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    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • Iranian Journal of Pharmaceutical Research
    • Volume 6, Number 4
    • مشاهده مورد
    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • Iranian Journal of Pharmaceutical Research
    • Volume 6, Number 4
    • مشاهده مورد
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    Solubility Prediction of Drugs in Supercritical Carbon Dioxide Using Artificial Neural Network

    (ندگان)پدیدآور
    Jouyban, ASoltani, SAsadpour Zeynali, K
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    نوع مدرک
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    زبان مدرک
    English
    نمایش کامل رکورد
    چکیده
    The descriptors computed by HyperChem® software were employed to represent the solubility of 40 drug molecules in supercritical carbon dioxide using an artificial neural network with the architecture of 15-4-1. The accuracy of the proposed method was evaluated by computing average of absolute error (AE) of calculated and experimental logarithm of solubilities. The AE (±SD) of data sets was 0.4 (±0.3) when all data points were used as training set and the solubilities were back-calculated. The AE for predicted solubilities using a trained network employing 1/3 of data points from each set was 0.4 (±0.3) and this finding reveals that the network is well trained using a limited number of experimental data. To provide a full predictive method, data sets were divided into two sets and the network was trained using 20 data sets and the next 20 sets were used as prediction sets. The produced average AEs (±SD) were 1.7 (±1.1) and 1.6 (±1.5), for two sets of analyses. In these analyses, only the computational descriptors, temperature and pressure ofSC-CO2 were used and no experimental solubility data is employed.
    کلید واژگان
    Solubility prediction
    Supercritical carbon dioxide
    Artificial neural network
    Pharmaceuticals

    شماره نشریه
    4
    تاریخ نشر
    2007-10-01
    1386-07-09
    ناشر
    School of Pharmacy, Shahid Beheshti University of Medical Sciences

    شاپا
    1735-0328
    1726-6890
    URI
    https://dx.doi.org/10.22037/ijpr.2010.728
    http://ijpr.sbmu.ac.ir/article_728.html
    https://iranjournals.nlai.ir/handle/123456789/312601

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