Method, device and system for predicting dynamic solubility of active ingredients through artificial intelligence
A technology of active ingredients and artificial intelligence, applied in prediction, neural learning methods, analysis materials, etc., can solve problems such as long research and development time, too much basic data, and low accuracy of prediction results, so as to improve prediction accuracy and reduce experimental data. volume effect
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Embodiment 1
[0030] Such as figure 1 As shown, the present invention provides artificial intelligence to predict the method for dynamic solubility of active ingredient, and this system adopts two kinds of neural network models (BP neural network model / RBF neural network model) in artificial intelligence, designs in conjunction with the stripping experimental method of solid active ingredient . First establish the influencing factors of the solubility of the active ingredient compound, establish the influencing factor table, randomly select the data of one of the factors affecting the solubility of the active ingredient compound as the variable data, and conduct multiple groups of single-factor dissolution experiments under the condition that other influencing factors remain unchanged. , the solubility data is obtained through multiple sets of experiments, and the variable data and the corresponding solubility data are used as parallel sample experimental data to establish the experimental ...
Embodiment 2
[0069] The present invention also provides a system for artificial intelligence to predict the dynamic solubility of active ingredients, including a neural network training module, a data input module, a neural network selection module, a solubility prediction module, and an export module;
[0070] The neural network training module adopts the parallel sample experimental data of single factor investigation to train the BP neural network model and the RBF neural network model in the system, and after obtaining the trained BP neural network model and the RBF neural network model, the BP neural network model is Network model and RBF neural network model data are delivered to the data input module;
[0071] The data input module inputs variable parameter data of unknown results into the trained BP neural network model and RBF neural network model, and the system automatically eliminates data with large errors according to the set data error threshold. And pass the data into the n...
Embodiment 3
[0075] The present invention also provides a device embodiment corresponding to the first method embodiment.
[0076] The embodiment of the device of the present invention is a device for artificial intelligence to predict the dynamic solubility of active ingredients, which may include but not limited to: one or more memories and processors; the memories include storage media of computer systems, commonly referred to as hard drives, for storing A computer program; when the computer program is executed, the processor can realize the aforementioned method for predicting the dynamic solubility of active ingredients by artificial intelligence.
[0077] The device embodiment is basically similar to the method embodiment, and for detailed information, refer to the detailed description of Embodiment 1, which will not be repeated here.
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Abstract
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