmitting the portion of data also includes selecting the retransmission mode based at least on one or more of latency, performance level, or quality of services associated with the portion of data.
27. The computer program product ofclaim 21, wherein the application type is determined to allow for error when the portion of data is associated with video streaming or facsimile, and the application type is determined to not allow for error when the portion of data is associated with web browsing, email access, or instant messaging.
28. The computer program product ofclaim 21, wherein the application type is selected from the group consisting of video, facsimile, web browsing, email, and instant messaging.
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Application NumberPriority DateFiling DateTitle
US11/575,015US8775890B2 (en)2004-09-132004-09-13Automatic retransmission request control system and retransmission method in MIMO-OFDM system
WOPCT/JP04/013302004-09-13
PCT/JP2004/013308WO2006030478A1 (en)2004-09-132004-09-13Automatic retransmission request control system and retransmission method in mimo-ofdm system
US14/321,185US9425924B2 (en)2004-09-132014-07-01Automatic retransmission in communications systems
US16/109,090USRE48260E1 (en)2004-09-132018-08-22Automatic retransmission in communications systems

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US11/575,015Active2027-09-13US8775890B2 (en)2004-09-132004-09-13Automatic retransmission request control system and retransmission method in MIMO-OFDM system
US13/478,996AbandonedUS20120230257A1 (en)2004-09-132012-05-23Retransmission method and transmitter
US13/532,576AbandonedUS20120263250A1 (en)2004-09-132012-06-25Retransmission method, transmitter, and communication system
US13/554,748Expired - LifetimeUS9015546B2 (en)2004-09-132012-07-20Automatic retransmission request control system and retransmission method in mimo-OFDM system
US14/321,185CeasedUS9425924B2 (en)2004-09-132014-07-01Automatic retransmission in communications systems
US14/321,117Expired - Fee RelatedUS9397794B2 (en)2004-09-132014-07-01Automatic retransmission in communications systems
US14/691,345Expired - Fee RelatedUS9680611B2 (en)2004-09-132015-04-20Automatic retransmission in communications systems
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US13/478,996AbandonedUS20120230257A1 (en)2004-09-132012-05-23Retransmission method and transmitter
US13/532,576AbandonedUS20120263250A1 (en)2004-09-132012-06-25Retransmission method, transmitter, and communication system
US13/554,748Expired - LifetimeUS9015546B2 (en)2004-09-132012-07-20Automatic retransmission request control system and retransmission method in mimo-OFDM system
US14/321,185CeasedUS9425924B2 (en)2004-09-132014-07-01Automatic retransmission in communications systems
US14/321,117Expired - Fee RelatedUS9397794B2 (en)2004-09-132014-07-01Automatic retransmission in communications systems
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Families Citing this family (69)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US8775890B2 (en)2004-09-132014-07-08Inventergy, Inc.Automatic retransmission request control system and retransmission method in MIMO-OFDM system
KR101160765B1 (en)2004-10-122012-06-28어웨어, 인크.Method of allocating memory in transceiver
US9385843B2 (en)*2004-12-222016-07-05Qualcomm IncorporatedMethod and apparatus for using multiple modulation schemes for a single packet
WO2006071049A1 (en)*2004-12-272006-07-06Lg Electronics Inc.Supporting hybrid automatic retransmission request in orthogonal frequency division multiplexing access radio access system
US7725796B2 (en)*2004-12-272010-05-25Lg Electronics Inc.Allocating data bursts and supporting hybrid auto retransmission request in orthogonal frequency division multiplexing access radio access system
CN1838583A (en)*2005-03-252006-09-27松下电器产业株式会社 Method and device for performing data retransmission in multiple-input multiple-output communication system
US8842693B2 (en)2005-05-312014-09-23Qualcomm IncorporatedRank step-down for MIMO SCW design employing HARQ
US8432794B2 (en)2005-12-292013-04-30Interdigital Technology CorporationMethod and apparatus for selecting multiple transport formats and transmitting multiple transport blocks simultaneously with multiple H-ARQ processes
