Publication | Open Access
Mapping Instructions to Actions in 3D Environments with Visual Goal Prediction
137
Citations
37
References
2018
Year
Unknown Venue
Artificial IntelligenceEngineeringMachine LearningCognitive RoboticsIntelligent SystemsTask PlanningVisual Goal PredictionMultimodal LlmInstruction ExecutionAction PlanningRobot LearningRobotics PerceptionAction GenerationDesignVision Language ModelAction Model LearningComputer ScienceWorld ModelComputer Vision3D VisionGoal PredictionRobotics
We propose to decompose instruction execution to goal prediction and action generation. We design a model that maps raw visual observations to goals using LINGUNET, a language-conditioned image generation network, and then generates the actions required to complete them. Our model is trained from demonstration only without external resources. To evaluate our approach, we introduce two benchmarks for instruction following: LANI, a navigation task; and CHAI, where an agent executes household instructions. Our evaluation demonstrates the advantages of our model decomposition, and illustrates the challenges posed by our new benchmarks.
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