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System Evaluation
Target Localization Experiment
Experimental Setup
To evaluate the depth estimation accuracy of FoveaCam Duo, we designed a controlled target localization experiment. A small Statue of Liberty model is used as the target object and moved along a 3D-printed rail. The "∞" shaped rail contains slots at predefined positions, providing ground-truth locations of the target at each slot relative to the geometric center of the rail.
We place the rail at three distances from the camera system:
As a baseline, we evaluate a conventional wide-angle stereo pair with the same baseline
Figure 1
Target localization experiment setup. The target, a Statue of Liberty model, is placed at predefined slots along a 3D-printed ∞-shaped rail. The camera system is mounted on a linear rail that translates the center wide camera along the
Depth Estimation via Template Matching
For each stereo pair (foveated or wide-angle), we localize the target using normalized cross-correlation (NCC) template matching. A template of the Statue of Liberty model is manually extracted from one image and matched in the other to obtain corresponding pixel coordinates. Sub-pixel refinement with up to
where
Localization Results
Target Localization at
Figure 2
Estimated target trajectories on the ∞-shaped rail at
We are still working on improving the accuracy of FoveaCam Duo. The results shown here are subject to change.
At
Figure 3
Quantitative target localization error at
We are still working on improving the accuracy of FoveaCam Duo. The results shown here are subject to change.
These results confirm the fundamental advantage of foveated stereo: by concentrating angular resolution on the region of interest via MEMS mirror steering, the system maintains the effective disparity needed for accurate triangulation at long range, without sacrificing the ability to cover a wide field of regard.