Download PDFOpen PDF in browserAnalysis and Performance Comparison of Various Machine Learning Based AlgorithmsEasyChair Preprint 76784 pages•Date: March 29, 2022AbstractIn this paper, we analyze and compare the performance of machine learning based algorithms like K-Nearest Neighbour, Random Forest, Logistic Regression and Decision Tree. These analyses use data from the dataset which contains the data of accidents severity which is collected from various sources and made into a single dataset. We explored the utilization of single and various algorithms for expectation and utilized four different machine learning approaches with both exactness and execution time execution utilized for the examinations. The outcomes showed most reliable outcomes and that the Random Forest approach was more exact over all blends of input data from the dataset. Keyphrases: Accident Prediction, Classification Techniques, machine learning
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