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  1. Long Short-Term Memory Network - an overview - ScienceDirect

    Network LSTM refers to a type of Long Short-Term Memory (LSTM) network architecture that is particularly effective for learning from sequences of data, utilizing specialized structures and …

  2. RNN-LSTM: From applications to modeling techniques and …

    Jun 1, 2024 · Long Short-Term Memory (LSTM) is a popular Recurrent Neural Network (RNN) algorithm known for its ability to effectively analyze and process sequential data with long-term …

  3. PI-LSTM: Physics-informed long short-term memory

    Oct 1, 2023 · The PI-LSTM network, inspired by and compared with existing physics-informed deep learning models (PhyCNN and PhyLSTM), was validated using the numerical simulation …

  4. Singular Value Decomposition-based lightweight LSTM for time …

    Long–short-term memory (LSTM) neural networks are known for their exceptional performance in various domains, particularly in handling time series dat…

  5. LSTM-ARIMA as a hybrid approach in algorithmic investment …

    Jun 23, 2025 · This study makes a significant contribution to the growing field of hybrid financial forecasting models by integrating LSTM and ARIMA into a novel algorithmic investment …

  6. A survey on long short-term memory networks for time series …

    Jan 1, 2021 · Recurrent neural networks and exceedingly Long short-term memory (LSTM) have been investigated intensively in recent years due to their ability to model and predict nonlinear …

  7. Long Short-Term Memory - an overview | ScienceDirect Topics

    LSTM, or long short-term memory, is defined as a type of recurrent neural network (RNN) that utilizes a loop structure to process sequential data and retain long-term information through a …

  8. Improved network anomaly detection system using optimized …

    May 10, 2025 · The PSO-optimized Autoencoder-LSTM model is designed to counter such threats by learning subtle, long-term patterns in network traffic, ensuring early detection and mitigating …

  9. LSTM, WaveNet, and 2D CNN for nonlinear time history prediction …

    Jul 1, 2023 · LSTM has been previously developed and is utilized to serve as a reference model, while WaveNet and 2D CNN (i.e., it deals with the data in coupled time–frequency dimensions) …

  10. DB-LSTM: Densely-connected Bi-directional LSTM for human …

    Jul 15, 2021 · A densely-connected Bi-directional LSTM (DB-LSTM) network is novelly proposed to capture the long-range temporal pattern in forward and backward directions, which …