• Title/Summary/Keyword: 클럭

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A Clock Generator with Jitter Suppressed Delay Locked Loop (낮은 지터를 갖는 지연고정루프를 이용한 클럭 발생기)

  • Nam, Jeong-Hoon;Choi, Young-Shig
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.49 no.7
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    • pp.17-22
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    • 2012
  • A novel Clock Generator with jitter suppressed delay-locked loop (DLL) has been proposed to generate highly accurate output signals. The proposed Clock Generator has a VCDL which can suppress its jitter by generating control signals proportional to phase differences among delay stages. It has been designed to generate 1GHz output at 100MHz input with 1.8V $0.18{\mu}m$ CMOS process. The simulation result demonstrates a 3.24ps of peak-to-peak jitter.

Giga-bps CMOS Clock and Data Recovery Circuit with a novel Adaptive Phase Detector (새로운 구조의 적응형 위상 검출기를 갖는 Gbps급 CMOS 클럭/데이타 복원 회로)

  • 이재욱;이천오;최우영
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.27 no.10C
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    • pp.987-992
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    • 2002
  • In this paper, a new clock and data recovery circuit is proposed for the application of data communication systems requiring ㎓-range clock signals. The circuit is suitable for recovering NRZ data which is widely used for high speed data transmission in ㎓ ranges. The high frequency jitter is one of major performance-limiting factors in PLL, particularly when NRZ data patterns are used. A novel phase detector is able to suppress this noise, and stable clock generation is achieved. Futhermore, the phase detector has an adaptive delay cell removing the dead zone problem and has the optimal characteristics for fast locking. The proposed circuit has a convenience structure that can be easily extended to multi-channels. The circuit is designed based on CMOS 0.25㎛ fabrication process and verified by measurement result.

Design of Clock Recovery circuit for 13.56MHz RFID Tags with 100% ASK Receiver (100% ASK 수신기를 위한 13.56MHz RFID Tag용 클럭 복원회로 설계)

  • Kim, Ji-Gon;Yi, Kyeong-Il;Kim, Hyun-Sik;Kim, J.H.;Kim, Hyo-Jong;Kim, Shi-Ho
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.45 no.11
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    • pp.44-49
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    • 2008
  • We have proposed a clock recovery circuit for 13.56MHz RFID Tags using 100%, ASK RF input signal. The proposed clock recovery circuit generates clock pulses without reference clock by adapting register controlled DLL. The proposed circuit have designed by using a TSMC 0.18um 1P6M CMOS technology. The simulated results show that the phase locking time of the proposed circuit is about 6.4 usec and power consumption is about 43uW at supply voltage of 3.3V.

Time-to-Digital Converter Implemented in Field-Programmable Gate Array using a Multiphase Clock and Double State Measurements (Field Programmable Gate Array 기반 다중 클럭과 이중 상태 측정을 이용한 시간-디지털 변환기)

  • Jung, Hyun-Chul;Lim, Hansang
    • Journal of the Institute of Electronics and Information Engineers
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    • v.51 no.8
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    • pp.156-164
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    • 2014
  • In a delay line type of a time-to-digital converter implemented in Field Programmable Gate Array, the timing accuracy decreases for a longer carry chain. In this paper, we propose a structure that has a multi-phase clock and a state machine to check metastability; this would reduce the required length of the carry chain with the same time resolution. To reduce the errors caused by the time difference in the four delay lines associated with a four-phase clock, the proposed TDC generates a single input pulse from four phase clocks and uses a single delay line. Moreover, the state machine is designed to find the phase clock that is used to generate the single input pulse and determine the metastable state without a synchronizer. With the measurement range of 1 ms, the measured resolution was 22 ps, and the non-linearity was 25 ps.

Design of a 0.18$\mu$m CMOS 10Gbps CDR With a Quarter-Rate Bang-Bang Phase Detector (Quarter-Rate Bang-Bang 위상검출기를 사용한 0.18$\mu$m CMOS 10Gbps CDR 회로 설계)

  • Cha, Chung-Hyeon;Ko, Seung-O;Seo, Hee-Taek;Park, Jong-Tae;Yu, Chong-Gun
    • Journal of IKEEE
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    • v.13 no.2
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    • pp.118-125
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    • 2009
  • With recent advancement of high-speed, multi-gigabit data transmission capabilities, transmitters usually send data without clock signals for reduction of hardware complexity, power consumption, and cost. Therefore clock and data recovery circuits(CDR) become important to recover the clock and data signals and have been widely studied. This paper presents the design of 10Gbps CDR in 0.18$\mu$m CMOS process. A quarter-rate bang-bang phase detector is designed to reduce the power and circuit complexity, and a 4-stage LC-type VCO is used to improve the jitter characteristics. Simulation results show that the designed CDR consumes 80mW from a 1.8V supply, and exhibits a peak-to-peak jitter of 2.2ps in the recovered clock. The chip layout area excluding pads is 1.26mm$\times$1.05mm.

