A neural network question generation method based on answers and answer position information
A technology of location information and neural network, applied in the field of question generation task in the research of neural network question answering system
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[0055] To explain the present invention more clearly, the following symbols are defined and explained:
[0056] (1) Represents the input feature vector set, the feature vector set w of each word i ∈R dw +da+dn+dp , where T x is the length of the input text, d w , d a , d n , d p They are the word vector, the position information vector of the answer in the original text, the named entity vector, and the dimensions of the part-of-speech vector, i∈[1, T x ].
[0057] (2) Represents the hidden layer state sequence in the encoder neural network model, and each hidden layer state is a cascade represented by the forward and reverse LSTM, respectively expressed as and every h i is a 512-dimensional vector, i∈[1, T x ].
[0058] (3) At each step t, the context vector independent of the position of the answer in the original text is denoted as c t , the context vector related to the position of the answer in the original text is denoted as c’ t .
[0059] (4) The a...
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