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Towards complex scenes: A deep learning-based camouflaged people detection method for snapshot multispectral images 被引量:2
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作者 Shu Wang Dawei Zeng +3 位作者 Yixuan Xu Gonghan Yang Feng Huang Liqiong Chen 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第4期269-281,共13页
Camouflaged people are extremely expert in actively concealing themselves by effectively utilizing cover and the surrounding environment. Despite advancements in optical detection capabilities through imaging systems,... Camouflaged people are extremely expert in actively concealing themselves by effectively utilizing cover and the surrounding environment. Despite advancements in optical detection capabilities through imaging systems, including spectral, polarization, and infrared technologies, there is still a lack of effective real-time method for accurately detecting small-size and high-efficient camouflaged people in complex real-world scenes. Here, this study proposes a snapshot multispectral image-based camouflaged detection model, multispectral YOLO(MS-YOLO), which utilizes the SPD-Conv and Sim AM modules to effectively represent targets and suppress background interference by exploiting the spatial-spectral target information. Besides, the study constructs the first real-shot multispectral camouflaged people dataset(MSCPD), which encompasses diverse scenes, target scales, and attitudes. To minimize information redundancy, MS-YOLO selects an optimal subset of 12 bands with strong feature representation and minimal inter-band correlation as input. Through experiments on the MSCPD, MS-YOLO achieves a mean Average Precision of 94.31% and real-time detection at 65 frames per second, which confirms the effectiveness and efficiency of our method in detecting camouflaged people in various typical desert and forest scenes. Our approach offers valuable support to improve the perception capabilities of unmanned aerial vehicles in detecting enemy forces and rescuing personnel in battlefield. 展开更多
关键词 Camouflaged people detection Snapshot multispectral imaging Optimal band selection MS-YOLO complex remote sensing scenes
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Message from Editors-in-Chief: Modeling Complexity Across Social, Scientific, and Technological Systems
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《Journal of Social Computing》 2025年第2期I0001-I0002,共2页
Dear readers,Welcome to the second issue of the sixth volume of the Journal of Social Computing!This issue presents six interdisciplinary research articles that explore how modern computational tools can help us bette... Dear readers,Welcome to the second issue of the sixth volume of the Journal of Social Computing!This issue presents six interdisciplinary research articles that explore how modern computational tools can help us better understand and make sense of complex systems.These include social behavior,technological development,scientific discovery,and the evolving capabilities of artificial intelligence.To guide readers through this diverse content,the articles are grouped into three thematic clusters:(1)Understanding Human and Machine Behavior,(2)Modeling Social and Legislative Systems,and(3)Extracting Insights from Scientific and Technological Data. 展开更多
关键词 social behaviortechnological developmentscientific discoveryand technological development interdisciplinary research articles complex systems understand make sense complex systemsthese social behavior interdisciplinary research computational tools
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Research on Extraction Method of Surface Information Based on Multi-Feature Combination Such as Fractal Texture 被引量:1
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作者 Zhen Chen Yiyang Zheng 《Journal of Geoscience and Environment Protection》 2023年第10期50-66,共17页
Because of the developed economy and lush vegetation in southern China, the following obstacles or difficulties exist in remote sensing land surface classification: 1) Diverse surface composition types;2) Undulating t... Because of the developed economy and lush vegetation in southern China, the following obstacles or difficulties exist in remote sensing land surface classification: 1) Diverse surface composition types;2) Undulating terrains;3) Small fragmented land;4) Indistinguishable shadows of surface objects. It is our top priority to clarify how to use the concept of big data (Data mining technology) and various new technologies and methods to make complex surface remote sensing information extraction technology develop in the direction of automation, refinement and intelligence. In order to achieve the above research objectives, the paper takes the Gaofen-2 satellite data produced in China as the data source, and takes the complex surface remote sensing information extraction technology as the research object, and intelligently analyzes the remote sensing information of complex surface on the basis of completing the data collection and preprocessing. The specific extraction methods are as follows: 1) extraction research on fractal texture features of Brownian motion;2) extraction research on color features;3) extraction research on vegetation index;4) research on vectors and corresponding classification. In this paper, fractal texture features, color features, vegetation features and spectral features of remote sensing images are combined to form a combination feature vector, which improves the dimension of features, and the feature vector improves the difference of remote sensing features, and it is more conducive to the classification of remote sensing features, and thus it improves the classification accuracy of remote sensing images. It is suitable for remote sensing information extraction of complex surface in southern China. This method can be extended to complex surface area in the future. 展开更多
关键词 complex Surface Remote sensing Information Extraction Remote sensing Land Classification Transfer Learning Brownian Motion Fractal Texture
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Upgrading for Impact Anhui Province climbs higher on global industrial value chains with AI technology
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作者 Li Xiaoyang 《Beijing Review》 2025年第29期30-32,共3页
Chinese technology company iFLYTEK Co.Ltd.launched an intelligent speech recognition system designed for humanoid robots this June.While traditional robotic performance suffers in noisy environments,this AI solution a... Chinese technology company iFLYTEK Co.Ltd.launched an intelligent speech recognition system designed for humanoid robots this June.While traditional robotic performance suffers in noisy environments,this AI solution achieves 92-percent environmental sensing accuracy-overcoming a key industry challenge.It enhances humanoid computers’ability to manage complex logistics and warehouse tasks. 展开更多
关键词 humanoid computers ability humanoid robots manage complex logistics warehouse tasks intelligent speech recognition system upgrading impact anhui province global industrial value chains ai technology chinese technology company iflytek intelligent speech recognition system humanoid robots noisy environments environmental sensing accuracy industry challenge enhances complex logistics warehouse tasks
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