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Storage Capacity of the Exponential Correlation Associative Memory

机译:指数相关联想存储器的存储容量

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In this paper we analyze the pattern storage capacity of theexponential correlation associative memory(ECAM). This architecture was first studied by Chiueh and Goodman [3] who concluded that, under certain conditions on the input patterns, the memory has a storage capacity that was exponential in the length of the bit-patterns. A recent analysis by Pelillo and Hancock [9], using the Kanerva picture of recall, concluded that the storage capacity was limited by 2~N-1/N~2. Both of these analyses can be criticised on the basis that they overlook the role of initial bit-errors in the recall process and deal only with the capacity for perfect pattern recall. In other words, they fail to model the effect of presenting corrupted patterns to the memory. This can be expected to lead to a more pessimistic limit. Here we model the performance of the ECAM when presented with corrupted input patterns. Our model leads to an expression for the storage capacity of the ECAM both in terms of the length of the bit-patterns and the probability of bit-corruption in the original input patterns. These storage capacities agree closely with simulation. In addition, our results show that slightly superior performance can be obtained by selecting an optimal value of the exponential constant.
机译:本文分析了指数相关联想记忆(ECAM)的模式存储容量。 Chiueh和Goodman [3]首先研究了这种体系结构,他们得出结论,在某些条件下,在输入模式下,存储器的存储容量与位模式的长度成指数关系。 Pelillo和Hancock [9]最近使用Kanerva回忆图片进行的分析得出的结论是,存储容量受2〜N-1 / N〜2的限制。可以基于以下两种批评来批评这两种分析:它们忽略了初始位错误在召回过程中的作用,而仅处理完美模式召回的能力。换句话说,它们无法模拟将损坏的模式呈现给内存的效果。可以预期这会导致更悲观的限制。在此,当输入格式损坏时,我们对ECAM的性能进行建模。我们的模型根据位模式的长度和原始输入模式中的位损坏概率,得出了ECAM的存储容量表达式。这些存储容量与仿真非常吻合。此外,我们的结果表明,通过选择指数常数的最佳值可以获得稍微优越的性能。

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