Add files using upload-large-folder tool
Browse files- demonstration/exp.ipynb +343 -0
demonstration/exp.ipynb
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1 |
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{
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"cells": [
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{
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"cell_type": "markdown",
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"metadata": {
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"id": "-b4-SW1aGOcF"
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},
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"source": [
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"**Hoags-2B-Exp**\n",
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"\n",
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"Qwen2VLForConditionalGeneration"
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+
]
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},
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{
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"cell_type": "code",
|
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"execution_count": null,
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"metadata": {
|
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"id": "oDmd1ZObGSel"
|
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},
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"outputs": [],
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"source": [
|
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"!pip install gradio spaces transformers accelerate numpy requests torch torchvision qwen-vl-utils av ipython reportlab fpdf python-docx pillow huggingface_hub"
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]
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+
},
|
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{
|
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"cell_type": "code",
|
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"execution_count": null,
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"metadata": {
|
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"id": "ovBSsRFhGbs2"
|
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},
|
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"outputs": [],
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"source": [
|
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"# Authenticate with Hugging Face\n",
|
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"from huggingface_hub import login\n",
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"\n",
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"# Log in to Hugging Face using the provided token\n",
|
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"hf_token = '---xxxx-xxx-xxx---'\n",
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"login(hf_token)\n",
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"\n",
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"#Demo\n",
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"import gradio as gr\n",
|
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"import spaces\n",
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"from transformers import Qwen2VLForConditionalGeneration, AutoProcessor, TextIteratorStreamer\n",
|
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"from qwen_vl_utils import process_vision_info\n",
