cs.AI updates on arXiv.org 09月30日
神经网络精度自动估算算法
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本文提出神经网络精度估算算法和数据结构,提高训练和推理精度,分析精度损失对神经网络行为的影响,强调计算精度跟踪对结果可靠性和可解释性的重要性。

arXiv:2509.24607v1 Announce Type: cross Abstract: We describe algorithms and data structures to extend a neural network library with automatic precision estimation for floating point computations. We also discuss conditions to make estimations exact and preserve high computation performance of neural networks training and inference. Numerical experiments show the consequences of significant precision loss for particular values such as inference, gradients and deviations from mathematically predicted behavior. It turns out that almost any neural network accumulates computational inaccuracies. As a result, its behavior does not coincide with predicted by the mathematical model of neural network. This shows that tracking of computational inaccuracies is important for reliability of inference, training and interpretability of results.

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神经网络 精度估算 计算精度 训练推理
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