简体中文

NICT Japan corrects sudden data errors caused by atmospheric turbulence in laser links

490
2025-10-25 10:35:45
查看翻译

The National Institute of Information and Communication Technology of Japan, Nagoya Institute of Technology, and Japan Aerospace Exploration Agency have achieved the so-called "world's first successful demonstration of next-generation error correction codes, reducing the impact of atmospheric turbulence on ground to satellite laser communication".

Atmospheric turbulence in ground-to-satellite laser links is known to cause fading, resulting in burst data errors. Error correction codes are one of the key technologies to mitigate such effects.

The Japan-based group stated, “In this experiment, we transmitted next-generation error correction codes with high correction capability (5G NR LDPC and DVB-S2) and successfully corrected burst data errors caused by atmospheric turbulence in the laser link.

“This result, confirming that both codes can significantly improve communication quality compared to conventional schemes, is expected to contribute to the practical implementation of ground-to-satellite laser communications by applying these codes.”

 



JAXA’s Laser Utilizing Communication System (LUCAS)


NICT has been conducting research and development to implement practical ground-to-satellite laser communications. The institute says it recognizes overcoming atmospheric turbulence as “one of technical challenges for the practical implementation”. To address this challenge, NICT has carried out ground-to-geostationary (GEO) satellite laser communication experiments using NICT’s 1-meter optical ground station and JAXA’s Laser Utilizing Communication System (LUCAS) onboard the optical data relay satellite, in order to investigate the impact of atmospheric turbulence on communication quality.

This investigation revealed that atmospheric turbulence causes fading lasting from several milliseconds to several tens of milliseconds, which generates burst data errors. These errors lead to degraded and unstable communication quality. Currently, two approaches are available to overcome these effects: optical compensation schemes and error correction codes. Focusing on the advantage of eliminating control systems of optics, NICT adopted error correction codes.

Error correction by next-gen codes
NICT has been working on a plan to demonstrate error correction using next-generation codes with higher correction capability than conventional Reed-Solomon codes, including 5G NR LDPC for 5G applications and DVB-S2 for satellite broadcasting. In this experiment, NICT, in collaboration with NITech, conducted data transmission with next-generation error correction codes, including 5G NR LDPC and DVB-S2, using a 60 Mbps downlink on the ground-to-GEO satellite laser communication link between NICT’s 1-meter optical ground station and LUCAS.

Utilizing NICT’s experiences acquiring atmospheric turbulence, the parameters involved with interleaving method and error correction code were optimized to address burst errors caused by fading.

Analyzing this experimental data successfully demonstrated the correction of burst data errors caused by atmospheric turbulence-induced fading, marking that the world’s first confirmation that 5G NR LDPC and DVB-S2 can significantly improve communication quality compared to conventional codes.

These advanced codes not only offer high error correction capability but also are expected to assist practical application in ground-to-satellite laser communications due to achieving easily implementable hardware and potential interoperability with future 5G communication systems.

 



Experimental setup of data transmission with next-gen error correction


Future prospects

The group says that this achievement “leads to the improvement of communication quality for ground-to-satellite laser links and accelerates their practical implementation. It also enables applying existing terrestrial 5G communication protocols and satellite broadcasting standards to space communication network system.”

In the future, this technology is expected to play a key role in ground-to-satellite laser communication systems. This work is to be presented on October 28, 2025 in the International Conference on Space Optical Systems and Applications (ICSOS) 2025, in Kyoto, Japan, a leading international conference on space optical communication systems.

Source: optics.org

相关推荐
  • High performance optoelectronic device developer "Micro Source Photon" completes B+round financing

    Recently, Weiyuan Photon (Shenzhen) Technology Co., Ltd. (hereinafter referred to as "Weiyuan Photon") announced the completion of a B+round of financing, with investors including Yicun Capital, Chenfeng Capital, and Beijing Guoqian Investment. The specific amount has not been disclosed. According to its official website, MicroSource Photonics was founded in November 2018, with the main members...

    2024-07-23
    查看翻译
  • Measurement of spectral line intensity of NO2 near 6.2 microns using a quantum cascade laser spectrometer

    Recently, a joint research team from the Key Laboratory of Optoelectronic Information Acquisition and Processing of Anhui University, the Laboratory of Laser Spectroscopy and Sensing of Anhui University, and Ningbo Haier Xin Optoelectronic Technology Co., Ltd. published a paper titled "Measures of line strengths for NO2 near 6.2" μ Research paper on using a quantum cascade laser spectrometer.Re...

    2024-01-02
    查看翻译
  • Progress made in the research and development of high-performance electrically pumped topology lasers by the Institute of Semiconductors, Chinese Academy of Sciences

    Topological laser (TL) is a laser device designed and manufactured using the principles of topological optics, which can produce a robust single-mode laser and is an ideal light source for future new optoelectronic integrated chips. Electrically pumped topology lasers have become a research hotspot due to their small size and ease of integration, but topology lasers based on electrical injection a...

    2024-06-06
    查看翻译
  • Lidar: Entering the Golden Age of Fission Growth

    With the global transition of autonomous driving from L2 to L3+, in the battle between LiDAR and pure visual perception routes, LiDAR is redefining the industry landscape at an astonishing pace of technological evolution and quietly building a new industrial ecosystem in the era of intelligent travel. Before the end-to-end model of autonomous driving became mainstream, there were many discussion...

    03-21
    查看翻译
  • TYVOK Releases K1: The Ultimate 100W CO₂ Laser Engraver for Makers and Designers

    TYVOK, industry leaders in laser engraving technology, just announced the launch of TYVOK K1, a modular CO₂ laser engraver engineered to give makers, designers, schools, and small businesses industrial power with intuitive design and user-friendly operation. TYVOK K1 blends a true 100W optical CO₂ laser engine with precision motion control, a rigid, level platform, and professional-grade safety sy...

    09-16
    查看翻译