商湯聯合創始人林達華:一個優秀的開源項目應有持久生命力

新浪科技訊 7月18日上午消息,近日,商湯科技聯合創始人、香港中文大學信息工程系教授林達華在接受新浪科技等媒體採訪時,談到了商湯在技術層面的新思考,以及商湯在從技術到產業落地的過程中會遇到的挑戰。

Date: 
Monday, July 20, 2020
Media: 
新浪科技

Dean of Engineering Elected HKAES Fellow

Date: 
2020-07-03
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Professor Martin D.F. Wong, Dean of the Faculty of Engineering, has been elected Fellow of the  Hong Kong Academy of Engineering Sciences (HKAES) in December 2019.  The Induction Ceremony took place on 30 June 2020.

A world-renowned scholar and expert on electronic design automation (EDA), Prof. Wong has published over 450 refereed articles at top journals and conferences.  His research interests include EDA, combinatorial optimisation, graph algorithms, parallel processing, cloud computing and machine learning.  He is also a Fellow of the Association for Computing Machinery (ACM) and the Institute of Electrical and Electronic Engineers (IEEE) for his contributions to the algorithmic aspects of EDA, and has won a number of prestigious awards from ACM and IEEE.

The Hong Kong Academy of Engineering Sciences was founded in 1994. It is an organization of Hong Kong’s most eminent engineers of various disciplines who are recognized leaders of the profession with distinguished achievements in engineering sciences or applications.

 

Prof. Martin Wong elected HKAES Fellow (4th right, front) 

 

 

Prof. Martin Wong

 

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CSE

Prof. Ming Yu To Receive 2020 Microwave Application Award by IEEE MTT-S

Date: 
2020-06-09
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Prof. Ming Yu, Department of Electronic Engineering has been selected for the 2020 Microwave Application Award of the IEEE Microwave Theory and Techniques Society (MTT-S) for his contribution to the development of computer aided and robotic tuning for filters and multiplexers.  The award recognizes an individual or team of no more than five individuals for an outstanding application of microwave theory and techniques, which has been reduced to practice nominally 10 years before the award.

Filters and multiplexer are widely used in high frequency circuits in wireless communication systems. It is an important constituent of building reliable microwave communication network such as 5G build out and Satellites. Prof. Yu has a distinguished track record in the electronic engineering industry for decades before joining CUHK. He is well recognised for his work on developing the computer aided tuning (CAT) software for COM DEV in Canada in 1995, which was the first industry application of CAT.  He received the COM DEV CEO’s Achievement Award for the development of computer-aided tuning for microwave filters in 1995 and 2006 respectively, becoming the first person to receive the highest honor in COM DEV International Ltd twice. His pioneer works are widely followed worldwide in industries, specially in wireless applications. In 2003, he demonstrated the world’s first robotic filter/diplexer tuning system at an IEEE MTT-S conference workshop in Philadelphia, PA.

Prof. Yu received the Ph.D. degree in electrical engineering from the University of Victoria, Victoria, BC, Canada, in 1995. He joined COM DEV International, Cambridge, ON, Canada, as a Member of Technical Staff since 1993 and was involved in designing passive microwave/RF hardware for both space and ground-based applications.  He was a Principal Developer of a variety of COM DEV's core design and tuning software for microwave filters and multiplexers. He was a Manager of Filter/Multiplexer Technology (Space Group) and a Staff Scientist of Corporate Research and Development.  Until 2016, he was the Chief Scientist and the Director of Research and Development overseeing the development of company's research and development roadmap and next generation products and technologies, including high-frequency and high-power engineering, electromagnetic-based CAD and tuning for complex and large problems, and novel miniaturization techniques for microwave networks. Prof. Yu has also led the Advanced Technology Group, Cambridge, as the Chief Scientist and an Engineering Fellow. He was later promoted to Senior Honeywell Engineering Fellow, highest honor in a 140,000-employee organization.

Since joining CUHK in 2017, Prof. Yu has secured about $20M research funds, mainly from leading industry players. He has set up a joint Faculty lab named SpaceLab. He is focusing on developing high performance RF and microwave devices and systems for terrestrial and space communication systems. His team is working on Advanced electromagnetic CAD, synthesis, modeling and low-cost manufacturing technique for filters, multiplexers, antennas and other passive devices; applied machine learning for microwave engineering. He is also helping industry to solve many immediate issues such as IC designs and high-power problems.

Prof. Yu is an IEEE Fellow and a Fellow of the Canadian Academy of Engineering. He was an IEEE Distinguished Microwave Lecturer from 2010 to 2012. He is now a member of IEEE speaker's bureau. He served as an IEEE MTT society Filter Committee Chair (MTT-8) and Chair of MTT technical committee TPC-11. He was an Associate Editor of the IEEE Transactions on Microwave Theory and Techniques. Prof. Yu is the TPC Chair of 2020 Asia Pacific Microwave Conference in to be held in Hong Kong Science Park. He published over 30 patents. He has authored or co-authored over 150 publications and numerous proprietary reports.

The award will be conferred at the annual Society Awards Meeting for August 2020 at the International Microwave Symposium to be held in Los Angel, California.

