TIANJIN, Oct. 20 (Xinhua) -- The world's first magnetic resonance platform customized for brain-computer interface (BCI) technology was recently launched in north China's Tianjin Municipality. The platform has established a neuroimaging magnetic resonance system, providing key support for the research and development of next-generation BCI technology.
As the most complex and sophisticated organ of human, the brain has about 86 billion neurons connected by more than 100 trillion synapses. For such a complex neural network, the question of how to detect and analyze full-brain scalp electroencephalogram (EEG) signals, which contain vast amounts of information but are very weak, has always been a major challenge for the BCI industry.
The Haihe Laboratory of Brain-Computer Interaction and Human-Machine Integration at Tianjin University, Shanghai United Imaging Healthcare, and other research institutions utilized the spatial-temporal resolution capability of magnetic resonance equipment to achieve non-invasive and high spatial-temporal resolution in vivo analysis of the whole brain.
The new platform can simultaneously perform nuclear magnetic imaging and EEG recording, accurately capture subtle changes in brain activity, locate the position of these activities with sub-millimeter accuracy, and capture the timing of brain activities with sub-second speed.
Additionally, it can precisely regulate the brain using ultrasound and electrical stimulation technology, with the regulation process linked to the imaging system in real time. This enables synchronous coordination of observation and intervention, providing brain researchers with a three-dimensional and dynamic research perspective.
Zhang Qiang, chairman of Shanghai United Imaging Healthcare, said that the platform is expected to facilitate the practical BCI application in the medical and healthcare field, such as mental disease evaluation, severe neurological monitoring and rehabilitation training, and promote BCI technology from "decoding signals" to "understanding the brain."
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Rodamiento lineal Rodamiento lineal de precisión micrométrica Cojinete lineal Rodamiento lineal estándar Rodamiento lineal de alta carga
المحمل الخطي
المحمل الخطي عالي الدقة
المحمل المستقيم
المحمل الخطي المعياري الدولي
المحمل الخطي الخفيف التحميل
Rolamento linear Rolamento linear de rolagem Cojinete linear Rolamento linear padrão Rolamento linear industrial Rolamento linear de precisão alta
Прямой подшипник Прямой подшипник военного стандарта Подшипник прямой Прямой подшипник высокой нагрузки Прямой подшипник легкой нагрузки
直線軸受 超精密直線軸受 リニアベア 大型リニアベアリング 直線受け 軽荷重リニアベアリング
Linearlager Linearlager für Automobilbau Linearlager standard Präzisions-Linearlager
Linear-Lager Hochlast-Linearlager Roulement linéaire Roulement linéaire aéronautique Roulement droit Roulement linéaire à rouleaux Roulement linéaire standard Roulement linéaire à faible charge
ลินিয়াร์แบร์ทริ้ง ลินিয়াร์แบร์ทริ้งความแม่นยำสูง แบร์ทริ้งลิน ลินিয়াร์แบร์ทริ้ง ลินিয়াร์แบร์ทริ้งมาตรฐานสากล ส่วนลินিয়াร์แบร์ทริ้ง ลินিয়াร์แบร์ทริ้งรับน้ำหนักสูง(Liniyae baebring ráp náam-nạk s̄ūng)
Vòng bi trượt thẳng Vòng bi trượt thẳng độ chính xác cao Vòng bi thẳng Vòng bi trượt thẳng loại lăn Vòng bi thẳng hỏng Vòng bi thẳng tải nhẹ
리니어 베어링 직선축수 산업용 리니어 베어링 리니어 베어 초정밀 리니어 베어링 리니어 베어링 마모품 자동차용 리니어 베어링
IKO LSAG3C1R18H LSAG3C1R21H LSAG3C4R150H LSAGFT4C1R25.4HS2 LSAGT4C1R30HS2
LSAGT4C1R40HS2 LSAGFT4C1R100P LSAGF8C1R150HS1 LSAG5C1R50HS2 MAG10C1R80HS1/N
IKO MAG6C2R150T1P LSAG3C4R150H IKO LSAGFT4C1R25.4HS2 IKO LSAGL30C1S2 LSAGL20C1HS2 LSAGFL20C1HS2 LSAGFL30C1HS2 LSAGF30C1HS2 LSAGF10C1R130PS2 LSAG8C2R239H MAGF8C1R100P IKO STSI2-15-10-30 IKO LSAGFL12C1R180 LSAGLT6C1R132 MAGLT6C1R132 IKO LSAGFT5C1R43 IKO LSAG4C2R100
IKO LSAGLT5C2R150T1H IKO LSAG6C2R150 LSAG2C2R35HS1 MAGL8C1R82HS2 IKO LSAG8C2R325HS2 MAG8C2R325HS2 IKO LSAGT4C1R29.5/OH LSAG4C2R47 E470 LSA25 LSA15 LSA30 LSA40 IKO LMGT6