• Title/Summary/Keyword: Clock Recovery

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Design of a 2.5Gbps Serial Data Link CMOS Transceiver (2.5Gbps 시리얼 데이터 링크 CMOS 트랜시버의 설계)

  • 이흥배;오운택;소병춘;황원석;김수원
    • Proceedings of the IEEK Conference
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    • 2003.07b
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    • pp.1185-1188
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    • 2003
  • This paper describes a design for a 2.5Gb/s serial data link CMOS transceiver based on the InfiniBand$^{TM}$ specification. The transceiver chip integrates data serializer, line driver, Tx PLL, deserializer, clock recovery, and lock detector. The designed transceiver is fabricated in a 0.25 ${\mu}{\textrm}{m}$ CMOS mixed-signal, 1-poly, 5-metal process. The first version chip occupies a 3.0mm x 3.3mm area and consumes 450mW with 2.5V supply. In 2.5 Gbps, the output jitter of transmitter measured at the point over a 1.2m, 50Ω coaxial cable is 8.811ps(rms), 68ps(p-p). In the receiver, VCO jitter is 18.5ps(rms), 130ps(p-p), the recovered data are found equivalent to the transmitted data as expected. In the design for second version chip, the proposed clock and data recovery circuit using linear phase detector can reduce jitter in the VCO of PLL.L.

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Robust Symbol Timing Recovery for Telephone tine Modems

  • Hwang, Sung-Hyun;Park, Hyun-Cheol k;Park, Hyung-Jin
    • Proceedings of the IEEK Conference
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    • 2002.07c
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    • pp.1819-1822
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    • 2002
  • The authors propose a robust symbol timing recovery (STR) for telephone line modems supporting data rates up to 32 Mbps. The STR is initialized by a start signal from carrier sensor, and the novel method is proposed which resolves the difference between the frequency of the transmitter's clock and the receiver's clock, called baud frequency offset. The proposed method is applied on digital receiver in a 16 frequency diverse quadrature amplitude modulation (FDQAM) system.

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Design of 10Gbps CMOS Receiver Circuits for Fiber-Optic Communication (광통신용 10Gbps CMOS 수신기 회로 설계)

  • Park, Sung-Kyung;Lee, Young-Jae;Byun, Sang-Jin
    • Journal of IKEEE
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    • v.14 no.4
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    • pp.283-290
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    • 2010
  • This study is on the design of 10Gbps CMOS receiver circuits for fiber-optic communication. The receiver is made up of a photodiode, a transimpedance amplifier, a limiting amplifier, an equalizer, a clock and data recovery loop circuit, and a demultiplexer or demux with some auxiliary circuits including I/O circuits. Various wideband or high-speed circuit techniques are harnessed to realize a feasible, effective, and reliable receiver for a SONET fiber-optic standard, OC-192.

Design Issues of Digital Display Interface

  • Jeong, Deog-Kyoon;Oh, Do-Hwan
    • 한국정보디스플레이학회:학술대회논문집
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    • 2007.08a
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    • pp.993-996
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    • 2007
  • Depending on applications where transmission bandwidth, wire distance, power consumption and EMI environments vary, design trade-offs must be made to optimize the display interface. After introducing the digital display interface architecture, topics such as cost, EMI, signal integrity, scalability and content protection are discussed with available techniques. Implementation issues are discussed regarding their cost and design complexity. Existing standards are reviewed and comparison on their strengths and shortcomings are discussed.

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A Timing Recovery Scheme for Variable Symbol Rate Digital M-ary QASK Receiver (가변 심볼율 MQASK(M-ary Quadrature Amplitude Keying) 디지털 수신기를 위한 타이밍 복원 방안)

  • Baek, Daesung;Lim, Wongyu;Kim, Chong-Hoon
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.38A no.7
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    • pp.545-551
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    • 2013
  • Timing recovery loop composed of the Timing Error Detector(TED), loop filter and resampler is widely used for the timing synchronization in MQASK receivers. Since TED is sensitive to the delay between the symbol period of the signal and sampling period, the output is averaged out when the symbol rate and sampling rate are quite different the recovery loop cannot work at all. This paper presents a sampling frequency discriminator (SRD), which detects the frequency offset of the sampling clock to the symbol clock of the MQASK data transmitted. Employing the SRD, the closed loop timing recovery scheme performs the frequency-aided timing acquisition and achieve the synchronization at extremely high sampling frequency offset, which can be used in variable symbol rate MQASK receivers.

