Localizing the foreground before classification and fusing its classifier output with the full-image prediction improves accuracy and robustness to background shifts in supervised and zero-shot VLM recognition.
Mitigating the effect of incidental cor- relations on part-based learning
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Bringing the Context Back into Object Recognition, Robustly
Localizing the foreground before classification and fusing its classifier output with the full-image prediction improves accuracy and robustness to background shifts in supervised and zero-shot VLM recognition.