Photogrammetry and VR for Comparing 2D and Immersive Linguistic Data Collection (Student Abstract)

Jacob Rubinstein, Cynthia Matuszek, Don Engel
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Abstract

The overarching goal of this work is to enable the collection of language describing a wide variety of objects viewed in virtual reality. We aim to create full 3D models from a small number of ‘keyframe’ images of objects found in the publicly available Grounded Language Dataset (GoLD) using photogrammetry. We will then collect linguistic descriptions by placing our models in virtual reality and having volunteers describe them. To evaluate the impact of virtual reality immersion on linguistic descriptions of the objects, we intend to apply contrastive learning to perform grounded language learning, then compare the descriptions collected from images (in GoLD) versus our models.
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比较二维和沉浸式语言数据采集的摄影测量和VR(学生摘要)
这项工作的首要目标是使描述虚拟现实中各种各样物体的语言集合成为可能。我们的目标是使用摄影测量技术,从公开可用的基础语言数据集(GoLD)中发现的少量“关键帧”对象图像中创建完整的3D模型。然后,我们将通过将我们的模型放置在虚拟现实中并让志愿者描述它们来收集语言描述。为了评估虚拟现实沉浸对物体语言描述的影响,我们打算应用对比学习来进行基础语言学习,然后将从图像(GoLD)收集的描述与我们的模型进行比较。
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