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RWNN

Random Weight Neural Networks

Creation, estimation, and prediction of random weight neural networks (RWNN), Schmidt et al. (1992) <doi:10.1109/ICPR.1992.201708>, including popular variants like extreme learning machines, Huang et al. (2006) <doi:10.1016/j.neucom.2005.12.126>, sparse RWNN, Zhang et al. (2019) <doi:10.1016/j.neunet.2019.01.007>, and deep RWNN, Henríquez et al. (2018) <doi:10.1109/IJCNN.2018.8489703>. It further allows for the creation of ensemble RWNNs like bagging RWNN, Sui et al. (2021) <doi:10.1109/ECCE47101.2021.9595113>, boosting RWNN, stacking RWNN, and ensemble deep RWNN, Shi et al. (2021) <doi:10.1016/j.patcog.2021.107978>.

Versions across snapshots

VersionRepositoryFileSize
0.4 rolling linux/jammy R-4.5 RWNN_0.4.tar.gz 345.6 KiB
0.4 rolling linux/noble R-4.5 RWNN_0.4.tar.gz 347.9 KiB
0.4 rolling source/ R- RWNN_0.4.tar.gz 119.8 KiB
0.4 latest linux/jammy R-4.5 RWNN_0.4.tar.gz 345.6 KiB
0.4 latest linux/noble R-4.5 RWNN_0.4.tar.gz 347.9 KiB
0.4 latest source/ R- RWNN_0.4.tar.gz 119.8 KiB
0.4 2026-04-26 source/ R- RWNN_0.4.tar.gz 119.8 KiB
0.4 2026-04-23 source/ R- RWNN_0.4.tar.gz 119.8 KiB
0.4 2026-04-09 windows/windows R-4.5 RWNN_0.4.zip 756.0 KiB
0.4 2025-04-20 source/ R- RWNN_0.4.tar.gz 119.8 KiB

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