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- W4207034057 abstract "India as a country has 17.7% of the world’s population with the limited availability of land resource which is about only 2.4% of the world’s land. Being a developing nation and such huge population to accommodate, a number of problems can be seen on a daily basis such as high traffic congestion and unmanaged traffic on the roads. Irritating rush, wastage of time and fuel, are being severe hindrance to make the transportation comfortable. As a country, due to availability of limited lands, the only option is to manage the traffic smartly. Hitherto, a number of attempts have been made in this regard, still the statically managed traffic lights can be seen at the junction of roads. So in this work, it was tried to give an easy, but implementable method to manage traffic lights effectively. A hybrid approach based enhanced Convolution Neural Network model was used for the classification and have given the comparison with other model based technique i.e. Support Vector Machine. Our proposed enhanced model produced 91.01% accuracy and it is able to outperform the existing model." @default.
- W4207034057 created "2022-01-26" @default.
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- W4207034057 date "2022-02-11" @default.
- W4207034057 modified "2023-09-25" @default.
- W4207034057 title "Significant Enhancement of Classification Efficiency for Automated Traffic Management System" @default.
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- W4207034057 doi "https://doi.org/10.4018/ijdai.291086" @default.
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