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# main.py | |
# 主入口文件,负责启动 Gradio UI | |
import gradio as gr | |
from config import SCENE_CONFIGS, MODEL_CHOICES, MODE_CHOICES | |
from backend_api import submit_to_backend, get_task_status, get_task_result | |
from logging_utils import log_access, log_submission, is_request_allowed | |
from simulation import stream_simulation_results, convert_to_h264 | |
from ui_components import update_history_display, update_scene_display, update_log_display, get_scene_instruction | |
import os | |
from datetime import datetime | |
SESSION_TASKS = {} | |
def run_simulation(scene, model, mode, prompt, history, request: gr.Request): | |
timestamp = datetime.now().strftime("%Y-%m-%d %H:%M:%S") | |
scene_desc = SCENE_CONFIGS.get(scene, {}).get("description", scene) | |
user_ip = request.client.host if request else "unknown" | |
session_id = request.session_hash | |
if not is_request_allowed(user_ip): | |
log_submission(scene, prompt, model, user_ip, "IP blocked temporarily") | |
raise gr.Error("Too many requests from this IP. Please wait and try again one minute later.") | |
# 传递model和mode给后端 | |
#submission_result = submit_to_backend(scene, prompt, user=model) # 可根据后端接口调整 | |
submission_result = submit_to_backend(scene, prompt, mode, model, user_ip) | |
if submission_result.get("status") != "pending": | |
log_submission(scene, prompt, model, user_ip, "Submission failed") | |
raise gr.Error(f"Submission failed: {submission_result.get('message', 'unknown issue')}") | |
try: | |
task_id = submission_result["task_id"] | |
SESSION_TASKS[session_id] = task_id | |
gr.Info(f"Simulation started, task_id: {task_id}") | |
import time | |
time.sleep(5) | |
status = get_task_status(task_id) | |
result_folder = status.get("result", "") | |
except Exception as e: | |
log_submission(scene, prompt, model, user_ip, str(e)) | |
raise gr.Error(f"error occurred when parsing submission result from backend: {str(e)}") | |
if not os.path.exists(result_folder): | |
log_submission(scene, prompt, model, user_ip, "Result folder provided by backend doesn't exist") | |
raise gr.Error(f"Result folder provided by backend doesn't exist: <PATH>{result_folder}") | |
try: | |
for video_path in stream_simulation_results(result_folder, task_id): | |
if video_path: | |
yield video_path, history | |
except Exception as e: | |
log_submission(scene, prompt, model, user_ip, str(e)) | |
raise gr.Error(f"流式输出过程中出错: {str(e)}") | |
status = get_task_status(task_id) | |
if status.get("status") == "completed": | |
video_path = os.path.join(status.get("result"), "output.mp4") | |
video_path = convert_to_h264(video_path) | |
new_entry = { | |
"timestamp": timestamp, | |
"scene": scene, | |
"model": model, | |
"mode": mode, | |
"prompt": prompt, | |
"video_path": video_path | |
} | |
updated_history = history + [new_entry] | |
if len(updated_history) > 10: | |
updated_history = updated_history[:10] | |
log_submission(scene, prompt, model, user_ip, "success") | |
gr.Info("Simulation completed successfully!") | |
yield None, updated_history | |
elif status.get("status") == "failed": | |
log_submission(scene, prompt, model, user_ip, status.get('result', 'backend error')) | |
raise gr.Error(f"任务执行失败: {status.get('result', 'backend 未知错误')}") | |
yield None, history | |
elif status.get("status") == "terminated": | |
log_submission(scene, prompt, model, user_ip, "terminated") | |
video_path = os.path.join(result_folder, "output.mp4") | |
if os.path.exists(video_path): | |