A Study of an 8-b${\times}$8-b Adiabatic Pipelined Multiplier with Simplified Supply Clock Generator (단열회로를 이용한 8-b${\times}$8-b 파이프라인 승산기와 개선된 전원클럭 발생기의 연구)

  • Moon, Yong
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.38 no.4
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    • pp.285-291
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    • 2001
  • An 8-b$\times$8-b adiabatic pipelined multiplier is designed. Simplified four phase clock generator is also designed to provide supply clocks for adiabatic circuits. All the clock line charge on the capacitive interconnections is recovered to save energy. Adiabatic circuits are designed based on ECRL(efficient charge recovery logic) and are integrated using 0.6${\mu}{\textrm}{m}$ CMOS technology. The efficiency of proposed supply clock generator is better than the previous one by 4~11%. Simulation results show that the power consumption of adiabatic pipelined multiplier is reduced by a factor of 2.6~3.5 compared to a conventional pipelined CMOS multiplier.

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Crystal-less clock synthesizer with automatic clock compensation for BLE smart tag applications (자동 클럭 보정 기능을 갖춘 크리스털리스 클럭 합성기 설계 )

  • Jihun Kim;Ho-won Kim;Kang-yoon Lee
    • Transactions on Semiconductor Engineering
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    • v.2 no.3
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    • pp.1-5
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    • 2024
  • This paper presents a crystal-less reference clock recovery (CR) frequency synthesizer with compensation designed for Bluetooth Low Energy (BLE) Smart-tag applications, operating at frequencies of 32, 72, and 80MHz. In contrast to conventional frequency synthesizers, the proposed design eliminates the need for external components. Using a single-ended antenna to receive a minimal input power of -36dBm at a 2.4GHz signal, the CR synthesizes frequencies by processing the RF signal received through a Low Noise Amplifier ( L N A ) . This approach allows the system to generate a reference clock without relying on a crystal. The received signal is amplified by the LNA and then input to a 16-bit ACC (Automatic Clock Compensation) circuit. The ACC compares the frequency of the received signal with the oscillator output signal, using the synthesis of a 32MHz reference clock through a frequency compensation method. The oscillator is constructed using a Ring Oscillator (RO) with a Frequency Divider, offering three different frequencies (32/72/80MHz) for various system components. The proposed frequency synthesizer is implemented using a 55-nm CMOS process.

Design of low jitter CDR using a single edge binary phase detector (단일 에지 이진위상검출기를 사용한 저 지터 클록 데이터 복원 회로 설계)

  • An, Taek-Joon;Kong, In-Seok;Im, Sang-Soon;Kang, Jin-Ku
    • Journal of IKEEE
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    • v.17 no.4
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    • pp.544-549
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    • 2013
  • This paper describes a modified binary phase detector (Bang-Bang phase detector - BBPD) for jitter reduction in clock and data recovery (CDR) circuits. The proposed PD reduces ripples in the VCO control voltage resulting in reduced jitter for CDR circuits. A 2.5 Gbps CDR circuit with a proposed BBPD has been designed and verified using Dongbu $0.13{\mu}m$ CMOS technology. Simulation shows the CDR with proposed PD recovers data with peak-to-peak jitter of 10.96ps, rms jitter of 0.86ps, and consumes 16.9mW.

5Gbps CMOS Adaptive Feed-Forward Equalizer Using Phase Detector Output for Backplane Applications (위상 검출기 출력을 이용한 백플레인용 5Gbps CMOS 적응형 피드포워드 이퀄라이저)

  • Lee, Gi-Hyeok;Seong, Chang-Gyeong;Choi, U-Yeong
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.44 no.5
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    • pp.50-57
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    • 2007
  • A 5Gbps CMOS adaptive feed-forward equalizer designed for backplane applications is described. The equalizer has adaptive feedback circuits to control the compensating gain of the equalizing filter, which uses a phase detector in clock recovery circuit to detect ISI (Inter-Symbol Interference) level. This makes the equalizer operate adaptively for a various channel length of backplane environments.