首页|New Findings from Madhav Institute of Science & Technology in the Area of Machine Learning Described (Design and Comparative Analysis of Thz Antenna Through Machine Learning for 6g Connectivity)

New Findings from Madhav Institute of Science & Technology in the Area of Machine Learning Described (Design and Comparative Analysis of Thz Antenna Through Machine Learning for 6g Connectivity)

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Investigators publish new report on Machine Learning. According to news reporting from Gwalior, India, by NewsRx journalists, research stated, “The rise of sixth-generation (6G) technology has become increasingly necessary to meet the growing demand for high-speed internet and the continuous advancements in technology. The development of an optimal antenna design is crucial to attain the required performance and capabilities.” The news correspondents obtained a quote from the research from the Madhav Institute of Science & Technology, “Traditional electromagnetic modeling approaches for antenna design are, however, timeconsuming and computationally intensive requiring long simulation time and high-end computing systems. Therefore, Machine Learning (ML) technology can be utilized to deal with these limitations in the context of Terahertz (THz) antenna design, which has not been done before. The main objective of this work is to develop an antenna that operates in the THz Band, which is the essential 6G band for the future infrastructure revolution, and to predict and optimize the antenna’s return loss using ML models like KNearest Neighbour (KNN), Extreme Gradient Boosting (XG-Boost), Decision Tree, and Random Forest and Mean Squared Error (MSE) of 3.816. The findings show that all of these models perform accurately, particularly Random Forest having the highest accuracy of 82% in predicting the return loss.”

GwaliorIndiaAsiaCyborgsEmerging TechnologiesMachine LearningTechnologyMadhav Institute of Science & Technology

2024

Robotics & Machine Learning Daily News

Robotics & Machine Learning Daily News

ISSN:
年,卷(期):2024.(Feb.26)
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