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Semantically Aligned Gradient-Driven Context-Preserving Image Editing

arXiv · AI, language, vision and robotics · article · Sep 11, 2026 · UTC

Instruction-guided image editing has a training-time blind spot. Generative editors are never required to semantically verify whether their outputs actually satisfy the instruction. Supervision stops at reconstruction and input textual-level conditioning. This produces incomplete edits, spatial spillover, and poor localization. We present IABEdit, a model-agnostic framework that embeds differentiable semantic verification into training. A frozen vision-language model extracts spatially-aware descriptors from the ground-truth edit. A trainable aligner then reproduces them from the generated out

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First collected: 2026-09-20T18:22:04.777Z. This is not the publication date.