TreeTalk: Composition and Compression of Trees for Image Descriptions

Author:

Kuznetsova Polina1,Ordonez Vicente2,Berg Tamara L.2,Choi Yejin3

Affiliation:

1. Stony Brook University, Stony Brook, NY,

2. UNC Chapel Hill, Chapel Hill, NC,

3. University of Washington, Seattle, WA,

Abstract

We present a new tree based approach to composing expressive image descriptions that makes use of naturally occuring web images with captions. We investigate two related tasks: image caption generalization and generation, where the former is an optional subtask of the latter. The high-level idea of our approach is to harvest expressive phrases (as tree fragments) from existing image descriptions, then to compose a new description by selectively combining the extracted (and optionally pruned) tree fragments. Key algorithmic components are tree composition and compression, both integrating tree structure with sequence structure. Our proposed system attains significantly better performance than previous approaches for both image caption generalization and generation. In addition, our work is the first to show the empirical benefit of automatically generalized captions for composing natural image descriptions.

Publisher

MIT Press - Journals

Subject

Artificial Intelligence,Computer Science Applications,Linguistics and Language,Human-Computer Interaction,Communication

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