|
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"import torch\n",
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"from PIL import Image\n",
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"import os\n",
|
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"import uuid\n",
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"import io\n",
|
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"from threading import Thread\n",
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"from reportlab.lib.pagesizes import A4\n",
|
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+
"from reportlab.lib.styles import getSampleStyleSheet\n",
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"from reportlab.lib import colors\n",
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54 |
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"from reportlab.platypus import SimpleDocTemplate, Image as RLImage, Paragraph, Spacer\n",
|
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"from reportlab.lib.units import inch\n",
|
56 |
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"from reportlab.pdfbase import pdfmetrics\n",
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"from reportlab.pdfbase.ttfonts import TTFont\n",
|
58 |
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"import docx\n",
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"from docx.enum.text import WD_ALIGN_PARAGRAPH\n",
|
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"\n",
|
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"# Define model options\n",
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"MODEL_OPTIONS = {\n",
|
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" \"Hoags\": \"prithivMLmods/Hoags-2B-Exp\",\n",
|
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"}\n",
|
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"\n",
|
66 |
+
"# Preload models and processors into CUDA\n",
|
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"models = {}\n",
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"processors = {}\n",
|
69 |
+
"for name, model_id in MODEL_OPTIONS.items():\n",
|
70 |
+
" print(f\"Loading {name}...\")\n",
|
71 |
+
" models[name] = Qwen2VLForConditionalGeneration.from_pretrained(\n",
|
72 |
+
" model_id,\n",
|
73 |
+
" trust_remote_code=True,\n",
|
74 |
+
" torch_dtype=torch.float16\n",
|
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" ).to(\"cuda\").eval()\n",
|
76 |
+
" processors[name] = AutoProcessor.from_pretrained(model_id, trust_remote_code=True)\n",
|
77 |
+
"\n",
|
78 |
+
"image_extensions = Image.registered_extensions()\n",
|
79 |
+
"\n",
|
80 |
+
"def identify_and_save_blob(blob_path):\n",
|
81 |
+
" \"\"\"Identifies if the blob is an image and saves it.\"\"\"\n",
|
82 |
+
" try:\n",
|
83 |
+
" with open(blob_path, 'rb') as file:\n",
|
84 |
+
" blob_content = file.read()\n",
|
85 |
+
" try:\n",
|
86 |
+
" Image.open(io.BytesIO(blob_content)).verify() # Check if it's a valid image\n",
|
87 |
+
" extension = \".png\" # Default to PNG for saving\n",
|
88 |
+
" media_type = \"image\"\n",
|
89 |
+
" except (IOError, SyntaxError):\n",
|
90 |
+
" raise ValueError(\"Unsupported media type. Please upload a valid image.\")\n",
|
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+
"\n",
|
92 |
+
" filename = f\"temp_{uuid.uuid4()}_media{extension}\"\n",
|
93 |
+
" with open(filename, \"wb\") as f:\n",
|
94 |
+
" f.write(blob_content)\n",
|
