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- W4313532789 abstract "Multidimensional data are representatives in a wide range of applications, from those in the latest state-of-the-art science and technology to specific social issues. And they have been subject to analysis using methods such as regression analysis and machine learning. However, they are rarely obtained as complete data and contain more or less biases and deficiencies. In this study, we form a network from a multidimensional dataset and use its degree distribution to detect data sparsity. Although model analysis based on the degree distribution has been conducted for many years, sparsity detection has not been a target of the degree distribution analysis. Furthermore, we attempt to increase the accuracy and precision of supervised learning by applying regressive weighting according to node grouping in the degree distribution spectrum. By making use of this algorithm, we can expand the range of utilization of incomplete data together with other promising progresses in complex networks." @default.
- W4313532789 created "2023-01-06" @default.
- W4313532789 creator A5037098666 @default.
- W4313532789 creator A5050031371 @default.
- W4313532789 date "2023-01-01" @default.
- W4313532789 modified "2023-10-18" @default.
- W4313532789 title "Detection of Sparsity in Multidimensional Data Using Network Degree Distribution and Improved Supervised Learning with Correction of Data Weighting" @default.
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- W4313532789 doi "https://doi.org/10.1007/978-3-031-21127-0_32" @default.
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