A mixture of experts committee machine to design compensators for intensity modulated radiation therapy

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This paper presents a new algorithm to produce a near optimal mixture of experts model (MEM) architecture for a continuous mapping. The MEM is applied to a new method incorporating photon scatter for designing compensators for intensity modulated radiation therapy. The algorithm utilizes the fuzzy C-means clustering algorithm to partition data before training commences. A reduction in the size of training sets also allows the Levenberg–Marquardt algorithm to be implemented. As a result, both training time and validation error are reduced. A 71% reduction in prediction error compared with that of a single neural network is achieved.

论文关键词:Committee machines,Neural networks,Fuzzy C-means,Compensators,Radiation therapy

论文评审过程:Received 3 November 2005, Accepted 21 March 2006, Available online 22 May 2006.

论文官网地址:https://doi.org/10.1016/j.patcog.2006.03.018