return f"⚠️ 任务 {task_id} 被终止,已生成部分结果", video_path, history | |
else: | |
return f"⚠️ 任务 {task_id} 被终止,未生成结果", None, history | |
else: | |
log_submission(scene, prompt, model, user_ip, "missing task's status from backend") | |
raise gr.Error("missing task's status from backend") | |
yield None, history | |
def cleanup_session(request: gr.Request): | |
session_id = request.session_hash | |
task_id = SESSION_TASKS.pop(session_id, None) | |
from config import BACKEND_URL | |
import requests | |
if task_id: | |
try: | |
requests.post(f"{BACKEND_URL}/predict/terminate/{task_id}", timeout=3) | |
except Exception: | |
pass | |
def record_access(request: gr.Request): | |
user_ip = request.client.host if request else "unknown" | |
user_agent = request.headers.get("user-agent", "unknown") | |
log_access(user_ip, user_agent) | |
return update_log_display() | |
custom_css = """ | |
#simulation-panel { | |
border-radius: 8px; | |
padding: 20px; | |
background: #f9f9f9; | |
box-shadow: 0 2px 4px rgba(0,0,0,0.1); | |
} | |
#result-panel { | |
border-radius: 8px; | |
padding: 20px; | |
background: #f0f8ff; | |
} | |
.dark #simulation-panel { background: #2a2a2a; } | |
.dark #result-panel { background: #1a2a3a; } | |
.history-container { | |
max-height: 600px; | |
overflow-y: auto; | |
margin-top: 20px; | |
} | |
.history-accordion { | |
margin-bottom: 10px; | |
} | |
""" | |
header_html = """ | |
<div style="display: flex; justify-content: space-between; align-items: center; width: 100%; margin-bottom: 20px; padding: 20px; background: linear-gradient(135deg, #e0e5ec 0%, #a7b5d0 100%); border-radius: 8px; box-shadow: 0 2px 8px rgba(0,0,0,0.1);"> | |
<div style="display: flex; align-items: center;"> | |
<img src="https://www.shlab.org.cn/static/img/index_14.685f6559.png" alt="Institution Logo" style="height: 60px; margin-right: 20px;"> | |
<div> | |
<h1 style="margin: 0; color: #2c3e50; font-weight: 600;">🤖 InternManip Model Inference Demo</h1> | |
<p style="margin: 4px 0 0 0; color: #5d6d7e; font-size: 0.9em;">Model trained on InternManip framework</p> | |
</div> | |
</div> | |
<div style="display: flex; gap: 15px; align-items: center;"> | |
<a href="https://github.com/OpenRobotLab" target="_blank" style="text-decoration: none; transition: transform 0.2s;" onmouseover="this.style.transform='scale(1.1)'" onmouseout="this.style.transform='scale(1)'"> | |
<img src="https://github.githubassets.com/images/modules/logos_page/GitHub-Mark.png" alt="GitHub" style="height: 30px;"> | |
</a> | |
<a href="https://huggingface.co/OpenRobotLab" target="_blank" style="text-decoration: none; transition: transform 0.2s;" onmouseover="this.style.transform='scale(1.1)'" onmouseout="this.style.transform='scale(1)'"> | |
<img src="https://huggingface.co/front/assets/huggingface_logo-noborder.svg" alt="HuggingFace" style="height: 30px;"> | |
</a> | |
<a href="http://123.57.187.96:55004/" target="_blank"> | |
<button style="padding: 8px 15px; background: #3498db; color: white; border: none; border-radius: 4px; cursor: pointer; font-weight: 500; transition: all 0.2s;" | |
onmouseover="this.style.backgroundColor='#2980b9'; this.style.transform='scale(1.05)'" | |
onmouseout="this.style.backgroundColor='#3498db'; this.style.transform='scale(1)'"> | |
Go to InternManip Demo | |
</button> | |
</a> | |
</div> | |
</div> | |
""" | |
with gr.Blocks(title="InternNav Model Inference Demo", css=custom_css) as demo: | |
gr.HTML(header_html) | |
history_state = gr.State([]) | |
with gr.Row(): | |
with gr.Column(elem_id="simulation-panel"): | |
