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Calibrated depth and color cameras for accurate 3D interaction in a stereoscopic augmented reality environment.

, , , , and . J. Vis. Commun. Image Represent., 25 (1): 227-237 (2014)

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Integrating High Fidelity Eye, Head and World Tracking in a Wearable Device., , , , and . ETRA Adjunct, page 9:1-9:4. ACM, (2021)High-resolution eye tracking using scanning laser ophthalmoscopy., , , , and . ETRA, page 58:1-58:3. ACM, (2019)Vergence control learning through real V1 disparity tuning curves., , and . NER, page 332-335. IEEE, (2015)Solving Parallax Error for 3D Eye Tracking., , and . ETRA Adjunct, page 8:1-8:4. ACM, (2021)A Stereoscopic Augmented Reality System for the Veridical Perception of the 3D Scene Layout., , , , , and . VISAPP (2), page 15-23. SciTePress, (2012)Assessment of stereoscopic depth perception in augmented reality environments based on low-cost technologies., , , , , , and . APGV, page 111. ACM, (2011)Learning Eye Vergence Control from a Distributed Disparity Representation., , , and . Int. J. Neural Syst., 20 (4): 267-278 (2010)Population coding for a reward-modulated Hebbian learning of vergence control., , , , and . IJCNN, page 1-8. IEEE, (2013)Calibrated depth and color cameras for accurate 3D interaction in a stereoscopic augmented reality environment., , , , and . J. Vis. Commun. Image Represent., 25 (1): 227-237 (2014)An Integrated System based on Binocular Learned Receptive Fields for Saccade-vergence on Visually Salient Targets., , , and . VISIGRAPP (6: VISAPP), page 204-215. SciTePress, (2017)