WO2007088579A1 (en)*2006-01-312007-08-09Mitsubishi Denki Kabushiki KaishaRadio transmission device, radio reception device, and radio communication system
AU2007212605B2 (en)2006-02-032010-06-17Interdigital Technology CorporationMethod and system for supporting multiple hybrid automatic repeat request processes per transmission time interval
EP2173071B1 (en)2006-04-122013-06-26TQ Delta, LLCPacket retransmission and memory sharing
DE602007011424D1 (en)*2006-05-102011-02-03Koninkl Philips Electronics Nv WIRELESS COMMUNICATION SYSTEM AND DEVICE WITH HARQ AND OPERATING PROCESS FOR THE SYSTEM
EP2022180B1 (en)*2006-05-292016-02-03Telefonaktiebolaget LM Ericsson (publ)Channel quality prediction in hsdpa systems
US8219869B2 (en)2006-06-222012-07-10Lg Electronics Inc.Method of retransmitting data in a mobile communication system
JP4904963B2 (en)*2006-07-212012-03-28富士通株式会社 Communication system, communication method, transmitter and receiver
WO2008125923A1 (en)*2006-08-212008-10-23Koninklijke Philips Electronics N.V.Indicating retransmission processes in multi-beam systems
CN100576836C (en)*2006-09-152009-12-30上海贝尔阿尔卡特股份有限公司 Method and device for subcarrier mapping of signals in multiple-input multiple-output wireless network
US7661038B2 (en)2006-10-092010-02-09Intel CorporationLink adaptation for retransmission error-control technique transmissions
EP2849380B1 (en)2006-10-312019-04-24Telefonaktiebolaget LM Ericsson (publ)Telecommunication system and error control in such system
KR100906332B1 (en)*2006-11-032009-07-06삼성전자주식회사 Apparatus and method for cooperative combined automatic retransmission scheme in broadband wireless communication system using repeater
JP5485870B2 (en)*2007-04-302014-05-07テレフオンアクチーボラゲット エル エム エリクソン(パブル) Methods and configurations for communication networks
WO2009002244A1 (en)2007-06-272008-12-31Telefonaktiebolaget Lm Ericsson (Publ)Method and arrangement for improved radio resource allocation in a mimo system
US8290088B2 (en)*2007-08-072012-10-16Research In Motion LimitedDetecting the number of transmit antennas in a base station
KR20090022048A (en)*2007-08-292009-03-04삼성전자주식회사 Hybrid automatic retransmission apparatus and method for packet-based fixed resource allocation in wireless mobile communication system
CN101330360B (en)*2008-01-082012-06-13上海交通大学Method and device for transmitting mixed automatic retransmission request of multi-antenna communication system
KR101132085B1 (en)2008-01-282012-04-02엘지전자 주식회사Method for transmitting ACK/NACK signal in wireless communication system
WO2009098981A1 (en)*2008-02-042009-08-13Sharp Kabushiki KaishaTransmitter, receiver, base station device, mobile station device, and wireless communication system
FR2927749B1 (en)*2008-02-142010-12-17Canon Kk METHOD AND DEVICE FOR TRANSMITTING DATA, IN PARTICULAR VIDEO.
US8625685B2 (en)*2008-02-212014-01-07Qualcomm IncorporatedSignal quality estimation for OFDMA systems
KR101399783B1 (en)*2008-03-202014-05-27삼성전자주식회사Method and apparutus for retrnansmission mode selection in a mimo communication system
KR20100019947A (en)2008-08-112010-02-19엘지전자 주식회사Method of transmitting information in wireless communication system
KR101603338B1 (en)2008-08-112016-03-15엘지전자 주식회사Method and apparatus of transmitting information in wireless communication system
KR101571566B1 (en)*2008-08-112015-11-25엘지전자 주식회사 Method for transmitting a control signal in a wireless communication system
KR101597573B1 (en)*2008-08-112016-02-25엘지전자 주식회사 Uplink transmission method of control information
KR101646249B1 (en)*2008-08-112016-08-16엘지전자 주식회사Method and apparatus of transmitting information in wireless communication system
CN101667891B (en)*2008-09-042013-11-06上海华为技术有限公司Data transmitting method, data transmitting device and data communication system
CN103326835B (en)*2008-10-282017-08-11富士通株式会社Wireless communication system and its method, wireless terminal device, radio base station apparatus
MX2011004367A (en)2008-10-282011-05-23Fujitsu LtdWireless base station device using cooperative harq communication method, wireless terminal device, wireless communication system, and wireless communication method.
