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Titlebook: Advanced Computing; 12th International C Deepak Garg,V. A. Narayana,Suneet Kumar Gupta Conference proceedings 2023 Springer Nature Switzerl

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Raumbeleuchtung mit künstlichem Lichte prime cause of data loss and data theft, which is the source of capital loss for many corporations and institutes. Therefore, it becomes imperative to identify whether the data or a file is malicious or not. The methods for malware and benign detection in this study are different machine learning
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Enzyklopädie der Energiewirtschaftd offers, also taking into account the purchase history of the user. Weight sensors are added to the base of the trolley to purchase groceries whose weights are not predetermined. These weight sensors also contribute towards theft detection by comparing the weight of the billed items to that of the current weight inside the trolley.
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https://doi.org/10.1007/978-3-662-41845-1sion process. The existing systems use filters depending on the noise as the noises cannot be predicted because the Poompuhar images are taken at a greater depth than the normal underwater images. In this study, a combination of all the existing filters is used to nullify their individual disadvantages and to achieve a better SNR ratio.
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https://doi.org/10.1007/978-3-663-02350-0rt diseases that are available in the literature. The machine learning techniques that are discussed are Random Forest, Support Vector Machine (SVM), Artificial neural network (ANN), Naïve Bayes (NB), Decision Tree (DT) and K-nearest neighbor (KNN). Furthermore, all these mentioned techniques are compared on basis of their features.
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