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Radio Astronomy Spectrometer Deployment and Initial Results at NASA’s Canberra Deep Space Communications Complex
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NASA’s Deep Space Network and the Challenges of Deep Space Communications
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NASA’s Deep Space Network and the Challenges of Deep Space Communications
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Addressing the High-Rate Deep Space Communications Shortfall in NASA’s Space Technology Mission Directorate’s Envisioned Future
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Concatenated coding for low date rate space communications.
In deep space communications with distant planets, the data rate as well as the operating SNR may be very low. To maintain the error rate also at a very low level, it is necessary to use a sophisticated coding system (longer code) without excessive decoding complexity. The concatenated coding has been shown to meet such requirements in that the error rate decreases exponentially with the overall length of the code while the decoder complexity increases only algebraically. Three methods of concatenating an inner code with an outer code are considered. Performance comparison of the three concatenated codes is made.
Transmitters and receivers in free space optical communications for Deep Space links
Two of the many research areas integral making a Mars-Earth optical communication link a reality are optical antenna design and laser transmitter design. This paper addresses areas of both of these by exploring a mode-matched design for a cavity-dumped communications laser, and by reporting on the initial stages of the analysis of an existing 100 inch telescope for use as an optical communications receiver.
Sequential decoding for efficient communication from deep space.
Deep space communication system using sequential decoding, binary phase-shift keying and 8-level quantized decisions
Photon Counting Detector Array Algorithms for Deep Space Optical Communications
For deep-space optical communications systems utilizing an uplink optical beacon, a single-photon-counting detector array on the flight terminal can be used to simultaneously perform uplink tracking and communications as well as accurate downlink pointing at photon-starved (pW/sq. m) power levels. In this paper, we discuss concepts and algorithms for uplink signal acquisition, tracking, and parameter estimation using a photon-counting camera. Statistical models of detector output data and signal processing algorithms are presented, incorporating realistic effects such as Earth background and detector/readout blocking. Analysis and simulation results are validated against measured laboratory data using state-of-the-art commercial photon-counting detector arrays, demonstrating sub-microradian tracking errors under channel conditions representative of deep space optical links.
Space instrumentation for laser communication
Deep space optical communications link, fabricating operational prototype of flight hardware for spaceborne terminal
The Deep Space Network: A Radio Communications Instrument for Deep Space Exploration
The primary purpose of the Deep Space Network (DSN) is to serve as a communications instrument for deep space exploration, providing communications between the spacecraft and the ground facilities. The uplink communications channel provides instructions or commands to the spacecraft. The downlink communications channel provides command verification and spacecraft engineering and science instrument payload data.