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  1.  31
    Interactions between grain boundary and compositional domain boundary during spinodal decomposition in nanocrystalline alloys.Zhijun Wang, Jincheng Wang, Sai Tang, Yaolin Guo, Junjie Li, Yaohe Zhou & Zhongming Zhang - 2013 - Philosophical Magazine 93 (17):2122-2132.
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  2.  26
    Atomistic investigation of homogeneous nucleation in undercooled liquid.Can Guo, Jincheng Wang, Zhijun Wang, Junjie Li, Yunhao Huang & Sai Tang - forthcoming - Philosophical Magazine:1-13.
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    Strain mapping in nanocrystalline grains simulated by phase field crystal model.Yaolin Guo, Jincheng Wang, Zhijun Wang, Junjie Li, Sai Tang, Feng Liu & Yaohe Zhou - 2015 - Philosophical Magazine 95 (9):973-984.
  4.  7
    Advantages of Combining Factorization Machine with Elman Neural Network for Volatility Forecasting of Stock Market.Fang Wang, Sai Tang & Menggang Li - 2021 - Complexity 2021:1-12.
    With a focus in the financial market, stock market dynamics forecasting has received much attention. Predicting stock market fluctuations is usually challenging due to the nonlinear and nonstationary time series of stock prices. The Elman recurrent network is renowned for its capability of dealing with dynamic information, which has made it a successful application to predicting. We developed a hybrid approach which combined Elman recurrent network with factorization machine technique, i.e., the FM-Elman neural network, to predict stock market volatility. In (...)
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