KR101243508B1 (en)2008-11-142013-03-20엘지전자 주식회사Method and apparatus for signal transmission in wireless communication system
EP3113382B1 (en)2008-11-142017-08-30Lg Electronics Inc.Method and apparatus for information transmission in wireless communication system
KR20100091876A (en)2009-02-112010-08-19엘지전자 주식회사Ue behavior for multi-antenna transmission
DE102009008535B4 (en)*2009-02-112011-06-01Siemens Aktiengesellschaft Method and system for the secure transmission of a message
WO2010099653A1 (en)*2009-03-032010-09-10深圳华为通信技术有限公司Signal encoding method and apparatus, and combination feedback signal encoding method
WO2010107232A2 (en)*2009-03-162010-09-23Lg Electronics Inc.Method of retransmission for supporting mimo in synchronous harq
TWI399054B (en)*2009-04-102013-06-11Ind Tech Res Inst Adaptive automatic retransmission request device and method for multi-output multi-input system
CN101873208B (en)*2009-04-272013-06-12财团法人工业技术研究院 Adaptive Automatic Repeat Request Device and Method for Multiple-Output Multiple-Input System
CN101924619B (en)*2009-06-162015-02-25中兴通讯股份有限公司Mixed automatic retransmission method and device in multi-antenna LTE system
US8386876B2 (en)*2009-08-142013-02-26Sharp Laboratories Of America, Inc.Transmission of different redundancy versions on different degrees of freedom
KR20110019287A (en)*2009-08-192011-02-25주식회사 팬택 Information transmission method and transmission device in wireless communication system
KR101872179B1 (en)*2009-09-022018-06-27애플 인크.Transmission of symbols in a mimo environment using alamouti based codes
KR101104607B1 (en)2010-09-172012-01-12중앙대학교 산학협력단 Transmission and reception method and apparatus using multi-antenna multi-hybrid automatic repeat request scheme
US9516609B2 (en)2010-11-082016-12-06Qualcomm IncorporatedSystem and method for uplink multiple input multiple output transmission
US8842542B2 (en)2012-02-082014-09-23Qualcomm IncorporatedMethod and apparatus for scheduling resources for uplink MIMO communication
US9007888B2 (en)2010-11-082015-04-14Qualcomm IncorporatedSystem and method for uplink multiple input multiple output transmission
US9084207B2 (en)2010-11-082015-07-14Qualcomm IncorporatedSystem and method for uplink multiple input multiple output transmission
US9380490B2 (en)2010-11-082016-06-28Qualcomm IncorporatedSystem and method for uplink multiple input multiple output transmission
US8953713B2 (en)2010-11-082015-02-10Qualcomm IncorporatedSystem and method for uplink multiple input multiple output transmission
KR20120112981A (en)*2011-04-042012-10-12삼성전기주식회사Receiving node and method of reducing retransmission of data frame
FR2977101A1 (en)*2011-06-242012-12-28France Telecom RETRANSMISSION OF DATA LOST BETWEEN A TRANSMITTER AND A RECEIVER
CN102882662B (en)*2011-07-152014-12-10华为技术有限公司 Link Adaptive Feedback Method and Device
CN102571307A (en)*2012-01-162012-07-11中兴通讯股份有限公司Adaptive hybrid automatic repeat request (HARQ) method and device for multi-user multi-input multi-output (MIMO) system
WO2013170161A1 (en)*2012-05-112013-11-14Qualcomm IncorporatedSystem and method for uplink multiple input multiple output transmission
JP6038326B2 (en)2013-07-302016-12-07三菱電機株式会社 Data processing device, data communication device, communication system, data processing method, data communication method, and program
JP2016093296A (en)*2014-11-132016-05-26日本光電工業株式会社 Biological signal recording system
CN109287139B (en)*2017-05-222021-08-31北京小米移动软件有限公司 Data transmission method and device
