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We propose a learning system in which language is grounded in visual percepts without specific pre-defined categories of terms. We present a unified generative method to acquire a shared semantic/visual embedding that enables the learning…

计算与语言 · 计算机科学 2021-08-02 Nisha Pillai , Cynthia Matuszek , Francis Ferraro

This survey provides an overview of the evolution of visually grounded models of spoken language over the last 20 years. Such models are inspired by the observation that when children pick up a language, they rely on a wide range of…

人工智能 · 计算机科学 2022-02-22 Grzegorz Chrupała

Modern neural language models (LMs) are powerful tools for modeling human sentence production and comprehension, and their internal representations are remarkably well-aligned with representations of language in the human brain. But to…

计算与语言 · 计算机科学 2024-03-27 Chengxu Zhuang , Evelina Fedorenko , Jacob Andreas

This dissertation examines visually grounded speech (VGS) models that learn from unlabelled speech paired with images. It focuses on applications for low-resource languages and understanding human language acquisition. We introduce a task…

计算与语言 · 计算机科学 2024-09-05 Leanne Nortje

Functional Distributional Semantics is a recently proposed framework for learning distributional semantics that provides linguistic interpretability. It models the meaning of a word as a binary classifier rather than a numerical vector. In…

计算与语言 · 计算机科学 2022-04-25 Yinhong Liu , Guy Emerson

During language acquisition, infants have the benefit of visual cues to ground spoken language. Robots similarly have access to audio and visual sensors. Recent work has shown that images and spoken captions can be mapped into a meaningful…

计算与语言 · 计算机科学 2017-05-29 Herman Kamper , Shane Settle , Gregory Shakhnarovich , Karen Livescu

In natural language processing, most models try to learn semantic representations merely from texts. The learned representations encode the distributional semantics but fail to connect to any knowledge about the physical world. In contrast,…

计算与语言 · 计算机科学 2021-11-16 Yizhen Zhang , Minkyu Choi , Kuan Han , Zhongming Liu

Children acquire language grounding with remarkable robustness from limited visuo-linguistic input in ways that surpass today's best large multimodal models. Recent research suggests current vision-language models (VLMs) trained on curated…

The language acquisition literature shows that children do not build their lexicon by segmenting the spoken input into phonemes and then building up words from them, but rather adopt a top-down approach and start by segmenting word-like…

计算与语言 · 计算机科学 2020-10-21 William N. Havard , Jean-Pierre Chevrot , Laurent Besacier

We propose a visually grounded speech model that acquires new words and their visual depictions from just a few word-image example pairs. Given a set of test images and a spoken query, we ask the model which image depicts the query word.…

计算与语言 · 计算机科学 2023-05-31 Leanne Nortje , Benjamin van Niekerk , Herman Kamper

There is growing interest in models that can learn from unlabelled speech paired with visual context. This setting is relevant for low-resource speech processing, robotics, and human language acquisition research. Here we study how a…

计算与语言 · 计算机科学 2018-11-02 Herman Kamper , Gregory Shakhnarovich , Karen Livescu

Distributional semantic models capture word-level meaning that is useful in many natural language processing tasks and have even been shown to capture cognitive aspects of word meaning. The majority of these models are purely text based,…

计算与语言 · 计算机科学 2022-03-31 Danny Merkx , Stefan L. Frank , Mirjam Ernestus

In the present paper we show that distributional information is particularly important when considering concept availability under implicit language learning conditions. Based on results from different behavioural experiments we argue that…

计算与语言 · 计算机科学 2016-06-30 Dimitrios Alikaniotis , John N. Williams

Neural network-based systems can now learn to locate the referents of words and phrases in images, answer questions about visual scenes, and execute symbolic instructions as first-person actors in partially-observable worlds. To achieve…

计算与语言 · 计算机科学 2019-10-02 Felix Hill , Stephen Clark , Karl Moritz Hermann , Phil Blunsom

We examine the benefits of visual context in training neural language models to perform next-word prediction. A multi-modal neural architecture is introduced that outperform its equivalent trained on language alone with a 2\% decrease in…

计算与语言 · 计算机科学 2019-06-05 Alexander G. Ororbia , Ankur Mali , Matthew A. Kelly , David Reitter

We present a visually-grounded language understanding model based on a study of how people verbally describe objects in scenes. The emphasis of the model is on the combination of individual word meanings to produce meanings for complex…

人工智能 · 计算机科学 2011-07-04 P. Gorniak , D. Roy

Visually grounded speech models learn from images paired with spoken captions. By tagging images with soft text labels using a trained visual classifier with a fixed vocabulary, previous work has shown that it is possible to train a model…

计算与语言 · 计算机科学 2021-06-24 Kayode Olaleye , Herman Kamper

Unlike most neural language models, humans learn language in a rich, multi-sensory and, often, multi-lingual environment. Current language models typically fail to fully capture the complexities of multilingual language use. We train an…

计算与语言 · 计算机科学 2023-02-15 Khai-Nguyen Nguyen , Zixin Tang , Ankur Mali , Alex Kelly

Recently, discrete latent variable models have received a surge of interest in both Natural Language Processing (NLP) and Computer Vision (CV), attributed to their comparable performance to the continuous counterparts in representation…

计算与语言 · 计算机科学 2022-11-08 Erxin Yu , Lan Du , Yuan Jin , Zhepei Wei , Yi Chang

3D visual grounding (3DVG) involves localizing entities in a 3D scene referred to by natural language text. Such models are useful for embodied AI and scene retrieval applications, which involve searching for objects or patterns using…

计算机视觉与模式识别 · 计算机科学 2025-07-09 Austin T. Wang , ZeMing Gong , Angel X. Chang
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