App for predicting stock price fluctuations with neural network
Stock market investment has become one of the most popular ways for people to invest their money in hoping to get great return in the future. How the stock price fluctuates however often is not predictable. It can be affected by a lot of factors, especially external events that can greatly shifts th...
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2023
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sg-ntu-dr.10356-1727652023-12-22T15:43:17Z App for predicting stock price fluctuations with neural network Andrew Tatang Wong Liang Jie School of Electrical and Electronic Engineering liangjie.wong@ntu.edu.sg Engineering::Electrical and electronic engineering::Computer hardware, software and systems Stock market investment has become one of the most popular ways for people to invest their money in hoping to get great return in the future. How the stock price fluctuates however often is not predictable. It can be affected by a lot of factors, especially external events that can greatly shifts the fluctuations. Hence it possesses a great challenge to predict stock price fluctuations. As machine learning and artificial intelligence has been greatly improved and curated, it has become one of the available algorithms to predict the stock price fluctuations with great accuracy. Long Short-Term Memory is one of the neural network models in deep learning that is capable of doing so. Incorporating a LSTM model into a mobile application is the aim of this final year project to help user make informed financial decisions based on a highly curated mathematical model calculation of stock price data. Bachelor of Engineering (Electrical and Electronic Engineering) 2023-12-20T03:23:34Z 2023-12-20T03:23:34Z 2023 Final Year Project (FYP) Andrew Tatang (2023). App for predicting stock price fluctuations with neural network. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/172765 https://hdl.handle.net/10356/172765 en application/pdf Nanyang Technological University |
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Engineering::Electrical and electronic engineering::Computer hardware, software and systems Andrew Tatang App for predicting stock price fluctuations with neural network |
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Stock market investment has become one of the most popular ways for people to invest their money in hoping to get great return in the future. How the stock price fluctuates however often is not predictable. It can be affected by a lot of factors, especially external events that can greatly shifts the fluctuations. Hence it possesses a great challenge to predict stock price fluctuations. As machine learning and artificial intelligence has been greatly improved and curated, it has become one of the available algorithms to predict the stock price fluctuations with great accuracy. Long Short-Term Memory is one of the neural network models in deep learning that is capable of doing so. Incorporating a LSTM model into a mobile application is the aim of this final year project to help user make informed financial decisions based on a highly curated mathematical model calculation of stock price data. |
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Wong Liang Jie |
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Wong Liang Jie Andrew Tatang |
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Final Year Project |
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Andrew Tatang |
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Andrew Tatang |
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App for predicting stock price fluctuations with neural network |
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App for predicting stock price fluctuations with neural network |
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App for predicting stock price fluctuations with neural network |
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App for predicting stock price fluctuations with neural network |
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App for predicting stock price fluctuations with neural network |
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app for predicting stock price fluctuations with neural network |
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Nanyang Technological University |
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2023 |
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https://hdl.handle.net/10356/172765 |
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