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Classification Rejection by Prediction

机译:预测的分类拒绝

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摘要

We address the problem of autonomous decision making in classification of radioastronomy spectrograms from spacecraft. It is known that hte assessment of the decision process can be divided into acceptation of the classification, instant rejection of the current signal classification, or rejection of the entire classifier model. We propose to combine prediction and classification with a double architecture of Time Delay Neural Network (TDNN) to optimize a decision minimizing the false alarm risk. Resutls on real data from URAP experiment aboard Ulysses spacecraft shwo that this scheme is tractable and effective.
机译:我们解决了宇宙飞船综艺谱图分类的自主决策问题。众所周知,决策过程的HTE评估可以分为接受分类,即时抑制当前信号分类,或拒绝整个分类器模型。我们建议将预测和分类与时滞神经网络(TDNN)的双重架构相结合,以优化最小化误报风险的判定。从Ulidsses Spacecraft Shwo撤销Ulip实验的真实数据中的重构,即该计划是易行的,有效的。

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