Abstract:
An element and an interworking scheme decision method of a communications system and an apparatus thereof considering the communications environment are provided to interwork between the arrangement of communications system components and the elements in consideration of the communications environment. A communications environment analysis unit(3201) determines wireless communications network in consideration of the inputted wireless communications network information. An organization element choice unit(3203) determines the communications system component according to the wireless communications network. A component arrangement positioning unit(3205) determines the arrangement position of element according to the set up information. An interworking scheme setting unit sets up the interworking scheme of the communications components in which the arrangement position is determined.
Abstract:
A wireless communication system performing cooperation diversity using cyclic delay and method are provided to perform cooperation diversity using cyclic delay of mobile terminal on the wireless communication system. A wireless telecommunications system which performs the cooperation diversity using cyclic delay comprises a data transmission part, error detection result receiver, and data retransmission part. Each data is transmitted to at least one relay terminal device and receiving terminal device. The error detection result is received from the relay terminal device detecting the error of data among one or more relay terminal device.
Abstract:
An iterative receiving device and an iterative decoding device are provided to improve an iterative reception, an iterative decoding performance, and a collecting speed by using an optimum detector like a MAP(Maximum A Posteriori) detector as an inner detector. An inner detector(201) detects a receiving signal. An outer decoder(203) decodes the receiving signal detected by the inner detector. An impurity addition device(205) adds impurity to an output signal of the outer decoder. An interleaver(204) performs interleaving between the inner detector and the outer decoder. A de-interleaver(202) performs de-interleaving between the inner detector and the outer decoder. The inner detector is an SC-MMSE(Soft interference Cancellation with Minimum Mean Squared Error) or a MAP detector.
Abstract translation:提供迭代接收装置和迭代解码装置,以通过使用像MAP(Maximum A Posteriori)检测器这样的最佳检测器作为内部检测器来改善迭代接收,迭代解码性能和收集速度。 内部检测器(201)检测接收信号。 外部解码器(203)对由内部检测器检测到的接收信号进行解码。 杂质添加装置(205)将杂质添加到外部解码器的输出信号。 交织器(204)在内部检测器和外部解码器之间执行交织。 解交织器(202)在内部检测器和外部解码器之间执行解交织。 内部检测器是SC-MMSE(具有最小均方误差的软干扰消除)或MAP检测器。
Abstract:
순환 지연 다이버시티(CDD, cyclic delay diversity)에 관한 것으로서, 특히 최적의 순환 지연 값을 갖는 순환 지연 다이버시티 방법 및 장치를 개시한다. 다이버시티 차수에 따른 신호대잡음간섭 함수를 결정하는 단계와, 채널 추정 오류 분산 함수를 결정하는 단계 및 상기 신호대잡음간섭 함수 및 채널 추정 오류 분산 함수에 따라서 시스템에 요구되는 SINR을 결정하는 단계를 포함하는 최적의 순환 지연 값을 결정하는 방법을 제공한다. CDD(cyclic delay diversity), SINR, 순환 지연,
Abstract:
본 발명은 직교주파수 분할 다중 접속(OFDMA) 시스템에서 순환전치(CP) 구간을 넘어가는 지연확산을 갖는 특정 단말에 대해 다른 단말에는 영향을 미치지 않으면서 특정 단말의 보호구간만을 확장함으로써, 특정 단말의 성능을 보장할 뿐만 아니라 다른 단말의 성능에도 영향을 미치지 않도록 하는 송신장치 및 그 방법에 관한 것으로, 직교주파수분할다중접속(OFDMA) 시스템에서 보호구간보다 큰 지연확산을 가지거나 큰 타이밍 오차를 가질 것으로 추정된 단말로 전송되는 데이터의 보호구간을 확장하기 위한 장치에 있어서, 현재 심벌의 일부를 이전 심벌의 마지막 부분에 복사하여 보호구간이 확장된 심벌들을 생성하는 보호구간 확장 처리수단; 상기 보호구간 확장 처리수단에 의해 처리된 심벌들을 입력받아 업 샘플링을 수행하는 업 샘플링 처리수단; 상기 업 샘플링 처리수단의 출력에 대해 주파수 영역의 데이터를 적당한 부반송파에 실을 수 있도록 보간 필터값과 순환 콘볼루션을 수행하여 보간 처리를 수행하는 보간 처리수단; 및 상기 보간 처리수단의 출력에 대해 순환전치 부호를 삽입하는 순환전치 삽입수단을 포함한다. OFDMA, 보호, 구간, 순환, 전치, CP, 확장, 송신, IFFT, FFT, 보간
Abstract:
본 발명은 직교주파수분할다중접속(OFDMA) 통신 시스템과 같은 다중 반송파 무선 시스템에서 채널 품질 정보(CQI)를 피드백하기 위해 채널 품질 정보의 보고 주기를 결정하는 방법 및 장치에 관한 것으로, 직교주파수 분할다중 접속(OFDMA)을 기반으로 하는 단말에서의 채널 품질 정보의 피드백을 위한 보고 주기 결정 방법에 있어서, (a) 기지국으로부터 수신된 채널을 통해 채널 이득을 계산하는 단계; (b) 공평성 정도를 결정짓는 변수와 상기 계산된 채널 이득을 이용해 가중치를 계산한 다음 상기 계산된 가중치를 이용해 상기 계산된 채널 이득에 대한 가중 채널 품질을 계산하는 단계; (c) 상기 계산된 가중 채널 품질과 임계치를 비교하는 단계; 및 (d) 상기 가중 채널 품질이 상기 임계치 이상인 경우에만 채널 품질 정보의 피드백을 위해 할당된 무선 자원을 이용해 측정된 채널 품질 정보를 피드백하는 단계를 포함한다. OFDMA, 직교, 주파수, 분할, 다중, CQI, 채널 품질, 피드백, 주기, 전송, 가중 채널 품질
Abstract:
