In online teaching environments, the lack of direct emotional interaction between teachers and students poses challenges for teachers to consciously and effectively manage their emotional expressions. The design and implementation of an early warning system for teaching provide a novel approach to intelligent evaluation and improvement of online education. This study focuses on segmenting different emotional segments and recognizing emotions in instructional videos. An efficient long-video emotional transition point search algorithm is proposed for segmenting video emotional segments. Leveraging the fact that teachers tend to maintain a neutral emotional state for significant portions of their teaching, a neutral emotional segment filtering algorithm based on facial features has been designed. A multimodal emotional recognition model is proposed for emotional recognition in instructional videos. It begins with preprocessing the raw speech and facial image features, employing a semi-supervised iterative feature normalization algorithm to eliminate individual teacher differences while preserving inherent differences between different emotions. A deep learning-based multimodal emotional recognition model for teacher instructional videos is introduced, incorporating an attention mechanism to automatically assign weights for feature-level modal fusion, providing users with accurate emotional classification. Finally, a teaching early warning system is implemented based on these algorithms.
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http://dx.doi.org/10.7717/peerj-cs.2692 | DOI Listing |
Ann Emerg Med
March 2025
Department of Emergency Medicine, Mayo Clinic, Rochester, MN; Robert and Arlene Kogod Center on Aging, Mayo Clinic, Rochester, MN. Electronic address:
Study Objective: To compare 30-day mortality and return emergency department (ED) visits among older adults with delirium who are discharged home with those discharged home without delirium and those who are admitted to the hospital with and without delirium.
Methods: Adults aged 75 and older years were assessed for delirium using the Delirium Triage Screen followed by the Brief Confusion Assessment Method. We evaluated outcomes including return visits and 30-day mortality.
J Sci Food Agric
March 2025
Key Laboratory of Detection and Risk Prevention of Key Hazardous Materials in Food, China General Chamber of Commerce, Ningbo Key Laboratory of Detection, Control, and Early Warning of Key Hazardous Materials in Food, College of Food Science and Engineering, Ningbo University, Ningbo, China.
Background: Currently, flour quality evaluation methods are varied, but there are some issues, such as single evaluation indicators and insufficient comprehensiveness. The present study aimed to develop a more comprehensive and rapid evaluation method for flour quality.
Results: We first measured nine key quality indicators of dough samples, raw noodle products and cooked noodle products made from wheat flour.
Infect Dis Model
June 2025
Ganzhou Center for Disease Control and Prevention, Ganzhou, 341000, Jiangxi, China.
Scrub typhus poses a serious public health risk globally. Forecasting the occurrence of the disease is essential for policymakers to develop prevention and control strategies. This study investigated the application of modelling techniques to predict the occurrence of scrub typhus and establishes an early warning system aimed at providing a foundational reference for its effective prevention and control.
View Article and Find Full Text PDFSci One Health
December 2024
School of Global Health, Chinese Center for Tropical Diseases Research, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China.
Emerging infectious diseases (EIDs) pose a significant threat to public health. Effective surveillance and early warning systems that monitor EIDs in a timely manner are crucial for their control. Given that more than half of EIDs are zoonotic, traditional integrated surveillance systems remain inadequate.
View Article and Find Full Text PDFHum Genomics
March 2025
Ginkgo Bioworks Inc., 27 Drydock Ave 8th Floor, Boston, MA, 02210, USA.
Pathogens know no borders, and the COVID-19 pandemic highlighted the urgent need for comparable, globally accessible pathogen data. This paper proposes a European wastewater pathogen monitoring network using aircraft and airport samples as a proof of concept for an effective cross-national surveillance system. The study emphasizes the importance of genomic data collection from strategic sites to produce high-value data for disease surveillance and epidemiological analysis.
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