CN109951263B (en)*2017-12-212022-09-13山东协力合智通信科技有限公司Overlapping multiplexing system, processing method and system thereof, storage medium and processor
JP7208465B2 (en)*2018-07-122023-01-19日本電信電話株式会社 Wireless communication system, control method, control device and control program
US12261747B2 (en)2019-09-202025-03-25Sonatus, Inc.System, method, and apparatus to execute vehicle communications using a zonal architecture
US20240333789A1 (en)*2023-03-302024-10-03Amazon Technologies, Inc.Seamless automatic repeat request (arq) content streaming

Citations (35)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5574979A (en)1994-06-031996-11-12Norand CorporationPeriodic interference avoidance in a wireless radio frequency communication system
US5844918A (en)1995-11-281998-12-01Sanyo Electric Co., Ltd.Digital transmission/receiving method, digital communications method, and data receiving apparatus
JPH1155206A (en)1997-08-071999-02-26Nippon Telegr & Teleph Corp <Ntt> Error compensation method and multi-carrier transmission device
WO1999015871A1 (en)1997-09-191999-04-01Stratec Control Systems GmbhProcess and device for checking the tightness of containers
JP2002228669A (en)2001-01-312002-08-14Shimadzu Corp Liquid transfer device and reaction vessel
WO2002087108A1 (en)2001-04-252002-10-31Koninklijke Philips Electronics N.V.Radio communication system
US20030067890A1 (en)2001-10-102003-04-10Sandesh GoelSystem and method for providing automatic re-transmission of wirelessly transmitted information
US20030097629A1 (en)2001-11-022003-05-22Samsung Electronics Co., Ltd.Transceiver apparatus and method for efficient retransmission of high-speed packet data
US20030123389A1 (en)2001-12-312003-07-03Russell Patrick GeneApparatus and method for controlling data transmission
WO2003085875A1 (en)2002-04-052003-10-16Nortel Networks LimitedMethod and communication device using adaptive space-time encoding, modulation and error coding
US6636568B2 (en)2002-03-012003-10-21QualcommData transmission with non-uniform distribution of data rates for a multiple-input multiple-output (MIMO) system
WO2003086537A1 (en)2002-04-172003-10-23Koninklijke Philips Electronics N.V.Defibrillation system and method designed for rapid attachment
US20040057530A1 (en)2002-09-202004-03-25Nortel Networks LimitedIncremental redundancy with space-time codes
EP1404048A1 (en)2002-09-302004-03-31Lucent Technologies Inc.Signalling mechanisms in MIMO HARQ schemes for wireless communication systems
US20040199846A1 (en)2002-04-122004-10-07Atsushi MatsumotoMulticarrier communication apparatus and multicarrier communication method
US20040213184A1 (en)2003-04-252004-10-28Hu Teck H.Method and system for using hybrid ARQ in communication systems that use multiple input multiple output antenna systems
US20040264593A1 (en)*2003-04-292004-12-30Dong-Hee ShimSignal transmitting method in mobile communication system
US20050002421A1 (en)*2003-04-302005-01-06Sony CorporationRadio communication system, transmitting apparatus, receiving apparatus, processing method and program
US20050031050A1 (en)*2003-05-292005-02-10Noh-Sun KimApparatus and method for transmitting/receiving data using a multiple antenna diversity scheme in a mobile communication system
US20050141407A1 (en)2003-12-302005-06-30Sumeet SandhuMultiple-antenna communication systems and methods for communicating in wireless local area networks that include single-antenna communication devices
