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- W4379620074 abstract "The threat of malware to information security is one that keeps growing. However, the Windows operating system faces a very high level of unintended security risk. System exploitation that is prohibited could pose a security risk. For instance, PayPal is frequently imitated because hackers can profit significantly from obtaining consumers' PayPal login information. The main drawbacks of existing system is that, it takes more time to process and they are less efficient. To overcome the above drawbacks current research arena proposes a way that businesses detect threats, adapt and implement numerous cybersecurity techniques in combination with Machine learning and IOT approaches. But still there are lot of issues occurring in the above-mentioned techniques i.e., the Signature based detection is unattainable. The conclusion stated was that no machine is able to detect the malwares of the new generation with complete preciseness. A threat's mitigation is intended in addition to its identification and prevention. This study gives an insight about the various detection and classification techniques that were proposed using Machine Learning algorithms." @default.
- W4379620074 created "2023-06-08" @default.
- W4379620074 creator A5063635907 @default.
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- W4379620074 date "2023-04-06" @default.
- W4379620074 modified "2023-09-27" @default.
- W4379620074 title "Detection and Classification of Malware for Cyber Security using Machine Learning Algorithms" @default.
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- W4379620074 doi "https://doi.org/10.1109/iconstem56934.2023.10142575" @default.
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