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In the field of personalized image generation, the ability to create images preserving concepts has significantly improved. Creating an image that naturally int
by guivr 2y ago
In the field of personalized image generation, the ability to create
images preserving concepts has significantly improved. Creating
an image that naturally integrates multiple concepts in a cohesive and visually appealing composition can indeed be challenging.
This paper introduces "InstantFamily," an approach that employs
a novel masked cross-attention mechanism and a multimodal embedding stack to achieve zero-shot multi-ID image generation. Our
method effectively preserves ID as it utilizes global and local features from a pre-trained face recognition model integrated with text
conditions. Additionally, our masked cross-attention mechanism
enables the precise control of multi-ID and composition in the generated images. We demonstrate the effectiveness of InstantFamily
through experiments showing its dominance in generating images
with multi-ID, while resolving well-known multi-ID generation
problems. Additionally, our model achieves state-of-the-art performance in both single-ID and multi-ID preservation. Furthermore,
our model exhibits remarkable scalability with a greater number of
ID preservation than it was originally trained with.