• Title/Summary/Keyword: ADC(Analog-to-Digital converter)

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Nonlinear Echo Cancellation using a Correlation LMS Adaptation Scheme (상관(Correlation) LMS 적응 기법을 이용한 비선형 반향신호 제거에 관한 연구)

  • Park, Hong-Won;An, Gyu-Yeong;Song, Jin-Yeong;Nam, Sang-Won
    • Proceedings of the KIEE Conference
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    • 2003.11c
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    • pp.882-885
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    • 2003
  • In this paper, nonlinear echo cancellation using a correlation LMS (CLMS) algorithm is proposed to cancel the undesired nonlinear echo signals generated in the hybrid system of the telephone network. In the telephone network, the echo signals may result the degradation of the network performance. Furthermore, digital to analog converter (DAC) and analog to digital converter (ADC) may be the source of the nonlinear distortion in the hybrid system. The adaptive filtering technique based on the nonlinear Volterra filter has been the general technique to cancel such a nonlinear echo signals in the telephone network. But in the presence of the double-talk situation, the error signal for tap adaptations will be greatly larger, and the near-end signal can cause any fluctuation of tap coefficients, and they may diverge greatly. To solve a such problem, the correlation LMS (CLMS) algorithm can be applied as the nonlinear adaptive echo cancellation algorithm. The CLMS algorithm utilizes the fact that the far-end signal is not correlated with a near-end signal. Accordingly, the residual error for the tap adaptation is relatively small, when compared to that of the conventional normalized LMS algorithm. To demonstrate the performance of the proposed algorithm, the DAC of hybrid system of the telephone network is considered. The simulation results show that the proposed algorithm can cancel the nonlinear echo signals effectively and show robustness under the double-talk situations.

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Design of a 6bit 250MS/s CMOS A/D Converter using Input Voltage Range Detector (입력전압범위 감지회로를 이용한 6비트 250MS/s CMOS A/D 변환기 설계)

  • Kim, Won;Seon, Jong-Kug;Jung, Hak-Jin;Piao, Li-Min;Yoon, Kwang-Sub
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.47 no.5
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    • pp.16-23
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    • 2010
  • This paper presents 6bit 250MS/s flash A/D converter which can be applied to wireless communication system. To solve the problem of large power consumption in flash A/D converter, control algorithm by input signal level is used in comparator stage. Also, input voltage range detector circuit is used in reference resistor array to minimize the dynamic power consumption in the comparator. Compared with the conventional A/D converter, the proposed A/D converter shows 4.3% increase of power consumption in analog and a seventh power consumption in digital, which leads to a half of power consumption in total. The A/D converter is implemented in a $0.18{\mu}m$ CMOS 1-poly 6-metal technology. The measured results show 106mW power dissipation with 1.8V supply voltage. It shows 4.1bit ENOB at sampling frequency 250MHz and 30.27MHz input frequency.

A Design of 250-MSamples/s 8-Bit Folding Analog to Digital Converter using Transistor Differential Pair Folding Technique (트랜지스터 차동쌍 폴딩 기법을 적용한 250-MSamples/s 8-비트 폴딩 아날로그-디지털 변환기의 설계)

  • 이돈섭;곽계달
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.41 no.11
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    • pp.35-42
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    • 2004
  • A CMOS folding ADC with transistor differential pair folding circuit for low power consumption and high speed operation is presented in this paper. This paper explains the theory of transistor differential pair folding technique and many advantages compared with conventional folding and interpolation circuits. A ADC based on transistor differential pair folding circuit uses 16 fine comparators and 32 interpolation resistors. So it is possible to achieve low power consumption, high speed operation and small chip size. Design technology is based on fully standard 0.25${\mu}{\textrm}{m}$ double poly 2 metal n-well CMOS process. A power consumption is 45mW at 2.5V applied voltage and 250MHz sampling frequency. The INL and DNL are within $\pm$0.15LSB and $\pm$0.15LSB respectively. The SNDR is approximately 50dB at 10MHz input frequency.

