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| 1 | Effect of Ag particle size on electrical conductivity of isotropically conductive adhesives显示文摘 | Lilei Ye Zonghe Lai Johan Liu | 1999 | IEEE Trans Electr Packg Manuf1999,22,4: | 1 |
| 2 | Effect of Ag particle size on electrical conductivity of isotropically conductivity of isotropically conductive adhesives显示文摘 | YE Lilei LAI Zonghe LIU Johan | 1999 | IEEE T Electron Pack1999,22,4: | 1 |
| 3 | Effect of Ag particle size on electrical conductivity of isotropical conductive adhesives 显示文摘 | Lilei Ye Zonghe Lai Johan Liu | 1999 | Electron Packg Manuf1999,22,4: | 1 |
| 4 | Effect of particle size on electrical conductivity of ISO tropically conductive adhesives显示文摘 | Ye Lilei Lai Zonghe Liu Johan | 1999 | IEEE Trans Electr Packg Manuf1999,22,4: | 1 |
| 5 | Effect of Ag particle size on electrical conductivity of isotropieally conductive adhesives显示文摘 | Ye Lilei Lai Zonghe Liu Johan | 1999 | lEEK Transactions on Electronics Packaging Manufacturing1999,22,4: | 1 |
| 6 | Formation of three-dimensional carbon nanotube structures by controllable vapor densification显示文摘 | Teng Wang Di Jiang Si Chen Kjell Jeppson Lilei Ye Johan Liu | 2012 | Materials Letters2012,,: | 1 |
| 7 | Effect of Ag particle size electrical conductive of ICAs显示文摘 | Ye LiLei Lai Zonghe Liu Johan | 1999 | Transaction on electronics packaging manufacturing1999,22,4: | 1 |
| 8 | Effect of Ag particle size on electrical conductivity of isotropically conductive adhesives显示文摘 | Ye Lilei Lai Zonghe Liu Johan | 1999 | IEEE Trans Electron Packaging Manuf1999,22,4: | 1 |
| 9 | Effect of Ag particle size on electrical conductivity of isotropically conductive adhesives显示文摘 | Lilei Ye Zonghe Lai Johan Liu | 1999 | IEEE Trans Electr Packg Manuf1999,22,4: | 1 |
| 10 | Next Decade of Telecommunications Artificial Intelligence显示文摘It has been an exciting journey since the mobile communications and artificial intelligence(AI)were conceived in 1983 and 1956.While both fields evolved independently and profoundly changed communications and computing industries,the rapid convergence of 5th generation mobile communication technology(5G)and AI is beginning to significantly transform the core communication infrastructure,network management,and vertical applications.The paper first outlined the individual roadmaps of mobile communications and AI in the early stage,with a concentration to review the era from 3rd generation mobile communication technology(3G)to 5G when AI and mobile communications started to converge.With regard to telecommunications AI,the progress of AI in the ecosystem of mobile communications was further introduced in detail,including network infrastructure,network operation and management,business operation and management,intelligent applications towards business supporting system(BSS)&operation supporting system(OSS)convergence,verticals and private networks,etc.Then the classifications of AI in telecommunication ecosystems were summarized along with its evolution paths specified by various international telecommunications standardization organizations.Towards the next decade,the prospective roadmap of telecommunications AI was forecasted.In line with 3rd generation partnership project(3GPP)and International Telecommunication Union Radiocommunication Sector(ITU-R)timeline of 5G&6th generation mobile communication technology(6G),the network intelligence following 3GPP and open radio access network(O-RAN)routes,experience and intent-based network management and operation,network AI signaling system,intelligent middle-office based BSS,intelligent customer experience management and policy control driven by BSS&OSS convergence,evolution from service level agreement(SLA)to experience level agreement(ELA),and intelligent private network for verticals were further explored.The paper is concluded with the vision that AI will reshape the future beyond 5G(B5G)/6G landscape,and we need pivot our research and development(R&D),standardizations,and ecosystem to fully take the unprecedented opportunities. | Ye Ouyang Lilei Wang Aidong Yang Tongqing Gao Leping Wei Yaqin Zhang | 2022 | CAAI Artificial Intelligence Research2022,1,1: | 0 |
| 11 | RNA structure determination:From 2D to 3D显示文摘RNA molecules serve a wide range of functions that are closely linked to their structures.The basic structural units of RNA consist of single-and double-stranded regions.In order to carry out advanced functions such as catalysis and ligand binding,certain types of RNAs can adopt higher-order structures.The analysis of RNA structures has progressed alongside advancements in structural biology techniques,but it comes with its own set of challenges and corresponding solutions.In this review,we will discuss recent advances in RNA structure analysis techniques,including structural probing methods,X-ray crystallography,nuclear magnetic resonance,cryo-electron microscopy,and small-angle X-ray scattering.Often,a combination of multiple techniques is employed for the integrated analysis of RNA structures.We also survey important RNA structures that have been recently determined using various techniques. | Jie Deng Xianyang Fang Lin Huang Shanshan Li Lilei Xu Keqiong Ye Jinsong Zhang Kaiming Zhang Qiangfeng Cliff Zhang | 2023 | Fundamental Research2023,3,5: | 0 |
| 12 | The concordance between the evolutionary trend and the clinical manifestation of the two SARS-CoV-2 variants显示文摘Coronavirus disease 2019(COVID-19),the disease caused by infection with severe acute respiratory syndrome coronavirus 2(SARS-CoV-2),has developed into a global pandemic that continues to pose an enormous threat to public health and the global economy.Since the first SARS-CoV-2 genome was released[1],thousands of genetic variants have been identified in SARS-CoV-2 strains isolated from worldwide patients. | Ben Hu Ran Liu Xiaolu Tang Yuchen Pan Ming Wang Yongqing Tong Guangming Ye Gaigai Shen Ruochen Ying Aisi Fu Di Li Wanxu Zhao Jing Peng Jie Guo Dong Men Xinmin Yao Yirong Wang Hong Zhang Zhihui Feng Junping Yu Liangjun Chen Zixin Deng Xuemei Lu Ya-Ping Zhang Yirong Li Bende Liu Lilei Yu Yan Li Jian Lu Tiangang Liu | 2021 | National Science Review2021,8,8: | 0 |