Drug combination recommendation method based on time attention mechanism and graph convolutional network
A convolutional network and attention technology, applied in medicine or prescriptions, neural learning methods, biological neural network models, etc., can solve problems such as inability to produce drug combinations
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[0046] This embodiment involves a drug combination recommendation method based on temporal attention mechanism and graph convolutional network, see figure 1 Shown: Include the following steps:
[0047] S1: Diagnosis, treatment procedures, and medications make up each patient's medical event x i , in which the diagnosis code and treatment procedure code of each patient become a unified dimensional diagnosis vector after one-hot encoding with the treatment vector Transform into a diagnostic embedding vector using a linear embedding method and the treatment embedding vector Among them, w d and w p Represent the learned embedding matrix respectively, and the calculation method is:
[0048]
[0049] S2: Using the cyclic neural network RNN α Learning diagnostic embedding vectors separately with the treatment embedding vector Get the diagnostic attention parameter α d with the treatment attention parameter α p . Similarly, using another recurrent neural network R...
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