Publication | Closed Access
3D Finger CAPE: Clicking Action and Position Estimation under Self-Occlusions in Egocentric Viewpoint
88
Citations
35
References
2015
Year
EngineeringHuman Pose Estimation3D Pose EstimationFinger CapeImage AnalysisTouch User InterfacePattern RecognitionMotion CaptureVirtual Reality3D User InteractionHuman MotionKinematicsEgocentric ViewpointRobot LearningGesture ProcessingNovel FrameworkMachine VisionComputer VisionGesture RecognitionEye TrackingExtended RealityPosition EstimationClick Action
In this paper we present a novel framework for simultaneous detection of click action and estimation of occluded fingertip positions from egocentric viewed single-depth image sequences. For the detection and estimation, a novel probabilistic inference based on knowledge priors of clicking motion and clicked position is presented. Based on the detection and estimation results, we were able to achieve a fine resolution level of a bare hand-based interaction with virtual objects in egocentric viewpoint. Our contributions include: (i) a rotation and translation invariant finger clicking action and position estimation using the combination of 2D image-based fingertip detection with 3D hand posture estimation in egocentric viewpoint. (ii) a novel spatio-temporal random forest, which performs the detection and estimation efficiently in a single framework. We also present (iii) a selection process utilizing the proposed clicking action detection and position estimation in an arm reachable AR/VR space, which does not require any additional device. Experimental results show that the proposed method delivers promising performance under frequent self-occlusions in the process of selecting objects in AR/VR space whilst wearing an egocentric-depth camera-attached HMD.
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