Completion Reasoning Emulation for the Description Logic EL+

December 11, 2019 Β· Declared Dead Β· πŸ› AAAI Spring Symposium Combining Machine Learning with Knowledge Engineering

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Authors Aaron Eberhart, Monireh Ebrahimi, Lu Zhou, Cogan Shimizu, Pascal Hitzler arXiv ID 1912.05063 Category cs.AI: Artificial Intelligence Cross-listed cs.LO, cs.NE Citations 16 Venue AAAI Spring Symposium Combining Machine Learning with Knowledge Engineering Last Checked 4 months ago
Abstract
We present a new approach to integrating deep learning with knowledge-based systems that we believe shows promise. Our approach seeks to emulate reasoning structure, which can be inspected part-way through, rather than simply learning reasoner answers, which is typical in many of the black-box systems currently in use. We demonstrate that this idea is feasible by training a long short-term memory (LSTM) artificial neural network to learn EL+ reasoning patterns with two different data sets. We also show that this trained system is resistant to noise by corrupting a percentage of the test data and comparing the reasoner's and LSTM's predictions on corrupt data with correct answers.
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