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HRI
2010
ACM

Toward understanding natural language directions

9 years 5 months ago
Toward understanding natural language directions
—Speaking using unconstrained natural language is an intuitive and flexible way for humans to interact with robots. Understanding this kind of linguistic input is challenging because diverse words and phrases must be mapped into structures that the robot can understand, and elements in those structures must be grounded in an uncertain environment. We present a system that follows natural language directions by extracting a sequence of spatial description clauses from the linguistic input and then infers the most probable path through the environment given only information about the environmental geometry and detected visible objects. We use a probabilistic graphical model that factors into three key components. The first component grounds landmark phrases such as “the computers” in the perceptual frame of the robot by exploiting co-occurrence statistics from a database of tagged images such as Flickr. Second, a spatial reasoning component judges how well spatial relations such ...
Thomas Kollar, Stefanie Tellex, Deb Roy, Nicholas
Added 17 May 2010
Updated 17 May 2010
Type Conference
Year 2010
Where HRI
Authors Thomas Kollar, Stefanie Tellex, Deb Roy, Nicholas Roy
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