A STUDY ON THE READABILITY OF PERIAPICAL RADIOGRAPH WITH THE DIGITAL RADIOGRAPHY (Digital radiography를 이용한 치근단 X선 사진의 판독능에 관한 실험적 연구)

  • Lee Kon;Lee Sang Rae
    • Journal of Korean Academy of Oral and Maxillofacial Radiology
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    • v.22 no.1
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    • pp.117-127
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    • 1992
  • This investigation was performed to test the readability of the video based digital radiography, that can be applied clinically, compared with the periapical radiograph. The experiments were performed with IBM-PC/AT compatible, video camera and ADC (analog-digital converter). And spatial resolution was 512 X 480 with 256 (8 bit) gray levels. The radiographs obtained by using variable steps of exposure time were digitized. and then the digital images were analyzed. The obtained results were as follows: 1. There was no remarkable difference in readability between the radiographs and their digital images. However, under over exposure the digital images were superior to the radiographs in readability and vice versa. 2. As the exposure time was increased, the gray level of the digital image was decreased proportionally. 3. The correlation beween the regions of interest and the aluminum step wedges were relatively close; R=0.9965 (p <0.001).

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Multi-Channel Data Acquisition System Design for Spiral CT Application

  • Yoo, Sun-Won;Kim, In-Su;Kim, Bong-Su;Yun Yi;Kwak, Sung-Woo;Cho, Kyu-Sung;Park, Jung-Byung
    • Proceedings of the Korean Society of Medical Physics Conference
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    • 2002.09a
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    • pp.468-470
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    • 2002
  • We have designed X-ray detection system and multi-channel data acquisition system for Spiral CT application. X-ray detection system consists of scintillator and photodiode. Scintillator converts X-ray into visible light. Photodiode converts visible light into electrical signal. The multi-channel data acquisition system consists of analog, digital, master and backplane board. Analog board detects electrical signal and amplifies signal by 140dB. Digital board consists of MUX(Multiplex) which routes multi-channel analog signal to preamplifier, and ADC(Analog to Digital Converter) which converts analog signal into digital signal. Master board supplies the synchronized clock and transmits the digital data to image reconstructor. Backplane provides electrical power, analog output and clock signal. The system converts the projected X-ray signal over the detector array with large gain, samples the data in each channel sequentially, and the sampled data are transmitted to host computer in a given time frame. To meet the timing limitation, this system is very flexible since it is implemented by FPGA(Field Programmable Gate Array). This system must have a high-speed operation with low noise and high SNR(signal to noise ratio), wide dynamic range to get a high resolution image.

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Automatic Gain Control Algorithms for MB-OFDM UWB System (MB-OFDM UWB에서 효율적인 자동 이득 조절 장치)

  • Hong, Dae-Ki
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.8 no.6
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    • pp.1402-1409
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    • 2007
  • In this paper, we propose various types of AGC algorithms for implementing the OFDM communication systems. For the high-speed packet transmission, in this paper, we assume the OFDM system with relatively long and repeated preambles. We propose the maximum sample value counter for counting the number of maximum sample. In the maximum sample value counter, we use the buffer for the digital signal buffering. Finally, the counting value of the maximum sample value counter controls the gain control signal generator by using gain control table automatically.

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Nonlinearity Correction Method in FMCW Laser Range Finder (FMCW 레이저 거리 측정기의 비선형성 보정 방법)

  • Jung, Soo-Yong;Lee, Seong Ro;Jeong, Min A;Park, Chang-Soo
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.38C no.4
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    • pp.351-358
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    • 2013
  • We propose a correction method of nonlinear frequency sweep in an FMCW(Frequency Modulated Continuous Wave) laser range finder. FMCW laser range finder requires linear frequency sweep for high resolution, and nonlinear frequency sweep makes the system performance degrade. In general, VCO(Voltage Controlled Oscillator) which is a component used for frequency modulation in FMCW method has nonlinear property. To correct the nonlinear frequency sweep, we utilize an auxiliary delay structure for generating trigger signal of ADC(Analog to Digital Converter). Because the trigger signal has same rate of change with the beat signal, the nonlinearity of the beat signal can be corrected. the experimental results show that the proposed method effectively eliminates the nonlinear frequency sweep problem and enhances the system performance.