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Interconnect Delay Fault Test in Boards and SoCs with Multiple System Clocks (다중 시스템 클럭으로 동작하는 보드 및 SoC의 연결선 지연 고장 테스트)

  • Lee Hyunbean;Kim Younghun;Park Sungju;Park Changwon
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.43 no.1 s.343
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    • pp.37-44
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    • 2006
  • This paper proposes an interconnect delay fault test (IDFT) solution on boards and SoCs based on IEEE 1149.1 and IEEE P1500. A new IDFT system clock rising edge generator which forces output boundary scan cells to update test data at the rising edge of system clock and input boundary scan cells to capture the test data at the next rising edge of the system clock is introduced. Using this proposed circuit, IDFT for interconnects synchronized to different system clocks in frequency can be achieved efficiently. Moreover, the proposed IDFT technique does not require any modification of the boundary scan cells or the standard TAP controller is simple in terms of test procedure and is small in terms of area overhead.

Analysis of Metastability for the Synchronizer of NoC (NoC 동기회로 설계를 위한 불안정상태 분석)

  • Chong, Jiang;Kim, Kang-Chul
    • The Journal of the Korea institute of electronic communication sciences
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    • v.9 no.12
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    • pp.1345-1352
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    • 2014
  • Bus architecture of SoC has been replaced by NoC in recent years. Noc uses the multi-clock domains to transmit and receive data between neighbor network interfaces and they have same frequency, but a phase difference because of clock skew. So a synchronizer is used for a mesochronous frequency in interconnection between network interfaces. In this paper the metastability is defined and analyzed in a D latch and a D flip-flop to search the possibilities that data can be lost in the process of sending and receiving data between interconnects when a local frequency and a transmitted frequency have a phase difference. 180nm CMOS model parameter and 1GHz are used to simulate them in HSpice. The simulation results show that the metastability happens in a latch and a flip-flop when input data change near the clock edges and there are intermediate states for a longer time as input data change closer at the clock edge. And the next stage can lose input data depending on environmental conditions such as temperature, processing variations, power supply, etc. The simulation results are very useful to design a mescochronous synchronizer for NoC.

A Low Power Current-Steering DAC Selecting Clock Enable Signal (선택적으로 클럭 신호를 입력하는 저 전력 전류구동 디지털-아날로그 변환기)

  • Yang, Byung-Do;Min, Jae-Joong
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.48 no.10
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    • pp.39-45
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    • 2011
  • This paper proposes a low power current-steering 10-bit DAC selecting clock enable signal. The proposed DAC reduces the clock power by cutting the clock signal to the current-source cells in wihich the data will not be changed. The proposed DAC was implemented using a 0.13${\mu}m$ CMOS process with $V_{DD}=1.2V$. Its core area is 0.21$mm^2$. It consumes 4.46mW at 1MHz signal frequency and 200MHz sampling rate. The clock power is reduced to 30.9% and 36.2% of a conventional DAC at 1.25MHz and 10MHz signal frequencies, respectively. The measured SFDRs are 72.8dB and 56.1dB at 1MHz and 50MHz signal frequencies, respectively.

A 125 MHz CMOS Delay-Locked Loop with 64-phase Output Clock (64-위상 출력 클럭을 가지는 125 MHz CMOS 지연 고정 루프)

  • Lee, Pil-Ho;Jang, Young-Chan
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2012.10a
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    • pp.259-262
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    • 2012
  • This paper describes a delay-locked loop (DLL) that generates a 64-phase clock with the operating frequency of 125MHz. The proposed DLL use a $4{\times}8$ matrix-based delay line to improve the linearity of a delay line. The output clock with 64-phase is generated by using a CMOS multiplex and a inverted-based interpolator from 32-phase clock which is the output clock of the $4{\times}8$ matrix-based delay line. The circuit for an initial phase lock, which is independent on the duty cycle ratio of the input clock, is used to prevent from the harmonic lock of a DLL. The proposed DLL is designed using a $0.18-{\mu}m$ CMOS process with a 1.8 V supply. The simulated operating frequency range is 40 MHz to 200 MHz. At the operating frequency of a 125 MHz, the worst phase error and jitter of a 64-phase clock are +11/-12 ps and 6.58 ps, respectively.

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The design of phase error detector based on delayed n-tap rising edge clock:It's DP-PLL system application (지연된 n-탭 상승 에지 클럭을 이용한 위상 오차 검출기의 설계와 DP-PLL에의 적용)

  • 박군종;구광일;윤정현;윤대희;차일환
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.23 no.4
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    • pp.1100-1112
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    • 1998
  • In this paper, a novel method of minimizing the phase error is proposed. A DP-PLL system using this method is implemented and its performacnce is investigated, too. The DP-PLL system detects the phase error between reference clock and locally generated system clock. The phase difference is then reported as a PEV(Phase Error Variation), which is propoced from the delayted n-tap rising dege clock circuit with 5ns resolution in the phase detector. The algorithm is used to track the optimal DAC coefficients, which are adjusted from sample to sample in such a way as to minimize the PEV. The proposed method is found to have remarkable good potential for fast and accurate phase error tracking characteristic. The algorithm shows good performance to supress the low frequency jitter.-ending points, we design new basis functions based on the Legendre polynomial and then transform the error signals with them. When applied to synthetic images such as circles, ellipses and etc., the proposed method provides, in overall, outstanding results in respect to the transform coding gain compared with DCT and DST. And in the case when applied to natural images, the proposed method gives better image quality over DCT and comparable results with DST.

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