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Probabilistic GOSPA: A Metric for Performance Evaluation of Multi-Object Filters with Uncertainties

2024-12-16 · Yuxuan Xia, Ángel F. García-Fernández, Johan Karlsson, Kuo-Chu Chang, Ting Yuan, Lennart Svensson

This paper presents a probabilistic generalization of the Generalized Optimal Sub-Pattern Assignment (GOSPA) metric, termed P-GOSPA. The GOSPA metric has been widely used to evaluate the distance between finite sets, particularly in multi-object estimation applications. The P-GOSPA extends GOSPA into the space of multi-Bernoulli densities, incorporating inherent uncertainty in probabilistic multi-object representations. Additionally, P-GOSPA retains the interpretability of GOSPA, such as its decomposition into localization, missed detection, and false detection errors in a sound and meaningful manner. Examples and simulations are provided to demonstrate the efficacy of the proposed P-GOSPA metric.

📄 PDF Abstract BibTeX arXiv:2412.11482

Code (1)

yuhsuansia/probabilistic-gospa 공식 구현

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SET Dynamic Sparse Training method where weight mask is updated randomly periodically

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