Update README.md
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README.md
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@@ -51,6 +51,8 @@ GLM-Image supports both text-to-image and image-to-image generation within a sin
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+ Text-to-image: generates high-detail images from textual descriptions, with particularly strong performance in information-dense scenarios.
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+ Image-to-image: supports a wide range of tasks, including image editing, style transfer, multi-subject consistency, and identity-preserving generation for people and objects.
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## Showcase
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### T2I with dense text and knowledge
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prompt=prompt,
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height=32 * 32,
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width=36 * 32,
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num_inference_steps=
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guidance_scale=1.5,
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generator=torch.Generator(device="cuda").manual_seed(42),
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).images[0]
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image=[image], # can input multiple images for multi-image-to-image generation such as [image, image1]
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height=33 * 32, # Must set height even it is same as input image
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width=32 * 32, # Must set width even it is same as input image
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num_inference_steps=
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guidance_scale=1.5,
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generator=torch.Generator(device="cuda").manual_seed(42),
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).images[0]
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+ Text-to-image: generates high-detail images from textual descriptions, with particularly strong performance in information-dense scenarios.
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+ Image-to-image: supports a wide range of tasks, including image editing, style transfer, multi-subject consistency, and identity-preserving generation for people and objects.
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> You can find the full GLM-Image Model implementation in the [transformers](https://github.com/huggingface/transformers/tree/main/src/transformers/models/glm_image) and [diffusers](https://github.com/huggingface/diffusers/tree/main/src/diffusers/pipelines/glm_image) libraries here.
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+
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## Showcase
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### T2I with dense text and knowledge
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prompt=prompt,
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height=32 * 32,
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width=36 * 32,
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num_inference_steps=50,
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guidance_scale=1.5,
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generator=torch.Generator(device="cuda").manual_seed(42),
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).images[0]
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image=[image], # can input multiple images for multi-image-to-image generation such as [image, image1]
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height=33 * 32, # Must set height even it is same as input image
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width=32 * 32, # Must set width even it is same as input image
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+
num_inference_steps=50,
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guidance_scale=1.5,
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generator=torch.Generator(device="cuda").manual_seed(42),
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).images[0]
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