CompTIA DataX DY0-001 (V1) Practice Question

A drone-mounted perception stack must estimate the vehicle's 6-DoF pose while navigating under the forest canopy. The hardware supplies an IMU streaming inertial data at 200 Hz and a stereo RGB camera providing visual odometry at 30 FPS. To maintain an accurate, real-time state estimate between camera frames and to correct long-term drift, which sensor-fusion strategy is most appropriate for this scenario?

  • Perform homography-based image stitching to align the inertial and visual measurements.

  • Fuse the two pose estimates by averaging their Euclidean distances at each timestamp.

  • Use an Extended Kalman Filter that predicts motion with the IMU and applies visual-odometry updates when camera frames arrive.

  • Apply cross-modal non-maximum suppression to merge bounding boxes from IMU and camera outputs.

CompTIA DataX DY0-001 (V1)
Specialized Applications of Data Science
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