LCT-MALTA's Submission to RepEval 2017 Shared Task

Hoa T. Vu · 2017

We present in this paper our team LCT-MALTA's submission to the RepEval 2017 Shared Task on natural language inference.Our system is a simple system based on a standard BiLSTM architecture, using as input GloVe word embeddings augmented with further linguistic information.We use max pooling on the BiLSTM outputs to obtain embeddings for sentences.On both the matched and the mismatched test sets, our system clearly beats the shared task's BiLSTM baseline model.

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