An apparatus and a method for channel estimation and synchronization in an OFDM/OFDMA(Orthogonal Frequency Division Multiplexing Access) relay system are provided to estimate a channel by estimating a propagation delay weight using a conventional pilot signal without a training signal. An apparatus for channel estimation and synchronization in an OFDM/OFDMA relay system includes a pilot extraction unit(410), a propagation delay estimation unit(430), and a weight value estimation unit(440). The pilot extraction unit extracts pilot signals based on a frequency domain signal which is Fourier-transformed after a signal received from a transparent relay is synchronized with a reference signal received from a base station. The propagation delay estimation unit estimates a propagation delayer between the transparent relay and a terminal based on the extracted pilot signal and the reference pilot signal as a predetermined signal value corresponding to the extracted pilot signal. The weight value estimation unit estimates a propagation delay weight value for estimating a channel between the terminal and the transparent relay based on the estimated propagation delay.
Abstract:
An apparatus and a method for transmitting/receiving multi-code word in an SC-FDMA(Single Carrier-Frequency Division Multiple Access) are provided to reduce an interference between symbols in a frequency selective fading environment. A demultiplexer divides a data stream of a user into the M number of sub-streams(S210). The M number of encoders and the M number of QAM(Quadrature Amplitude Modulation) mappers independently perform channel coding and QAM mapping on each of the M number of sub-streams(S220). The M number of QAM-mapped sub-streams are mapped to DFT(Discrete Fourier Transform) indexes by using a DFT mapper(S230). The DEF mapper applies DFT to the mapped signals(S240). The DFT-applied signals are mapped to sub-carriers corresponding to the user by using a sub-carrier mapper(S250). IFFT(Inverse Fast Fourier Transform) is applied to the sub-carrier mapped result signals, which are then transmitted via a transmission antenna(S260).
Abstract:
A method and an apparatus for determining a report period of channel quality information in a multi-carrier wireless system are provided to improve the report success probability of a user in a good channel state by differently giving a report period of CQI(Channel Quality Information) according to a channel state measured by every user terminal. A user terminal receives a factor for determining an equality degree used for each user terminal and various variables such as a threshold value given to each terminal according to priority levels from a base station and stores them in a memory(201). The user terminal calculates a channel gain by using a pilot signal received from the base station(202). The user terminal calculates a statistical expected value with respect to the calculated channel gain, calculates a weight value by using the factor determining the degree of equality, and calculates a weighted channel quality by multiplying the calculated weight value and the channel gain(203). A CQI transmission determining unit of the user terminal compares the calculated weighted channel quality with the received threshold value(204). If the calculated weighted channel quality is larger than the threshold value, the user terminal feeds back the measured channel quality information to the base station(205).
Abstract:
An RF signal coupling and dividing apparatus and a transmitting/receiving apparatus of a smart antenna system using the same are provided to perform accurate error correction by separating a transmission error correction path and a reception error correction path for correcting errors of a transmission/reception signal. An RF transmitting/receiving unit(20) processes a reception signal provided from an array antenna(10) into a baseband signal and outputs it, and processes an applied transmission baseband signal into a transmission signal and provides it to the array antenna(10). A baseband signal processing unit(30) receives the reception baseband signal and processes it, provides the transmission baseband signal to the RF transmitting/receiving unit(20), and controls the transmission baseband signal according to an applied transmission error correction signal. An error correcting unit(50) performs error correction on the transmission and reception signals, and outputs a corresponding reception error correction signal and transmission error correction signal. A signal coupling and dividing unit(40) couples the transmission signal outputted from the RF transmitting/receiving unit(20) and outputs it to the error correcting unit(50) through a transmission error correction path, and injects the reception error correction signal provided from the error correcting unit(50) to the reception signal through a reception error correction path.