Efficiency Test for Low Electric Power Type and MEMS Based 3-axis Accelerometer (저전력 MEMS 기반 3축 가속도계의 성능 시험)

  • Lee, Byeung-Leul;Lee, Seung-Jae;Moon, Dae-Joong;Jung, Jin-Woo
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.18 no.1
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    • pp.160-165
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    • 2014
  • In this study, an efficiency test was performed by fabricating MEMS (Micro Electro Mechanical Systems) based 3-axis acceleration sensor modules and an earthquake monitoring system was composed. Data acquisition device (NI-9239) with a 24bit ADC (Analog to Digital Converter) was used for improving the performance of 3-axis acceleration sensor modules and filtered data (100Hz Low Pass Filter) was used for reducing noises. Also this paper focused on detecting meaningful vibration in the building by developing the earthquake monitoring software. If vector sum of 3-axis acceleration is greater than the preset value, the value will be recorded and saved to the file.

RF performance Analysis for Galileo Receiver Design (갈릴레오 수신기 설계를 위한 RF 성능 분석에 관한 연구)

  • Chang, Sang-Hyun;Lee, Il-Kyoo;Park, Dong-Pil;Lee, Sang-Wook
    • Journal of Satellite, Information and Communications
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    • v.5 no.1
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    • pp.58-62
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    • 2010
  • This paper presents the effects of RF performance parameters on the Galileo receiver design via simulation after reviewing the requirements of the Galileo receiver structure. At first, we considered the general requirements, structure and characteristics of the Galileo system. Then we designed the Galileo receiver focused on performance requirement of 16 dB C/N which is equal to 15 % Error Vector Magnitude(EVM) by using Advanced Design System(ADS) simulation program. In order to verify the function of Automatic Gain Control(AGC)), we measured the IF output power level by changing the input power level at the front - end of the receiver. We analyzed the performance degradation due to phase noise variations of Local Oscillator(LO) in the Galileo receiver through EVM when the minimum sensitivity level of -127 dBm is applied at the receiver. We also analyzed the performance degradation according to variable Analog-to-Digital Converter(ADC) bits within the Dynamic range, -92 ~ -139 dBm, which has been defined by gain range (-2.5 ~ +42.5 dB) in the AGC operation. The results clearly show that the performance of the Galileo receiver can be improved by increasing ADC bits and reducing Phase Noise of LO.

Compensation of Timing Offset and Frequency Offset in the Multi-Band Receiver with Sub-Sampling Method (Sub-Sampling 방식의 다중 대역 수신기에서 타이밍 오프셋과 주파수 오프셋 보상)

  • Lee, Hui-Kyu;Ryu, Heung-Gyoon
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.22 no.5
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    • pp.501-509
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    • 2011
  • Software defined radio(SDR) has a goal that places the analog-to-digital converter(ADC) as near the antenna as possible. But current technique actually can't do analog-to-digital converting about RF band signals. So one method is studying that samples RF band signals to IF band. One of the ways Sub-Sampling technique can convert signals from RF band to IF band without oscillator. If Sub-Sampling technique is used, over 2 bands can convert signals from RF band to IF band. But due to the filter performance in RF band, it is possible to generate interference between signals that is converted in low frequency band. The effect degrades performance. In this paper, we propose one method that uses time division multiplexing(TDM) method as a solution to avoid interference between signals. By doing TDM and Sub-Sampling at the same time that method can get signals without large changes of structures.