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一个单形问题的矩阵证明
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作者 苏化明 《合肥工业大学学报(自然科学版)》 CAS CSCD 1992年第4期47-51,共5页
本文利用“磨光变换”的思想和矩阵方法证明了:在表面积为一定的一切n维单形(n≥2)中以正则单形的体积为最大。
关键词 单形 体积 表面积 矩阵
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Noise-Assisted Signal Reception in Threshold Neuron
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作者 WANG You-guo WU Le-nan ZHANG Dan 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2006年第1期79-83,共5页
In certain cases, noises can improve signal transmission or signal processing. This phenomenon is the so-called stochastic resonance. In this paper, we firstly present two theorems to prove that the noisy threshold ne... In certain cases, noises can improve signal transmission or signal processing. This phenomenon is the so-called stochastic resonance. In this paper, we firstly present two theorems to prove that the noisy threshold neuron shows stochastic resonance in terms of the probability of correct reception. Secondly, we analytically discuss stochastic resonance effects and give the probability-optimal noise levels for four representative noises. Finally, we discuss the stochastic gradient ascent learning law, which can be used to find the probability-optimal noise levels. We also present our simulation results for the four representative noises. These results indicate that stochastic resonance is favorable both in biological neurons and in signal processing. 展开更多
关键词 stochastec resonance threshold neuron probability of correct reception
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