US6920150B1 (en)*1997-09-302005-07-19Lucent Technologies Inc.Adaptive communications transcoding and error control
US20050251721A1 (en)*2004-05-042005-11-10Telefonaktiebolaget Lm Ericsson(Publ)Incremental redundancy operation in a wireless communication network
US20050288062A1 (en)*2004-06-232005-12-29Hammerschmidt Joachim SMethod and apparatus for selecting a transmission mode based upon packet size in a multiple antenna communication system
EP1615365A1 (en)2003-06-302006-01-11Fujitsu LimitedMulti-input multi-output transmission system
US7002900B2 (en)2002-10-252006-02-21Qualcomm IncorporatedTransmit diversity processing for a multi-antenna communication system
US7065144B2 (en)2003-08-272006-06-20Qualcomm IncorporatedFrequency-independent spatial processing for wideband MISO and MIMO systems
US20070086327A1 (en)1999-02-082007-04-19Langley John BFrequency offset differential pulse position modulation
US7248841B2 (en)2000-06-132007-07-24Agee Brian GMethod and apparatus for optimization of wireless multipoint electromagnetic communication networks
US20090031184A1 (en)2002-08-282009-01-29Onggosanusi Eko NMIMO Hybrid-ARQ Using Basis Hopping
US20090106619A1 (en)2001-09-132009-04-23Onggosanusi Eko NMIMO Hybrid-ARQ Using Basis Hopping
US20090258609A1 (en)2002-09-132009-10-15Panasonic CorporationRadio transmission apparatus and radio transmission method
US7668125B2 (en)2003-09-092010-02-23Qualcomm IncorporatedIncremental redundancy transmission for multiple parallel channels in a MIMO communication system
US20120230257A1 (en)2004-09-132012-09-13Panasonic CorporationRetransmission method and transmitter
US20120263256A1 (en)2006-02-152012-10-18Khurram WaheedLinearization of a transmit amplifier
US8451922B2 (en)*2002-11-272013-05-28Lg Electronics Inc.Signal processing method in MIMO system and apparatus thereof

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
JP4018989B2 (en)2003-01-202007-12-05松下電器産業株式会社 Transmitting apparatus and transmitting method

Patent Citations (52)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5574979A (en)1994-06-031996-11-12Norand CorporationPeriodic interference avoidance in a wireless radio frequency communication system
US5844918A (en)1995-11-281998-12-01Sanyo Electric Co., Ltd.Digital transmission/receiving method, digital communications method, and data receiving apparatus
JPH1155206A (en)1997-08-071999-02-26Nippon Telegr & Teleph Corp <Ntt> Error compensation method and multi-carrier transmission device
WO1999015871A1 (en)1997-09-191999-04-01Stratec Control Systems GmbhProcess and device for checking the tightness of containers
US6920150B1 (en)*1997-09-302005-07-19Lucent Technologies Inc.Adaptive communications transcoding and error control
US20070086327A1 (en)1999-02-082007-04-19Langley John BFrequency offset differential pulse position modulation
US7248841B2 (en)2000-06-132007-07-24Agee Brian GMethod and apparatus for optimization of wireless multipoint electromagnetic communication networks
JP2002228669A (en)2001-01-312002-08-14Shimadzu Corp Liquid transfer device and reaction vessel
US20020114740A1 (en)2001-01-312002-08-22Shimadzu CorporationLiquid transfer apparatus and reaction vessel
WO2002087108A1 (en)2001-04-252002-10-31Koninklijke Philips Electronics N.V.Radio communication system
US20090106619A1 (en)2001-09-132009-04-23Onggosanusi Eko NMIMO Hybrid-ARQ Using Basis Hopping
US20030067890A1 (en)2001-10-102003-04-10Sandesh GoelSystem and method for providing automatic re-transmission of wirelessly transmitted information
