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A Fuzzy ART versus Hybrid NN-HMM methods for lithology identification in the Triasic province

机译:三元省岩岩鉴定的模糊艺术与杂交NN-HMM方法

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We combine Neural Networks (NNs) and Hidden Markov Models (HMMs) techniques in order to obtain the lithology identification of wells situated in the Triasic province (Sahara). For the same aim, two systems based on Adaptive Resonance Theory (ART), ARTl and Fuzy ART, are also developed Our objective is to facilitate the work of the geological experts by permitting them to obtain quickly the structure and the nature of lands around the drilling. Lithology identification supplies qualitative information about rocks. Lithofacies represent rock textures and are important components of hydrocarbon reservoir characterisation. In this paper, we show that it is interesting to combine the respective capacities of the HMMs and NNs to produce a new effective hybrid models that draw their source in the two formalisms and can provide us a more reliable reservoir model. Comparisons are established to show that the results obtained by the NN-HMM hybrid system are close to those obtained by the Fuzzy ART approach applied to the same borehole with the same well logs.
机译:我们将神经网络(NNS)和隐藏的马尔可夫模型(HMMS)技术相结合,以获得位于三元省(Sahara)中的井的岩性识别。对于同样的目的,基于自适应共振理论(艺术品),ARTL和富乐艺术的两个系统也是开发我们的目标,是为了允许他们迅速获得地质专家的工作,以便快速地获得陆地的结构和土地的性质钻孔。岩性识别提供有关岩石的定性信息。岩型代表岩石纹理,是碳氢化合物储层表征的重要组成部分。在本文中,我们表明,将HMMS和NNS的相应容量结合起来,产生新的有效混合模型,该模型在两个形式主义中绘制它们的来源,可以为我们提供更可靠的水库模型。建立比较以表明,由NN-HMM混合系统获得的结果接近通过施加到与相同井原木的相同钻孔的模糊技术方法获得的结果。

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