To efficiently collect training data for an off-the-shelf object detector, we consider the problem of segmenting and tracking non-rigid objects from RGBD sequences by introducing the spatio-temporal matrix with very few assumptions – no prior object model and no stationary sensor. Spatial temporal matrix is able to encode not only spatial associations between multiple objects, but also component-level spatio temporal associations that allow the correction of falsely segmented objects in the presence of various types of interaction among multiple objects. Extensive experiments over complex human/animal body motions with occlusions and body part motions demonstrate that our approach substantially improves tracking robustness and segmentation accuracy.
CITATION STYLE
Dai, K. X., Guo, H., Mordohai, P., Marinello, F., Pezzuolo, A., Feng, Q. L., & Niu, Q. D. (2019). NON-RIGID MULTI-BODY TRACKING in RGBD STREAMS. In ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences (Vol. 4, pp. 341–348). Copernicus GmbH. https://doi.org/10.5194/isprs-annals-IV-2-W5-341-2019
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