US20030097629A1 (en)2001-11-022003-05-22Samsung Electronics Co., Ltd.Transceiver apparatus and method for efficient retransmission of high-speed packet data
US20030123389A1 (en)2001-12-312003-07-03Russell Patrick GeneApparatus and method for controlling data transmission
US6636568B2 (en)2002-03-012003-10-21QualcommData transmission with non-uniform distribution of data rates for a multiple-input multiple-output (MIMO) system
WO2003085875A1 (en)2002-04-052003-10-16Nortel Networks LimitedMethod and communication device using adaptive space-time encoding, modulation and error coding
US20040199846A1 (en)2002-04-122004-10-07Atsushi MatsumotoMulticarrier communication apparatus and multicarrier communication method
WO2003086537A1 (en)2002-04-172003-10-23Koninklijke Philips Electronics N.V.Defibrillation system and method designed for rapid attachment
US20090031184A1 (en)2002-08-282009-01-29Onggosanusi Eko NMIMO Hybrid-ARQ Using Basis Hopping
US20090258609A1 (en)2002-09-132009-10-15Panasonic CorporationRadio transmission apparatus and radio transmission method
US20040057530A1 (en)2002-09-202004-03-25Nortel Networks LimitedIncremental redundancy with space-time codes
US7397864B2 (en)2002-09-202008-07-08Nortel Networks LimitedIncremental redundancy with space-time codes
WO2004028063A1 (en)2002-09-202004-04-01Nortel Networks LimitedSpace-time codes with incremental redundancy
JP2004135304A (en)2002-09-302004-04-30Lucent Technol IncSignal and control mechanism in mimoharq scheme for radio communication system
EP1404048B1 (en)2002-09-302016-09-28Alcatel LucentSignalling mechanisms in MIMO HARQ schemes for wireless communication systems
EP1404048A1 (en)2002-09-302004-03-31Lucent Technologies Inc.Signalling mechanisms in MIMO HARQ schemes for wireless communication systems
US20040062221A1 (en)2002-09-302004-04-01Nandu GopalakrishnanSignaling and control mechanisms in MIMO harq schemes for wireless communication systems
US7391755B2 (en)*2002-09-302008-06-24Lucent Technologies Inc.Signaling and control mechanisms in MIMO harq schemes for wireless communication systems
US7002900B2 (en)2002-10-252006-02-21Qualcomm IncorporatedTransmit diversity processing for a multi-antenna communication system
US8451922B2 (en)*2002-11-272013-05-28Lg Electronics Inc.Signal processing method in MIMO system and apparatus thereof
US20040213184A1 (en)2003-04-252004-10-28Hu Teck H.Method and system for using hybrid ARQ in communication systems that use multiple input multiple output antenna systems
US20040264593A1 (en)*2003-04-292004-12-30Dong-Hee ShimSignal transmitting method in mobile communication system
US7515649B2 (en)*2003-04-292009-04-07Lg Electronics Inc.Signal transmitting method in mobile communication system
US20050002421A1 (en)*2003-04-302005-01-06Sony CorporationRadio communication system, transmitting apparatus, receiving apparatus, processing method and program
US7453948B2 (en)2003-05-292008-11-18Samsung Electronics Co., Ltd.Apparatus and method for transmitting/receiving data using a multiple antenna diversity scheme in a mobile communication system
US20050031050A1 (en)*2003-05-292005-02-10Noh-Sun KimApparatus and method for transmitting/receiving data using a multiple antenna diversity scheme in a mobile communication system
EP1615365A1 (en)2003-06-302006-01-11Fujitsu LimitedMulti-input multi-output transmission system
US7065144B2 (en)2003-08-272006-06-20Qualcomm IncorporatedFrequency-independent spatial processing for wideband MISO and MIMO systems
