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Decision support systems for chemical structure representation, reaction modeling, and spectra simulation

机译:用于化学结构表示,反应建模和光谱模拟的决策支持系统

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摘要

The choice of an appropriate structure coding scheme is the secret to success in QSAR studies. Depending on the problem at hand, 2D or 3D descriptors have to be chosen; the consideration of electronic effects might be crucial, conformational flexibility has to be of special concern. Artificial neural networks, both with unsupervised and with supervised learning schemes, are powerful tools for establishing relationships between structure and physical, chemical, or biological properties. The EROS system for the simulation of chemical reactions is briefly presented and its application to the degradation of s-triazine herbicides is shown. It is further shown how the simulation of chemical reactions can be combined with the simulation of infrared spectra for the efficient identification of the structure of degradation products.
机译:选择合适的结构编码方案是QSAR研究成功的秘诀。根据手头的问题,必须选择2D或3D描述符。考虑电子效应可能至关重要,必须特别关注构象灵活性。人工神经网络具有无监督和受监督的学习方案,是建立结构与物理,化学或生物学特性之间关系的强大工具。简要介绍了用于化学反应模拟的EROS系统,并展示了其在s-三嗪除草剂降解中的应用。进一步显示了如何将化学反应的模拟与红外光谱的模拟相结合,以有效地识别降解产物的结构。

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