fill screen height

#2
by ysharma HF staff - opened
Files changed (2) hide show
  1. README.md +1 -1
  2. app.py +92 -91
README.md CHANGED
@@ -4,7 +4,7 @@ emoji: 🏃
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  colorFrom: indigo
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  colorTo: blue
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  sdk: gradio
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- sdk_version: 5.10.0
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  app_file: app.py
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  pinned: false
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  license: apache-2.0
 
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  colorFrom: indigo
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  colorTo: blue
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  sdk: gradio
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+ sdk_version: 5.11.0
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  app_file: app.py
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  pinned: false
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  license: apache-2.0
app.py CHANGED
@@ -1,92 +1,93 @@
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- import gradio as gr
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- from transformers import TextIteratorStreamer, AutoModelForCausalLM, AutoProcessor
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- from threading import Thread
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- import re
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- import time
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- from PIL import Image
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- import torch
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- import argparse
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- import spaces
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-
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- parser = argparse.ArgumentParser()
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- parser.add_argument('--model', type=str, default='aya')
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- args = parser.parse_args()
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-
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- model_name = args.model
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-
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- processor = AutoProcessor.from_pretrained(f"WueNLP/centurio_{model_name}", trust_remote_code=True)
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- model = AutoModelForCausalLM.from_pretrained(f"WueNLP/centurio_{model_name}",
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- trust_remote_code=True,
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- torch_dtype=torch.bfloat16,
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- low_cpu_mem_usage=True
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- ).to("cuda:0")
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-
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- @spaces.GPU
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- def bot_streaming(message, history):
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- if message["files"]:
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- image = message["files"][-1]
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- else:
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- # if there's no image uploaded for this turn, look for images in the past turns
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- # kept inside tuples, take the last one
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- for hist in history:
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- if type(hist[0]) == tuple:
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- image = hist[0][0]
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-
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- if "qwen" in model_name:
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- if image is None:
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- prompt = f"<|im_start|>system\nYou are a helpful assistant.<|im_end|>\n<|im_start|>user\n{message['text']}<|im_end|>\n<|im_start|>assistant\n"
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- else:
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- image = Image.open(image).convert("RGB")
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- prompt = f"<|im_start|>system\nYou are a helpful assistant.<|im_end|>\n<|im_start|>user\n<image_placeholder>\n{message['text']}<|im_end|>\n<|im_start|>assistant\n"
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- else:
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- if image is None:
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- prompt = f"<BOS_TOKEN><|START_OF_TURN_TOKEN|><|USER_TOKEN|>{message['text']}<|END_OF_TURN_TOKEN|><|START_OF_TURN_TOKEN|><|CHATBOT_TOKEN|>"
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- else:
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- image = Image.open(image).convert("RGB")
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- prompt = f"<BOS_TOKEN><|START_OF_TURN_TOKEN|><|USER_TOKEN|><image_placeholder>\n{message['text']}<|END_OF_TURN_TOKEN|><|START_OF_TURN_TOKEN|><|CHATBOT_TOKEN|>"
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-
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- inputs = processor(text=prompt, images=image, return_tensors="pt").to("cuda:0", torch.bfloat16)
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-
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- streamer = TextIteratorStreamer(processor, **{"skip_special_tokens": False})
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- generation_kwargs = dict(inputs, streamer=streamer,
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- do_sample=True,
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- num_beams=1,
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- repetition_penalty=1.15,
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- temperature=0.7,
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- top_p=0.8,
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- top_k=20,
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- max_new_tokens=512, min_new_tokens=1)
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-
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- thread = Thread(target=model.generate, kwargs=generation_kwargs)
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- thread.start()
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-
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- buffer = ""
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- for new_text in streamer:
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- buffer += new_text
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- if "qwen" in model_name:
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- generated_text_without_prompt = buffer.split("<|im_start|>assistant\n")[-1].split("<|im_end|>")[0]
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- else:
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- generated_text_without_prompt = buffer.split("<|CHATBOT_TOKEN|>")[-1].split("<|END_OF_TURN_TOKEN|>")[0]
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-
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- time.sleep(0.04)
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- yield generated_text_without_prompt
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-
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-
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- description = ("""# [Centurio: On Drivers of Multilingual Ability of Large Vision-Language Model](gregor-ge.github.io/Centurio/)
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- Try [Centurio](https://huggingface.co/collections/WueNLP/centurio-677cf0ab6ddea874927a154e), a massively multilingual large vision-language model, in this demo (specifically, [Centurio Aya](https://huggingface.co/WueNLP/centurio_aya)).
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- Upload an image and start chatting about it, or try one of the examples below.
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-
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- Centurio is trained with 100 languages but quality of answers can differ greatly depending on your language.
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- Centurio is trained to read text in images but struggles with small text and with non-Latin scripts.
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-
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- > If you don't upload an image, you will receive an error.
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- > This demo does not support multi-image prompts or multi-turn dialog. Every new prompt will refer to the last image (if no new image is included) without prior dialog as context.""")
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-
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- demo = gr.ChatInterface(fn=bot_streaming, title="Centurio Demo",
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- examples=[{"text": "What is on the flower?", "files": ["./bee.jpg"]},
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- {"text": "How to make this pastry?", "files": ["./baklava.png"]}],
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- description=description,
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- stop_btn="Stop Generation",
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- multimodal=True
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- )
 