US7668125B2 (en)2003-09-092010-02-23Qualcomm IncorporatedIncremental redundancy transmission for multiple parallel channels in a MIMO communication system
US20050141407A1 (en)2003-12-302005-06-30Sumeet SandhuMultiple-antenna communication systems and methods for communicating in wireless local area networks that include single-antenna communication devices
US20090034644A1 (en)2003-12-302009-02-05Sumeet SandhuMimo communication system and method for communicating with single antenna and multi-antenna mobile stations
US7450489B2 (en)*2003-12-302008-11-11Intel CorporationMultiple-antenna communication systems and methods for communicating in wireless local area networks that include single-antenna communication devices
US20050251721A1 (en)*2004-05-042005-11-10Telefonaktiebolaget Lm Ericsson(Publ)Incremental redundancy operation in a wireless communication network
US20050288062A1 (en)*2004-06-232005-12-29Hammerschmidt Joachim SMethod and apparatus for selecting a transmission mode based upon packet size in a multiple antenna communication system
US9015546B2 (en)2004-09-132015-04-21Inventergy, Inc.Automatic retransmission request control system and retransmission method in mimo-OFDM system
US20120263250A1 (en)2004-09-132012-10-18Panasonic CorporationRetransmission method, transmitter, and communication system
US8775890B2 (en)2004-09-132014-07-08Inventergy, Inc.Automatic retransmission request control system and retransmission method in MIMO-OFDM system
US9397794B2 (en)2004-09-132016-07-19Inventergy, Inc.Automatic retransmission in communications systems
US9425924B2 (en)2004-09-132016-08-23Inventergy, Inc.Automatic retransmission in communications systems
US20120230257A1 (en)2004-09-132012-09-13Panasonic CorporationRetransmission method and transmitter
US9680611B2 (en)2004-09-132017-06-13Inventergy, Inc.Automatic retransmission in communications systems
US20120263256A1 (en)2006-02-152012-10-18Khurram WaheedLinearization of a transmit amplifier

Non-Patent Citations (33)

* Cited by examiner, † Cited by third party
Title
A. Maaref, et al., "A Cross-layer Design for MIMO Rayleigh Fading Channels", Electrical and Computer Engineering, 2004. Canadian Conference, May 2004, pp. 2247-2250, Fig. 1.
A. Milani, et al., "On the use of per-antenna rate and power adaptation in V-BLAST systems for protocol performance improvement", XP-010608807, IEEE Vehicular Technology Conference Proceedings, Sep. 2002, pp. 2126-2130.
Chinese Office Action dated Aug. 14, 2009.
European Search Report dated Feb. 9, 2011.
Extended European Search report dated Oct. 1, 2012.
H. Zeng et al., "Multiple ARQ Processes for MIMO Systems," XP-002347853, EURASIP Journal on Applied Signal Processing, May 2004, pp. 772-782.
H. Zheng, et al., "Multiple ARQ Processes for MIMO Systems", PIMRC, 2002 Nen 9 Gatsu 15 Nichi-18 Nichi, Fig. 1.
MILANI A., TRALLI V., ZORZI M.: "On the use of per-antenna rate and power adaptation in V-BLAST systems for protocol performance improvement", VTC 2002-FALL. 2002 IEEE 56TH. VEHICULAR TECHNOLOGY CONFERENCE PROCEEDINGS. VANCOUVER, CANADA, SEPT. 24 - 28, 2002., NEW YORK, NY : IEEE., US, vol. 4, 24 September 2002 (2002-09-24) - 28 September 2002 (2002-09-28), US, pages 2126 - 2130, XP010608807, ISBN: 978-0-7803-7467-6, DOI: 10.1109/VETECF.2002.1040594
N. Shacham, et al., "A Selective-Repeat-ARQ Protocol for Parallel Channels and Its Resequencing Analysis", XP-000297814, IEEE Transactions on Communications, Apr. 1992, pp. 773-782.
