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Adaptation of the Projection-Slice Theorem for Stock ValuationEstimation Using Random Markov Fields

机译:使用随机马尔可夫字段适应储蓄估值的投影切片定理

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The Projection-Slice Synthetic Discriminant function filter is utilized with Random Markov Fields, RMF to estimate trends that may be used as prediction for stock valuation through the representation of the market behavior as a hidden Markov Model, HMM. In this work, we utilize a set of progressive and contiguous time segments of a given stock, and treat the set as a two dimensional object that has been represented by its one-d projections. The abstract two-D object is thus an incarnation of N-temporal projections. The HMM is then utilized to generate N+1 projections that maximizes the two-dimensional correlation peak between the data and the HMM-generated stochastic processes. This application of the PSDF provides a method of stock valuation prediction via the market stochastic behavior utilized in the filter.
机译:投影切片合成判别功能滤波器用于随机马尔可夫领域,RMF通过作为隐藏的马尔可夫模型,嗯,估计可能用作股票估值预测的趋势。在这项工作中,我们利用给定库存的一组渐进和连续的时间片段,并将集合视为由其一体的投影表示的二维对象。因此,抽象的二维对象是N-时间投影的化量。然后利用HMM生成N + 1个投影,其最大化数据和HMM生成的随机过程之间的二维相关峰值。 PSDF的这种应用通过过滤器中使用的市场随机行为提供了一种储蓄估值预测方法。

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