Delete app.py
Browse filesimport gradio as gr
from transformers import SamModel, SamProcessor
from PIL import Image
import torch
# Kleineres Modell (läuft stabiler auf CPU)
model_id = "facebook/sam-vit-base"
processor = SamProcessor.from_pretrained(model_id)
model = SamModel.from_pretrained(model_id)
def segment_image(image):
# Sicherstellen, dass CPU verwendet wird
device = torch.device("cpu")
model.to(device)
inputs = processor(images=image, return_tensors="pt").to(device)
with torch.no_grad():
outputs = model(**inputs)
# Masken ausgeben
masks = processor.post_process_masks(
outputs,
original_sizes=[image.size[::-1]],
reshaped_input_sizes=[image.size[::-1]]
)[0]
mask_array = (masks[0][0].cpu().numpy() * 255).astype("uint8")
mask_image = Image.fromarray(mask_array)
return mask_image
demo = gr.Interface(
fn=segment_image,
inputs=gr.Image(type="pil"),
outputs=gr.Image(type="pil"),
title="FishBoost Segment Anything (Meta SAM 2 Demo)",
description="Upload an image and get the segmented result using Meta’s SAM model (CPU compatible)."
)
demo.launch()
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import gradio as gr
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from transformers import SamModel, SamProcessor
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from PIL import Image
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import torch
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# SAM 2 Modell laden (von Meta)
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model_id = "facebook/sam-vit-huge"
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processor = SamProcessor.from_pretrained(model_id)
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model = SamModel.from_pretrained(model_id)
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def segment_image(image):
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inputs = processor(images=image, return_tensors="pt")
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with torch.no_grad():
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outputs = model(**inputs)
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masks = processor.post_process_masks(outputs, target_sizes=[image.size[::-1]])[0]
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mask_image = Image.fromarray((masks[0][0].cpu().numpy() * 255).astype("uint8"))
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return mask_image
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demo = gr.Interface(
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fn=segment_image,
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inputs=gr.Image(type="pil"),
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outputs=gr.Image(type="pil"),
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title="FishBoost Segment Anything (Meta SAM 2 Demo)",
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description="Upload an image and get a segmented result using Meta’s SAM 2 model."
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)
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demo.launch()
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