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  demo.launch(debug=True, share=True)
 
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+ import gradio as gr
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+ from transformers import TextIteratorStreamer, AutoModelForCausalLM, AutoProcessor
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+ from threading import Thread
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+ import re
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+ import time
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+ from PIL import Image
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+ import torch
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+ import argparse
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+ import spaces
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+
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+ parser = argparse.ArgumentParser()
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+ parser.add_argument('--model', type=str, default='aya')
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+ args = parser.parse_args()
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+
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+ model_name = args.model
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+
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+ processor = AutoProcessor.from_pretrained(f"WueNLP/centurio_{model_name}", trust_remote_code=True)
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+ model = AutoModelForCausalLM.from_pretrained(f"WueNLP/centurio_{model_name}",
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+ trust_remote_code=True,
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+ torch_dtype=torch.bfloat16,
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+ low_cpu_mem_usage=True
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+ ).to("cuda:0")
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+
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+ @spaces.GPU
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+ def bot_streaming(message, history):
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+ if message["files"]:
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+ image = message["files"][-1]
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+ else:
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+ # if there's no image uploaded for this turn, look for images in the past turns
30
+ # kept inside tuples, take the last one
31
+ for hist in history:
32
+ if type(hist[0]) == tuple:
33
+ image = hist[0][0]
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+
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+ if "qwen" in model_name:
36
+ if image is None:
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+ prompt = f"<|im_start|>system\nYou are a helpful assistant.<|im_end|>\n<|im_start|>user\n{message['text']}<|im_end|>\n<|im_start|>assistant\n"
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+ else:
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+ image = Image.open(image).convert("RGB")
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+ prompt = f"<|im_start|>system\nYou are a helpful assistant.<|im_end|>\n<|im_start|>user\n<image_placeholder>\n{message['text']}<|im_end|>\n<|im_start|>assistant\n"
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+ else:
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+ if image is None:
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+ prompt = f"<BOS_TOKEN><|START_OF_TURN_TOKEN|><|USER_TOKEN|>{message['text']}<|END_OF_TURN_TOKEN|><|START_OF_TURN_TOKEN|><|CHATBOT_TOKEN|>"
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+ else:
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+ image = Image.open(image).convert("RGB")
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+ prompt = f"<BOS_TOKEN><|START_OF_TURN_TOKEN|><|USER_TOKEN|><image_placeholder>\n{message['text']}<|END_OF_TURN_TOKEN|><|START_OF_TURN_TOKEN|><|CHATBOT_TOKEN|>"
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+
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+ inputs = processor(text=prompt, images=image, return_tensors="pt").to("cuda:0", torch.bfloat16)
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+
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+ streamer = TextIteratorStreamer(processor, **{"skip_special_tokens": False})
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+ generation_kwargs = dict(inputs, streamer=streamer,
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+ do_sample=True,
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+ num_beams=1,
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+ repetition_penalty=1.15,
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+ temperature=0.7,
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+ top_p=0.8,
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+ top_k=20,
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+ max_new_tokens=512, min_new_tokens=1)
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+
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+ thread = Thread(target=model.generate, kwargs=generation_kwargs)
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+ thread.start()
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+
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+ buffer = ""
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+ for new_text in streamer:
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+ buffer += new_text
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+ if "qwen" in model_name:
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+ generated_text_without_prompt = buffer.split("<|im_start|>assistant\n")[-1].split("<|im_end|>")[0]
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+ else:
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+ generated_text_without_prompt = buffer.split("<|CHATBOT_TOKEN|>")[-1].split("<|END_OF_TURN_TOKEN|>")[0]
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+
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+ time.sleep(0.04)
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+ yield generated_text_without_prompt
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+
74
+
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+ description = ("""# [Centurio: On Drivers of Multilingual Ability of Large Vision-Language Model](gregor-ge.github.io/Centurio/)
76
+ Try [Centurio](https://huggingface.co/collections/WueNLP/centurio-677cf0ab6ddea874927a154e), a massively multilingual large vision-language model, in this demo (specifically, [Centurio Aya](https://huggingface.co/WueNLP/centurio_aya)).
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+ Upload an image and start chatting about it, or try one of the examples below.
78
+
79
+ Centurio is trained with 100 languages but quality of answers can differ greatly depending on your language.
80
+ Centurio is trained to read text in images but struggles with small text and with non-Latin scripts.
81
+
82
+ > If you don't upload an image, you will receive an error.
83
+ > This demo does not support multi-image prompts or multi-turn dialog. Every new prompt will refer to the last image (if no new image is included) without prior dialog as context.""")
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+
85
+ demo = gr.ChatInterface(fn=bot_streaming, title="Centurio Demo",
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+ examples=[{"text": "What is on the flower?", "files": ["./bee.jpg"]},
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+ {"text": "How to make this pastry?", "files": ["./baklava.png"]}],
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+ description=description,
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+ stop_btn="Stop Generation",
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+ multimodal=True,
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+ fill_height=True,
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+ )
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  demo.launch(debug=True, share=True)