NACHUM SHACHAM, BYUNG CHEOL SHIN: "A SELECTIVE-REPEAT-ARQ PROTOCOL FOR PARALLEL CHANNELS AND ITS RESEQUENCING ANALYSIS.", IEEE TRANSACTIONS ON COMMUNICATIONS., IEEE SERVICE CENTER, PISCATAWAY, NJ. USA., vol. 40., no. 04., 1 April 1992 (1992-04-01), PISCATAWAY, NJ. USA., pages 773 - 782., XP000297814, ISSN: 0090-6778, DOI: 10.1109/26.141433
Notice of Allowance for U.S. Appl. No. 11/575,015 dated Nov. 8, 2013.
Notice of Allowance for U.S. Appl. No. 13/554,748 dated Apr. 2, 2013.
Notice of Allowance for U.S. Appl. No. 13/554,748 dated Dec. 17, 2014.
Office Action for U.S. Appl. No. 11/575,015 dated Jan. 18, 2012.
Office Action for U.S. Appl. No. 11/575,015 dated Jun. 25, 2010.
Office Action for U.S. Appl. No. 11/575,015 dated Jun. 8, 2012.
Office Action for U.S. Appl. No. 11/575,015 dated Nov. 3, 2010.
Office Action for U.S. Appl. No. 11/575,015 dated Oct. 18, 2011.
Office Action for U.S. Appl. No. 13/478,996 dated Aug. 21, 2012.
Office Action for U.S. Appl. No. 13/478,996 dated Nov. 26, 2012.
Office Action for U.S. Appl. No. 13/532,576 dated Jan. 28, 2013.
Office Action for U.S. Appl. No. 13/532,576 dated Oct. 15, 2012.
Office Action for U.S. Appl. No. 13/554,748 dated Nov. 6, 2012.
P. Wolniansky, et al., "V-BLAST: An Architecture for Realizing Very High Data Rates over the Rich-scattering Wireless Channel", 1998 URSI International Symposium on Signals, Systems and Electronics, Pisa, Italy, Sep. 29-Oct. 2, 1998, 6 pages total.
PCT International Search Report dated Nov. 22, 2004.
S. Baro, et al., "Improving BLAST Performance using Space-Time Block Codes and Turbo Decoding", Institute for Communications Engineering, Munich University of Technology, 2000, 5 pages total.
SAYEED Z.: "Throughput analysis and design of fixed and adaptive ARQ/diversity systems for slow fading channels", IEEE GLOBECOM 1998, IEEE, vol. 6, 8 November 1998 (1998-11-08) - 12 November 1998 (1998-11-12), pages 3686 - 3691, XP010339471, ISBN: 978-0-7803-4984-1, DOI: 10.1109/GLOCOM.1998.775999
Schimunek et ., "AS/400 HTTP Server Performance and Capacity Planning", IBM Manual, International Technical Support Organization, http://www.redbooks.ibm.com, Jan. 2000, 224 pages.
U.S. Appl. No. 14/321,117, filed Jul. 1, 2014, Yap, et al.
V. Tarokh, et al., "Space-Time Block Codes from Orthogonal Designs", IEEE Transactions on Information Theory, Jul. 1999, vol. 45, pp. 1456-1467.
Y. Zou, et al., "A Novel HARQ and AMC Scheme Using Space-time Block Coding and Turbo Codes for Wireless Packet Data Transmission", Proceedings of 2003 International Conference on Communication Technology , 2003. ICCT 2003, Apr. 2003, pp. 1046-1050.
Z. Sayeed, "Throughput Analysis and Design of Fixed and Adaptive ARQ/Diversity Systems for Slow Fading Channels", XP-010339471, 1998, pp. 3686-3691.
ZHENG, H., LOZANO A., HALEEM M.: "Multiple ARQ Processes for MIMO Systems", EURASIP JOURNAL OF APPLIED SIGNAL PROCESSING, HINDAWI PUBLISHING CO., CUYAHOGA FALLS, OH, US, vol. 5, 1 May 2004 (2004-05-01), US, XP002347853, ISSN: 1110-8657

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