Estimation method for missing information of high-dimensional symmetric sparse network based on matrix decomposition
A technology of missing information and matrix decomposition, which is applied in the field of estimation of missing information in high-dimensional symmetric and sparse networks, to achieve the effect of satisfying prediction symmetry and non-negativity, improving estimation accuracy and computational efficiency
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[0029] Example figure 1 As shown, the method for estimating the missing information of a high-dimensional symmetric sparse network based on matrix decomposition in the present invention includes the following steps:
[0030] Step 1. Initialize the low-dimensional latent feature matrix, determine the number of low-dimensional latent feature matrices and the initialization values of the internal elements of the matrix;
[0031] Step 2, designing an objective function based on known elements in the high-dimensional symmetric sparse network;
[0032] Step 3. According to the designed objective function, use the gradient learning method to design an algorithm for solving the objective function;
[0033] Step 4. By solving the algorithm, the objective function is minimized to obtain the latent feature matrix;
[0034] Step 5. Multiply the latent feature matrix to obtain an estimated matrix of the high-dimensional symmetric sparse network, and obtain missing information in the hi...
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