scholarly journals Diffeomorphic Lung Registration Using Deep CNNs and Reinforced Learning

Author(s):  
Jorge Onieva Onieva ◽  
Berta Marti-Fuster ◽  
María Pedrero de la Puente ◽  
Raúl San José Estépar
Keyword(s):  
Author(s):  
T.D. White ◽  
G.W. Sheath

Focused group projects engaging owners and managers of Maori farm businesses were initiated on the East Coast of New Zealand. The objective was to improve productivity and profitability on-farm through enhanced capability building and collaboration. Five group projects were evaluated. Critical success factors of learning groups were identified. Leadership, communication, organisation and commitment were required from project participants and facilitators. Collaborative and interactive processes built the knowledge and confidence of farm managers. Building trust was critical. Participation of mentor farmers reinforced learning in the group. Social network building was also important. We conclude that interactive group projects are a powerful way of building confidence of farm managers to communicate issues and make clearer, more strategically aligned decisions and actions. Collaborative farm initiatives foster ownership of issues, develop farmer support networks and ultimately the confidence to change. Keywords: experiential learning, farmer group, trust.


2013 ◽  
Vol 7 (3) ◽  
pp. 646-653
Author(s):  
Anshul Chaturvedi ◽  
Prof. Vineet Richharia

The Internet, computer networks and information are vital resources of current information trend and their protection has increased importance in current existence. Any attempt, successful or unsuccessful to finding the middle ground the discretion, truthfulness and accessibility of any information resource or the information itself is measured a security attack or an intrusion. Intrusion compromised a loose of information credential and trust of security concern. The mechanism of intrusion detection faced a problem of new generated schema and pattern of attack data. Various authors and researchers proposed a method for intrusion detection based on machine learning approach and neural network approach all these compromised with new pattern and schema. Now in this paper a new model of intrusion detection based on SARAS reinforced learning scheme and RBF neural network has proposed. SARAS method imposed a state of attack behaviour and RBF neural network process for training pattern for new schema. Our empirical result shows that the proposed model is better in compression of SARSA and other machine learning technique.


2021 ◽  
Author(s):  
Chengbo Dong ◽  
Xinru Chen ◽  
Aozhu Chen ◽  
Fan Hu ◽  
Zihan Wang ◽  
...  

Electronics ◽  
2020 ◽  
Vol 9 (11) ◽  
pp. 1818
Author(s):  
Jaein Song ◽  
Yun Ji Cho ◽  
Min Hee Kang ◽  
Kee Yeon Hwang

As ridesharing services (including taxi) are often run by private companies, profitability is the top priority in operation. This leads to an increase in the driver’s refusal to take passengers to areas with low demand where they will have difficulties finding subsequent passengers, causing problems such as an extended waiting time when hailing a vehicle for passengers bound for these regions. The study used Seoul’s taxi data to find appropriate surge rates of ridesharing services between 10:00 p.m. and 4:00 a.m. by region using a reinforcement learning algorithm to resolve this problem during the worst time period. In reinforcement learning, the outcome of centrality analysis was applied as a weight affecting drivers’ destination choice probability. Furthermore, the reward function used in the learning was adjusted according to whether the passenger waiting time value was applied or not. The profit was used for reward value. By using a negative reward for the passenger waiting time, the study was able to identify a more appropriate surge level. Across the region, the surge averaged a value of 1.6. To be more specific, those located on the outskirts of the city and in residential areas showed a higher surge, while central areas had a lower surge. Due to this different surge, a driver’s refusal to take passengers can be lessened and the passenger waiting time can be shortened. The supply of ridesharing services in low-demand regions can be increased by as much as 7.5%, allowing regional equity problems related to ridesharing services in Seoul to be reduced to a greater extent.


2005 ◽  
Vol 2005.15 (0) ◽  
pp. 162-165
Author(s):  
Shintaro SUZUKI ◽  
Takeshi TAKENAKA ◽  
Kanji UEDA
Keyword(s):  

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