Latent Alignment Of Procedural Concepts In Multimodal Recipes · The Large Language Model Bible Contribute to LLM-Bible

Latent Alignment Of Procedural Concepts In Multimodal Recipes

Faghihi Hossein Rajaby, Mirzaee Roshanak, Paliwal Sudarshan, Kordjamshidi Parisa. Proceedings of the First Workshop on Advances in Language and Vision Research 2021

[Paper]    
Attention Mechanism Model Architecture Multimodal Models

We propose a novel alignment mechanism to deal with procedural reasoning on a newly released multimodal QA dataset, named RecipeQA. Our model is solving the textual cloze task which is a reading comprehension on a recipe containing images and instructions. We exploit the power of attention networks, cross-modal representations, and a latent alignment space between instructions and candidate answers to solve the problem. We introduce constrained max-pooling which refines the max-pooling operation on the alignment matrix to impose disjoint constraints among the outputs of the model. Our evaluation result indicates a 19% improvement over the baselines.

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