Industrial advancements and utilization of large amount of fossil fuels, vehicle pollution, and other calamities increases the Air Quality Index (AQI) of major cities in a drastic manner. Major cities AQI analysis is essential so that the government can take proper preventive, proactive measures to reduce air pollution. This research incorporates artificial intelligence in AQI prediction based on air pollution data. An optimized machine learning model which combines Grey Wolf Optimization (GWO) with the Decision Tree (DT) algorithm for accurate prediction of AQI in major cities of India. Air quality data available in the Kaggle repository is used for experimentation, and major cities like Delhi, Hyderabad, Kolkata, Bangalore, Visakhapatnam, and Chennai are considered for analysis. The proposed model performance is experimentally verified through metrics like R-Square, RMSE, MSE, MAE, and accuracy. Existing machine learning models, like k-nearest Neighbor, Random Forest regressor, and Support vector regressor, are compared with the proposed model. The proposed model attains better prediction performance compared to traditional machine learning algorithms with maximum accuracy of 88.98% for New Delhi city, 91.49% for Bangalore city, 94.48% for Kolkata, 97.66% for Hyderabad, 95.22% for Chennai and 97.68% for Visakhapatnam city.
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http://dx.doi.org/10.1038/s41598-024-54807-1 | DOI Listing |
Front Public Health
January 2025
Department of Surgery, University of California, San Francisco, San Francisco, CA, United States.
Background: Shared micromobility programs (SMPs) are integral to urban transport in US cities, providing sustainable transit options. Increased use has raised safety concerns, notably about helmet usage among e-scooter and e-bicycle riders. Prior studies have shown that head and upper extremity injuries have risen with SMP adoption, yet data on helmet use remains sparse.
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December 2024
UCF Smart & Safe Transportation Lab, Department of Civil, Environmental and Construction Engineering, University of Central Florida, 12800 Pegasus Drive, Orlando, FL 32816, United States. Electronic address:
Intersections are frequently identified as crash hotspots for roadways in major cities, leading to significant human casualties. We propose crash likelihood prediction as an effective strategy to proactively prevent intersection crashes. So far, no reliable models have been developed for intersections that effectively account for the variation in crash types and the cyclical nature of Signal Phasing and Timing (SPaT) and traffic flow.
View Article and Find Full Text PDFSSM Ment Health
December 2024
Hubert H. Humphrey School of Public Affairs, University of Minnesota, Minneapolis, MN, 55455, USA.
Food insecurity is a major threat to global public health and sustainable development. As of 2022, 2.4 billion people worldwide experienced moderate to severe food insecurity.
View Article and Find Full Text PDFInt J Drug Policy
December 2024
Centre d'études des Mouvements Sociaux (Inserm U1276/CNRS UMR 8044/EHESS), 54 bd Raspail, 75006 Paris, France. Electronic address:
The ANRS-Coquelicot survey has been carried out in France for 25 years, to monitor trends in infectious diseases (HIV and hepatitis B and C) among people who use drugs. In this article, we propose to open the black box of this monitoring experience, by describing and analysing some methodological, ethical and political issues involved in this type of survey. The ANRS-Coquelicot survey has carried out on five occasions in France (from 2002 to 2024) in several cities (from 1 to 27) among people who use drugs recruited in a large diversity of services including drug treatment centres, harm reduction facilities, residential services as well as outreach teams.
View Article and Find Full Text PDFAIDS Behav
December 2024
University of Washington Addictions, Drug & Alcohol Institute, Department of Psychiatry and Behavioral Sciences, Seattle, WA, USA.
In Southern U.S. states with high HIV incidence and low HIV Pre-Exposure Prophylaxis (PrEP) uptake, enhanced efforts to increase interest in and willingness to use PrEP are needed.
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