More details of Prof. Yu’s work can be found at :  http://www.ee.cuhk.edu.hk/~mingyu/Research.html

Prof. Ming Yu

 

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Faculty
EE

中大團隊最新研究助準確測大氣變化

揮發性有機化合物的排放,令本港藍天的日子愈來愈少,中文大學工程學院研究團隊,通過高水平的量子化學計算方法,揭示水蒸氣在甲醇大氣化學反應擔任的角色,提供更準確預測大氣反應的計算方法。有關研究成果已發表於著名學術期刊《應用化學》,並被遴選為重點文章(Very Important Paper)。

Date: 
Tuesday, May 26, 2020
Media: 
Sing Tao Daily

中大研究指甲醇氧化反應不受水蒸氣影響 為大氣變化預測提供更準確計算方法

中大研究團隊透過高水平的量子化學計算方法揭示,水蒸氣在某些重要大氣化學反應中的角色提供了確實答案,令空氣污染及大氣變化的預測更為準確及可靠。研究成果已發表於學術期刊《應用化學》(Angewandte Chemie-International Edition)。

Date: 
Tuesday, May 26, 2020
Media: 
經濟日報

Revealing the Role of Water Vapour in Methanol Atmospheric Reaction

Date: 
2020-05-25
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A research team led by Prof. Wei Ren has adopted high-level quantum chemistry calculations to provide a definitive answer to the role of water vapour in some important atmospheric reactions. The new findings will enable a more accurate and reliable prediction of air pollution and atmospheric chemistry.

Volatile organic compounds (VOCs) will produce ozone and fine suspended particulates (PM2.5) under photochemical reactions. In recent years, people in Hong Kong may have experienced fewer ‘blue sky’ days. One of the major reasons is the increasing emission of VOCs from the surrounding areas. Methanol is one of the most significant VOCs in the atmosphere with a global emission of 2.4 million tons. The lifetime of methanol in the atmosphere is about 3 to 14 days.

Hydroxyl radical (OH), known as the ‘detergent’ of the atmosphere, is one of the most important species controlling the oxidizing capacity of the global atmosphere. It initiates most oxidation processes and removes the majority of gases emitted into the atmosphere including VOCs. Due to its significant environmental impact, scientists have been adopting numerous experimental and theoretical tools to understand some key oxidation reactions in the atmosphere. On this basis, reliable computational models can be constructed and used to predict air pollutions and atmospheric change.

It has long been hypothesized that water vapour, with a concentration of 3% in the atmosphere, may play a role in atmospheric reactions involving VOCs oxidations. However, no direct evidence is reported until recently. In 2017, a research group in Argentina experimentally observed that the reaction of methanol with OH could be accelerated by a factor of two in the presence of high relative humidity. Thus they concluded that the water molecules affect the atmospheric methanol reactions. However, another research group from the French National Centre for Scientific Research claimed no catalytic effect of water vapour in their similar experiment. Doubt is cast on the possible role of water vapour in this reaction system.

To clarify the role of water vapour in atmospheric methanol oxidation reactions, Prof. Ren’s team at CUHK worked with the University of Minnesota’s team adopting a high-accuracy quantum chemistry method and variational transition state theory to study the particular reaction involving methanol, hydroxyl and water vapour. With a thorough consideration of the high- and low-frequency anharmonicity, variational effect along the reaction path, and the quantum tunneling effect, the termolecular rate coefficients at 200 to 400 K were calculated. The theoretical calculation confirms that the catalytic effect of water vapour on the methanol and hydroxyl reaction is negligible in the atmosphere. The research work has been reported in the renowned scientific journal, Angewandte Chemie-International Edition and was highlighted as the Very Important Paper (VIP). (https://doi.org/10.1002/anie.202001065

Professor Ren said, “this research unveils a novel method for predicting atmospheric reactions.  With the new dimension provided for the study of atmospheric reactions, we hope that in the future there will be a more accurate and faster application on monitoring air pollution in addition to the ultrasensitive trace gas sensors, leading to a higher quality alert system, and even better precautionary measures by the relevant corporations and authorities.”

Additionally, Prof. Ren’s team explored the reaction rate coefficients of cyclopentane reaction with hydroxyl, which plays a significant role in fuel combustion and atmospheric degradation. This work exemplifies a valuable practice of extending the state of the art of treating anharmonicities in chemical reaction systems. This work has been recently published as Advance Article in Chemical Science-The Royal Society of Chemistry  (https://doi.org/10.1039/C9SC05632G).   

Prof Ren's research team

 

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MAE
Media Release

護膚霜變電解液不易燃更環保

護膚霜除了可以令人容光煥發外,原來亦有機會能讓大家充滿「電力」。中文大學的研究團隊利用護膚霜和潤滑劑常用的原料「聚乙二醇」取代高濃度鋰鹽或離子化合物,在電解液擬造出「分子擁擠」現象,以抑制水分子活性,成功研發出一款新的水系鋰離子電池電解液。當中的材料成本降低最多達95%,且不易燃、毒性低,相對環保,更能提供穩定的電壓。研究結果已刊登於國際期刊《自然材料》。

Date: 
Friday, May 15, 2020
Media: 
Lion Rock Daily

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