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Network Intrusion Detection using Machine Learning (Reinforcement Learning)

kr1600-4800 SEK

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Đã đăng vào gần 6 năm trước

kr1600-4800 SEK

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Network Intrusion Detection System using Machine Learning (Reinforcement algorithm) To detect these intrusions our proposed approach would be using Deep Reinforcement Learning and Q Learning which improves the stability and performance of the system. We want to detect DDoS attack: DDoS: Distributed Denial of Service attack is a type of DOS attack where multiple compromised systems, which are often infected with a Trojan, are used to target a single system causing a Denial of Service (DoS) attack. These attacks are one of the most dangerous security threats, in which attackers aim to break down the victim’s computer network or cyber system and interrupt their services. MEC systems are especially vulnerable to distributed DoS attacks, in which some distributed edge devices that are not well protected by security protocols can be easily compromised and then used to attack other edge nodes. Some attackers also aim to prevent the collaborative caching users from accessing the caching data. Jamming can be viewed as a special type of DoS attack. The simplest approach could be to examine the logs of the web server and to identify whether the query relates to the DoS/DDoS attack or not. Collect the good and bad queries, label them (either bot or not). The tricky part will be to extract features. As features you can use: HTTP request method HTTP status code URL File name ([login to view URL]) Useragent IP address Geolocation of the IP address Train and test machine learning model. The drawback of the proposed approach is that the requests are treated as single objects and not as a part of the attack. Our proposed method consists of first by using a supervised learning model the Support Vector Machines (SVM), which captures network traffic, filters HTTP headers, normalizes the data on the basis of the operational variables: rate of false positives, rate of false negatives, rate of classification and then sends the information to corresponding SVM’s training and testing sets. then, we use Deep Q learning to attain the best possible reward. We are using CICIDS 2017 dataset for intrusion detection which has the latest attributes with new types of attacks. In this section we have analyzed various types of publicly available dataset which we have used for training our neural network. CICIDS2017: Generating the realistic background traffic is one of the highest priorities of this work. For this dataset, we used our proposed B-Profile system (Sharafaldin et al., 2017), which is responsible for profiling the abstract behavior of human interactions and generate a naturalistic benign background traffic. Our B-Profile for this dataset extracts the abstract behavior of 25 users based on the HTTP, HTTPS, FTP, SSH, and email protocols. It also includes the results of the network traffic analysis using CICFlowMeter with labeled flows based on the time stamp, source and destination IPs, source and destination ports, protocols and attack (CSV files).
Mã dự án: 17093861

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11 đề xuất
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Hoạt động 6 năm trước

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I am Prajwal Bhatt, a recent graduate from IIT Roorkee. I am a creative, flexible and focused individual who is passionate about Data Science, Natural Language Processing and the entire Analytics space. I have acquired knowledge of R programming, Python and C++. Further, I have exposure to Machine Learning algorithms like Neural Network, Regression, Decision Trees, and Clustering algorithms etc. I have experience of working as a data science intern in various recognized companies and start-ups before, Schlumberger, Razorpay, KUAI (Israel, Remote intern); to name a few.
kr4.000 SEK trong 10 ngày
4,8 (33 nhận xét)
5,3
5,3
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Expertise in machine learning and reinforcement learning with good programming skills in MATLAB and Python. I have completed various projects related to this field and can provide you your complete task in decided time frame with quality work. We can discuss further details in the message box Regards
kr2.000 SEK trong 5 ngày
5,0 (8 nhận xét)
3,6
3,6
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Dear Sir, I have gone through project description and interested taking it up. Posted bid amount is indicative and a more accurate I can give once more details are shared. Looking forward to hear from you. Thanks
kr3.555 SEK trong 10 ngày
5,0 (11 nhận xét)
3,3
3,3
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Hello, client. I read your requirement carefully and think i can do your project perfectly, As having experience in Networking work and machine learning, i can do your project. Thanks for your attention.
kr3.555 SEK trong 10 ngày
5,0 (4 nhận xét)
2,7
2,7
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Highly interested with your project. i'm ready to start right now. I'm an individual developer and my completion rate is always 100%. I strictly bite only which I can chew. Message me please so that we can discuss further more.
kr2.000 SEK trong 7 ngày
5,0 (7 nhận xét)
0,0
0,0
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We will build the entire system in tensor flow using reinforcement learning and deep q learning with quick itirations so that training time is kept to the minimum
kr3.888 SEK trong 10 ngày
0,0 (0 nhận xét)
0,0
0,0
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I'm always free to help you to resolve your tasks. I’m an experienced person for what you need. You can trust me about it.
kr1.600 SEK trong 7 ngày
0,0 (0 nhận xét)
0,0
0,0

Về khách hàng

Cờ của SWEDEN
Karlskrona, Sweden
5,0
2
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Thành viên từ thg 6 2, 2018

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