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+
"\n",
|
96 |
+
" return filename, media_type\n",
|
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+
"\n",
|
98 |
+
" except FileNotFoundError:\n",
|
99 |
+
" raise ValueError(f\"The file {blob_path} was not found.\")\n",
|
100 |
+
" except Exception as e:\n",
|
101 |
+
" raise ValueError(f\"An error occurred while processing the file: {e}\")\n",
|
102 |
+
"\n",
|
103 |
+
"@spaces.GPU\n",
|
104 |
+
"def qwen_inference(model_name, media_input, text_input=None):\n",
|
105 |
+
" \"\"\"Handles inference for the selected model.\"\"\"\n",
|
106 |
+
" model = models[model_name]\n",
|
107 |
+
" processor = processors[model_name]\n",
|
108 |
+
"\n",
|
109 |
+
" if isinstance(media_input, str):\n",
|
110 |
+
" media_path = media_input\n",
|
111 |
+
" if media_path.endswith(tuple([i for i in image_extensions.keys()])):\n",
|
112 |
+
" media_type = \"image\"\n",
|
113 |
+
" else:\n",
|
114 |
+
" try:\n",
|
115 |
+
" media_path, media_type = identify_and_save_blob(media_input)\n",
|
116 |
+
" except Exception as e:\n",
|
117 |
+
" raise ValueError(\"Unsupported media type. Please upload a valid image.\")\n",
|
118 |
+
"\n",
|
119 |
+
" messages = [\n",
|
120 |
+
" {\n",
|
121 |
+
" \"role\": \"user\",\n",
|
122 |
+
" \"content\": [\n",
|
123 |
+
" {\n",
|
124 |
+
" \"type\": media_type,\n",
|
125 |
+
" media_type: media_path\n",
|
126 |
+
" },\n",
|
127 |
+
" {\"type\": \"text\", \"text\": text_input},\n",
|
128 |
+
" ],\n",
|
129 |
+
" }\n",
|
130 |
+
" ]\n",
|
131 |
+
"\n",
|
132 |
+
" text = processor.apply_chat_template(\n",
|
133 |
+
" messages, tokenize=False, add_generation_prompt=True\n",
|
134 |
+
" )\n",
|
135 |
+
" image_inputs, _ = process_vision_info(messages)\n",
|
136 |
+
" inputs = processor(\n",
|
137 |
+
" text=[text],\n",
|
138 |
+
" images=image_inputs,\n",
|
139 |
+
" padding=True,\n",
|
140 |
+
" return_tensors=\"pt\",\n",
|
141 |
+
" ).to(\"cuda\")\n",
|
142 |
+
"\n",
|
143 |
+
" streamer = TextIteratorStreamer(\n",
|
144 |
+
" processor.tokenizer, skip_prompt=True, skip_special_tokens=True\n",
|
145 |
+
" )\n",
|
146 |
+
" generation_kwargs = dict(inputs, streamer=streamer, max_new_tokens=1024)\n",
|
147 |
+
"\n",
|
148 |
+
" thread = Thread(target=model.generate, kwargs=generation_kwargs)\n",
|
149 |
+
" thread.start()\n",
|
150 |
+
"\n",
|
151 |
+
" buffer = \"\"\n",
|
152 |
+
" for new_text in streamer:\n",
|
153 |
+
" buffer += new_text\n",
|
154 |
+
" # Remove <|im_end|> or similar tokens from the output\n",
|
155 |
+
" buffer = buffer.replace(\"<|im_end|>\", \"\")\n",
|
156 |
+
" yield buffer\n",
|
157 |
+
"\n",
|
158 |
+
"def format_plain_text(output_text):\n",
|
159 |
+
" \"\"\"Formats the output text as plain text without LaTeX delimiters.\"\"\"\n",
|
160 |
+
" # Remove LaTeX delimiters and convert to plain text\n",
|
161 |
+
" plain_text = output_text.replace(\"\\\\(\", \"\").replace(\"\\\\)\", \"\").replace(\"\\\\[\", \"\").replace(\"\\\\]\", \"\")\n",
|
162 |
+
" return plain_text\n",
|
163 |
+
"\n",
|
164 |
+
"def generate_document(media_path, output_text, file_format, font_size, line_spacing, alignment, image_size):\n",
|
165 |
+
" \"\"\"Generates a document with the input image and plain text output.\"\"\"\n",
|
166 |
+
" plain_text = format_plain_text(output_text)\n",
|
167 |
+
" if file_format == \"pdf\":\n",
|
168 |
+
" return generate_pdf(media_path, plain_text, font_size, line_spacing, alignment, image_size)\n",
|
169 |
+
