Connectivity-Driven Pseudo-Labeling Makes Stronger Cross-Domain Segmenters
–Neural Information Processing Systems
Presently, pseudo-labeling stands as a prevailing approach in cross-domain semantic segmentation, enhancing model efficacy by training with pixels assigned with reliable pseudo-labels. However, we identify two key limitations within this paradigm: (1) under relatively severe domain shifts, most selected reliable pixels appear speckled and remain noisy.
Neural Information Processing Systems
Mar-21-2026, 14:24:39 GMT
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