IMAM, M. and Stiawan, Deris and Ubaya, Huda (2023) DETEKSI TRANSAKSI ANOMALI PADA BLOCKCHAIN DENGAN MENGGUNAKAN METODE DEEP NEURAL NETWORK (DNN). Undergraduate thesis, Sriwijaya University.
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Abstract
Blockchain is a digital data bank that stores transaction data transparently. With so much interest in bitcoin, making bitcoin wallets are an attractive target for hackers. This research uses the Deep Neural Network (DNN). The dataset consists of 13 columns, 30,246,808 normal transactions and 1,326 anomalous transactions. The dataset is balanced by oversampling and undersampling techniques. The model with the best dataset ratio obtained achieved an accuracy of 84.43%. Then it was evaluated using k-fold to determine the consistency of the model in detecting and an average accuracy of 94.75% was obtained, which shows that the model has quite consistent performance.
Item Type: | Thesis (Undergraduate) |
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Uncontrolled Keywords: | METODE DEEP NEURAL NETWORK (DNN) |
Subjects: | Q Science > Q Science (General) > Q300-390 Cybernetics > Q325.5 Machine learning Q Science > QA Mathematics > QA75-76.95 Calculating machines > QA76.9.A25 Computer security. Systems and Data Security. |
Divisions: | 09-Faculty of Computer Science > 56201-Computer Systems (S1) |
Depositing User: | M. Imam |
Date Deposited: | 22 Nov 2023 01:55 |
Last Modified: | 22 Nov 2023 01:55 |
URI: | http://repository.unsri.ac.id/id/eprint/130854 |
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