" elif file_format == \"docx\":\n",
|
170 |
+
" return generate_docx(media_path, plain_text, font_size, line_spacing, alignment, image_size)\n",
|
171 |
+
"\n",
|
172 |
+
"def generate_pdf(media_path, plain_text, font_size, line_spacing, alignment, image_size):\n",
|
173 |
+
" \"\"\"Generates a PDF document.\"\"\"\n",
|
174 |
+
" filename = f\"output_{uuid.uuid4()}.pdf\"\n",
|
175 |
+
" doc = SimpleDocTemplate(\n",
|
176 |
+
" filename,\n",
|
177 |
+
" pagesize=A4,\n",
|
178 |
+
" rightMargin=inch,\n",
|
179 |
+
" leftMargin=inch,\n",
|
180 |
+
" topMargin=inch,\n",
|
181 |
+
" bottomMargin=inch\n",
|
182 |
+
" )\n",
|
183 |
+
" styles = getSampleStyleSheet()\n",
|
184 |
+
" styles[\"Normal\"].fontSize = int(font_size)\n",
|
185 |
+
" styles[\"Normal\"].leading = int(font_size) * line_spacing\n",
|
186 |
+
" styles[\"Normal\"].alignment = {\n",
|
187 |
+
" \"Left\": 0,\n",
|
188 |
+
" \"Center\": 1,\n",
|
189 |
+
" \"Right\": 2,\n",
|
190 |
+
" \"Justified\": 4\n",
|
191 |
+
" }[alignment]\n",
|
192 |
+
"\n",
|
193 |
+
" story = []\n",
|
194 |
+
"\n",
|
195 |
+
" # Add image with size adjustment\n",
|
196 |
+
" image_sizes = {\n",
|
197 |
+
" \"Small\": (200, 200),\n",
|
198 |
+
" \"Medium\": (400, 400),\n",
|
199 |
+
" \"Large\": (600, 600)\n",
|
200 |
+
" }\n",
|
201 |
+
" img = RLImage(media_path, width=image_sizes[image_size][0], height=image_sizes[image_size][1])\n",
|
202 |
+
" story.append(img)\n",
|
203 |
+
" story.append(Spacer(1, 12))\n",
|
204 |
+
"\n",
|
205 |
+
" # Add plain text output\n",
|
206 |
+
" text = Paragraph(plain_text, styles[\"Normal\"])\n",
|
207 |
+
" story.append(text)\n",
|
208 |
+
"\n",
|
209 |
+
" doc.build(story)\n",
|
210 |
+
" return filename\n",
|
211 |
+
"\n",
|
212 |
+
"def generate_docx(media_path, plain_text, font_size, line_spacing, alignment, image_size):\n",
|
213 |
+
" \"\"\"Generates a DOCX document.\"\"\"\n",
|
214 |
+
" filename = f\"output_{uuid.uuid4()}.docx\"\n",
|
215 |
+
" doc = docx.Document()\n",
|
216 |
+
"\n",
|
217 |
+
" # Add image with size adjustment\n",
|
218 |
+
" image_sizes = {\n",
|
219 |
+
" \"Small\": docx.shared.Inches(2),\n",
|
220 |
+
" \"Medium\": docx.shared.Inches(4),\n",
|
221 |
+
" \"Large\": docx.shared.Inches(6)\n",
|
222 |
+
" }\n",
|
223 |
+
" doc.add_picture(media_path, width=image_sizes[image_size])\n",
|
224 |
+
" doc.add_paragraph()\n",
|
225 |
+
"\n",
|
226 |
+
" # Add plain text output\n",
|
227 |
+
" paragraph = doc.add_paragraph()\n",
|
228 |
+
" paragraph.paragraph_format.line_spacing = line_spacing\n",
|
229 |
+
" paragraph.paragraph_format.alignment = {\n",
|
230 |
+
" \"Left\": WD_ALIGN_PARAGRAPH.LEFT,\n",
|
231 |
+
" \"Center\": WD_ALIGN_PARAGRAPH.CENTER,\n",
|
232 |
+
" \"Right\": WD_ALIGN_PARAGRAPH.RIGHT,\n",
|
233 |
+
" \"Justified\": WD_ALIGN_PARAGRAPH.JUSTIFY\n",
|
234 |
+
" }[alignment]\n",
|
235 |
+
" run = paragraph.add_run(plain_text)\n",
|
236 |
+
" run.font.size = docx.shared.Pt(int(font_size))\n",
|
237 |
+
"\n",
|
238 |
+
" doc.save(filename)\n",
|
239 |
+
" return filename\n",
|
240 |
+
"\n",
|
241 |
+
"# CSS for output styling\n",
|
242 |
+
"css = \"\"\"\n",
|
243 |
+
" #output {\n",
|
244 |
+
" height: 500px;\n",
|
245 |
+
" overflow: auto;\n",
|
246 |
+
" border: 1px solid #ccc;\n",
|
247 |
+
" }\n",
|
248 |
+
".submit-btn {\n",
|
249 |
+
" background-color: #cf3434 !important;\n",
|
250 |
+
" color: white !important;\n",
|
251 |
+
"}\n",
|
252 |
+
".submit-btn:hover {\n",
|
253 |
+
" background-color: #ff2323 !important;\n",
