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http://dx.doi.org/10.6109/jkiice.2014.18.8.1805

Phase noise spectrum distribution design of remote controller using BPSK mode  

Kim, Young-Wan (Department of Radio Communication Engineering, Kunsan National University)
Abstract
The phase noise spectrum distribution for remote controller using the BPSK mode and low data rate of 50 kbps was designed and proposed in this paper. In case of applying the BPSK that transmission performance is superior to FSK method, the performance degradations due to phase noise are generated. To minimize the phase noise effect, it is important to dispatch the digital signal in channel environment with required phase noise characteristics. To provide the terminal design technique and the proper channel environment with required phase noise characteristics, the phase noise spectrum distribution was designed for required phase noise characteristics. By analyzing the phase noise effects for damping factor and noise bandwidth of the carrier recovery circuit, the phase noise spectrum design that consider the damping factor and noise bandwidth was performed. Based on the IESS-308 standards, also, the phase noise effects was analyzed. The phase noise spectrum design techniques and phase noise spectrum that is suitable to remote controller were proposed.
Keywords
Phase noise; BPSK mode phase noise; Remote controller; Phase noise spectrum distribution design;
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Times Cited By KSCI : 2  (Citation Analysis)
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1 M. Rostami, E. Macedo, J. Santos and A. Navarro, "Robust cable remote control for set-top boxes," in Proceeding of Electrotechnical Conference 2002, pp. 66-69, 2002.
2 V. Vande Keere, B. Staelens and J. Vandewege, "Rapid prototyping of a CATV network termination for ATM-based video-on-demand services," in Proceeding of Rapid System Prototyping, Thessaloniki, pp. 44-49, 1996.
3 S. Hussain and S. K. Barton, "The Performance of Coherent BPSK in the Presence of Oscillator Phase Noise for Ka-band Pico-terminal Inbound Links", Wireless Personal Communications, vol. 1, no. 2, pp. 111-115, 1995.
4 M. Pardo, L. Sorenson and F. Ayazi, "An Empirical Phase-Noise Model for MEMS Oscillators Operating in Nonlinear Regime," IEEE Transactions on Circuits and Systems I, vol. 59, no. 5, pp. 979-988, 2012.   DOI   ScienceOn
5 Young-wan Kim, "Phase Noise Evaluation of Multi-mode based-COMS Communication Transponder," Journal of the Korea Institute of Information and Communication Engineering, vol. 16, no. 1, pp. 20-25, 2012.   과학기술학회마을   DOI   ScienceOn
6 V. Syrjala, M. Valkama, L. Anttila, T. Riihonen and D. Korpi, "Analysis of phase noise effect on microwave attenuation precision measurement using a heterodyne receiver," IEEE Transactions on Wireless Communications, vol. PP, no. 99, pp. 1-14, 2014.
7 Wei Zhu, Haiying Meng and Liming Mao, "A low phase noise local oscillator module for instrumentation application," in Proceeding of the IEEE International Wireless Symposium, Beijing, pp. 1-4, 2013.
8 Intelsat, "Performance Characteristics for Intermediate Data Rate (IDR) Digital Carriers : IESS 308" and "QPSK/FDMA Performance Characteristics for INTELSAT Business Services (IBS) : IESS 309", Intelsat, Rev. 10, Feb. 2000.
9 Young-wan Kim, "Performance Analysis of M-ary APSK Modulation Method in the Presence of Phase Noise," Journal of the Korea Institute of Information and Communication Engineering, vol. 18, no. 7, pp. 1511-1517, 2014.   과학기술학회마을   DOI   ScienceOn
10 Floyd. M. Gardner, Phaselock Techniques, 2nd ed. John Wiley & Sons, NY, 1979.
11 Young-wan Kim, "Design Program of Phase Noise Distribution Spectrum for Signal Source of M-ary APSK Satellite Communication System," in Proceeding of International Conference on Future Information & Communication Engineering 2014, Hongkong, pp 7-10, 2014.