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Production Estimation for Shale Wells with Sentiment-Based Features from Geology Reports

机译:地质报告中基于情感特征的页岩油井产量估算

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Shale oil and gas have become very promising unconventional energies in recent years. To optimize operations in oil and gas production, a reservoir model is important for understanding the subsurface appropriately. Generally, sensor data, such as surface seismic data, are most popular data sources in modeling the reservoir with either a numerical simulation model or an Artificial Intelligence (AI)-based model. In this paper, to obtain data that describe the subsurface more exactly, information, including phrases that indicates possible bearing oil or gas and rock colors, is extracted from geology reports. Sentiments of the phrases is identified by sentiment analysis, and sentiment sequence over measured depths is then used to generate features. The rock-color similarities between wells are calculated as well, and integrated as distance metrics into a geology-based regression method. Extensive experiments on Bakken wells in the United States show the effectiveness of using the features extracted from geology reports and the rock colors in terms of estimating well production.
机译:近年来,页岩油气已成为非常有前途的非常规能源。为了优化油气生产中的操作,储层模型对于适当地了解地下非常重要。通常,在使用数值模拟模型或基于人工智能(AI)的模型对储层进行建模时,传感器数据(例如地表地震数据)是最受欢迎的数据源。在本文中,为了获得更准确地描述地下的数据,从地质报告中提取了包括指示可能的轴承油或天然气和岩石颜色在内的短语在内的信息。通过情感分析来识别短语的情感,然后将所测深度上的情感序列用于生成特征。还计算井之间的岩石颜色相似度,并将其作为距离度量标准整合到基于地质的回归方法中。在美国的Bakken井上进行的大量实验表明,从地质报告和岩石颜色中提取的特征可用于估算井的产量。

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