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Efficient lead management allows substantially enhancing online channel marketing programs. In the paper, we classify website traffic into human- and bot-origin ones. We use feedforward neural networks with embedding layers. Moreover, we use one-hot encoding for categorical data. The data of mouse clicks come from seven large retail stores and the data of lead classification from three financial institutions. The data are collected by a JavaScript code embedded into HTML pages. The three proposed models achieved relatively high accuracy in detecting artificially generated traffic.

eISSN:
2449-6499
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Computer Sciences, Databases and Data Mining, Artificial Intelligence