蜂窝网中的协作定位技术作为一种高性能的定位技术,改善了非视距传输(Non Line of Sight)和多径效应对移动终端(Mobile Station)定位的影响,扩展了定位服务范围。文中综述了协作定位技术原理与蜂窝网中协作定位技术的研究现状和应用,对...蜂窝网中的协作定位技术作为一种高性能的定位技术,改善了非视距传输(Non Line of Sight)和多径效应对移动终端(Mobile Station)定位的影响,扩展了定位服务范围。文中综述了协作定位技术原理与蜂窝网中协作定位技术的研究现状和应用,对现阶段的协作定位技术进行了分析比较,并展望了其发展方向。展开更多
We propose a novel mechanism for the production of gravitational waves in the early Universe that originates from the relaxation processes induced by the QCD phase transition. While the energy density of the quark-glu...We propose a novel mechanism for the production of gravitational waves in the early Universe that originates from the relaxation processes induced by the QCD phase transition. While the energy density of the quark-gluon mean-field is monotonously decaying in real time, its pressure undergoes a series of violent oscillations at the characteristic QCD time scales that generate a primordial multi-peaked gravitational waves signal in the radio frequencies’ domain. The signal is an echo of the QCD phase transition that is accessible by planned measurements at the FAST and SKA telescopes.展开更多
文摘蜂窝网中的协作定位技术作为一种高性能的定位技术,改善了非视距传输(Non Line of Sight)和多径效应对移动终端(Mobile Station)定位的影响,扩展了定位服务范围。文中综述了协作定位技术原理与蜂窝网中协作定位技术的研究现状和应用,对现阶段的协作定位技术进行了分析比较,并展望了其发展方向。
基金support by the NSFC(11875113)the Shanghai Municipality(KBH1512299)+5 种基金Fudan University(JJH1512105)supported by the Swedish Research Council,contract numbers 621-2013-428 and 2016-05996CONICYT grant MEC80170112(Chile)the European Research Council(ERC)under the European Union’s Horizon 2020 research and innovation programme(668679)supported in part by the Ministry of Education,Youth and Sports of the Czech Republic,project LT17018the framework of COST Action CA15213 “Theory of hot matter and relativistic heavy-ion collisions”(THOR)
文摘We propose a novel mechanism for the production of gravitational waves in the early Universe that originates from the relaxation processes induced by the QCD phase transition. While the energy density of the quark-gluon mean-field is monotonously decaying in real time, its pressure undergoes a series of violent oscillations at the characteristic QCD time scales that generate a primordial multi-peaked gravitational waves signal in the radio frequencies’ domain. The signal is an echo of the QCD phase transition that is accessible by planned measurements at the FAST and SKA telescopes.