|
254 |
+
"}\n",
|
255 |
+
".download-btn {\n",
|
256 |
+
" background-color: #35a6d6 !important;\n",
|
257 |
+
" color: white !important;\n",
|
258 |
+
"}\n",
|
259 |
+
".download-btn:hover {\n",
|
260 |
+
" background-color: #22bcff !important;\n",
|
261 |
+
"}\n",
|
262 |
+
"\"\"\"\n",
|
263 |
+
"\n",
|
264 |
+
"# Gradio app setup\n",
|
265 |
+
"with gr.Blocks(css=css) as demo:\n",
|
266 |
+
" gr.Markdown(\"# Hoags-2B-Exp\")\n",
|
267 |
+
"\n",
|
268 |
+
" with gr.Tab(label=\"Image Input\"):\n",
|
269 |
+
"\n",
|
270 |
+
" with gr.Row():\n",
|
271 |
+
" with gr.Column():\n",
|
272 |
+
" model_choice = gr.Dropdown(\n",
|
273 |
+
" label=\"Model Selection\",\n",
|
274 |
+
" choices=list(MODEL_OPTIONS.keys()),\n",
|
275 |
+
" value=\"Hoags\"\n",
|
276 |
+
" )\n",
|
277 |
+
" input_media = gr.File(\n",
|
278 |
+
" label=\"Upload Image\", type=\"filepath\"\n",
|
279 |
+
" )\n",
|
280 |
+
" text_input = gr.Textbox(label=\"Question\", placeholder=\"Ask a question about the image...\")\n",
|
281 |
+
" submit_btn = gr.Button(value=\"Submit\", elem_classes=\"submit-btn\")\n",
|
282 |
+
"\n",
|
283 |
+
" with gr.Column():\n",
|
284 |
+
" output_text = gr.Textbox(label=\"Output Text\", lines=10)\n",
|
285 |
+
" plain_text_output = gr.Textbox(label=\"Standardized Plain Text\", lines=10)\n",
|
286 |
+
"\n",
|
287 |
+
" submit_btn.click(\n",
|
288 |
+
" qwen_inference, [model_choice, input_media, text_input], [output_text]\n",
|
289 |
+
" ).then(\n",
|
290 |
+
" lambda output_text: format_plain_text(output_text), [output_text], [plain_text_output]\n",
|
291 |
+
" )\n",
|
292 |
+
"\n",
|
293 |
+
" # Add examples directly usable by clicking\n",
|
294 |
+
" with gr.Row():\n",
|
295 |
+
" with gr.Column():\n",
|
296 |
+
" line_spacing = gr.Dropdown(\n",
|
297 |
+
" choices=[0.5, 1.0, 1.15, 1.5, 2.0, 2.5, 3.0],\n",
|
298 |
+
" value=1.5,\n",
|
299 |
+
" label=\"Line Spacing\"\n",
|
300 |
+
" )\n",
|
301 |
+
" font_size = gr.Dropdown(\n",
|
302 |
+
" choices=[\"8\", \"10\", \"12\", \"14\", \"16\", \"18\", \"20\", \"22\", \"24\"],\n",
|
303 |
+
" value=\"18\",\n",
|
304 |
+
" label=\"Font Size\"\n",
|
305 |
+
" )\n",
|
306 |
+
" alignment = gr.Dropdown(\n",
|
307 |
+
" choices=[\"Left\", \"Center\", \"Right\", \"Justified\"],\n",
|
308 |
+
" value=\"Justified\",\n",
|
309 |
+
" label=\"Text Alignment\"\n",
|
310 |
+
" )\n",
|
311 |
+
" image_size = gr.Dropdown(\n",
|
312 |
+
" choices=[\"Small\", \"Medium\", \"Large\"],\n",
|
313 |
+
" value=\"Small\",\n",
|
314 |
+
" label=\"Image Size\"\n",
|
315 |
+
" )\n",
|
316 |
+
" file_format = gr.Radio([\"pdf\", \"docx\"], label=\"File Format\", value=\"pdf\")\n",
|
317 |
+
" get_document_btn = gr.Button(value=\"Get Document\", elem_classes=\"download-btn\")\n",
|
318 |
+
"\n",
|
319 |
+
" get_document_btn.click(\n",
|
320 |
+
" generate_document, [input_media, output_text, file_format, font_size, line_spacing, alignment, image_size], gr.File(label=\"Download Document\")\n",
|
321 |
+
" )\n",
|
322 |
+
"\n",
|
323 |
+
"demo.launch(debug=True)"
|
324 |
+
]
|
325 |
+
}
|
326 |
+
],
|
327 |
+
"metadata": {
|
328 |
+
"accelerator": "GPU",
|
329 |
+
"colab": {
|
330 |
+
"gpuType": "T4",
|
331 |
+
"provenance": []
|
332 |
+
},
|
333 |
+
"kernelspec": {
|
334 |
+
"display_name": "Python 3",
|
335 |
+
"name": "python3"
|
336 |
+
},
|
337 |
+
"language_info": {
|
338 |
+
"name": "python"
|
339 |
+
}
|
340 |
+
},
|
341 |
+
"nbformat": 4,
|
342 |
+
"nbformat_minor": 0
|
343 |
+
}
|