gr.Markdown("### Simulation Settings") | |
scene_dropdown = gr.Dropdown( | |
label="Choose a scene", | |
choices=list(SCENE_CONFIGS.keys()), | |
value="demo1", | |
interactive=True | |
) | |
scene_description = gr.Markdown("") | |
scene_preview = gr.Image( | |
label="Scene Preview", | |
elem_classes=["scene-preview"], | |
interactive=False | |
) | |
prompt_input = gr.Textbox( | |
label="Navigation Prompt", | |
value="Walk past the left side of the bed and stop in the doorway.", | |
placeholder="e.g.: 'Walk past the left side of the bed and stop in the doorway.'", | |
lines=2, | |
max_lines=4 | |
) | |
model_dropdown = gr.Dropdown( | |
label="Chose a pretrained model", | |
choices=MODEL_CHOICES, | |
value=MODEL_CHOICES[0], | |
interactive=True | |
) | |
mode_dropdown = gr.Dropdown( | |
label="Select Mode", | |
choices=MODE_CHOICES, | |
value=MODE_CHOICES[0], | |
interactive=True | |
) | |
scene_dropdown.change( | |
fn=lambda scene: [update_scene_display(scene)[0], update_scene_display(scene)[1], get_scene_instruction(scene)], | |
inputs=scene_dropdown, | |
outputs=[scene_description, scene_preview, prompt_input] | |
) | |
submit_btn = gr.Button("Start Navigation Simulation", variant="primary") | |
with gr.Column(elem_id="result-panel"): | |
gr.Markdown("### Latest Simulation Result") | |
video_output = gr.Video( | |
label="Live", | |
interactive=False, | |
format="mp4", | |
autoplay=True, | |
streaming=True | |
) | |
with gr.Column() as history_container: | |
gr.Markdown("### History") | |
gr.Markdown("#### History will be reset after refresh") | |
history_slots = [] | |
for i in range(10): | |
with gr.Column(visible=False) as slot: | |
with gr.Accordion(visible=False, open=False) as accordion: | |
video = gr.Video(interactive=False) | |
detail_md = gr.Markdown() | |
history_slots.append((slot, accordion, video, detail_md)) | |
with gr.Accordion("查看系统访问日志(DEV ONLY)", open=False): | |
logs_display = gr.Markdown() | |
refresh_logs_btn = gr.Button("刷新日志", variant="secondary") | |
refresh_logs_btn.click( | |
update_log_display, | |
outputs=logs_display | |
) | |
gr.Examples( | |
examples=[ | |
["demo1", "rdp", "vlnPE", "Walk past the left side of the bed and stop in the doorway."], | |
["demo2", "rdp", "vlnPE", "Walk through the bathroom, past the sink and toilet. Stop in front of the counter with the two suitcase."], | |
["demo3", "rdp", "vlnPE", "Do a U-turn. Walk forward through the kitchen, heading to the black door. Walk out of the door and take a right onto the deck. Walk out on to the deck and stop."], | |
["demo4", "rdp", "vlnPE", "Walk out of bathroom and stand on white bath mat."], | |
["demo5", "rdp", "vlnPE", "Walk straight through the double wood doors, follow the red carpet straight to the next doorway and stop where the carpet splits off."] | |
], | |
inputs=[scene_dropdown, model_dropdown, mode_dropdown, prompt_input], | |
label="Navigation Task Examples" | |
) | |
submit_btn.click( | |
fn=run_simulation, | |
inputs=[scene_dropdown, model_dropdown, mode_dropdown, prompt_input, history_state], | |
outputs=[video_output, history_state], | |
queue=True, | |
api_name="run_simulation" | |
).then( | |
fn=update_history_display, | |
inputs=history_state, | |
outputs=[comp for slot in history_slots for comp in slot], | |
queue=True | |
).then( | |
fn=update_log_display, | |
outputs=logs_display, | |
) | |
demo.load( | |
fn=lambda: update_scene_display("demo1"), | |
outputs=[scene_description, scene_preview] | |
).then( | |
fn=update_log_display, | |
outputs=logs_display | |
) | |
demo.load( | |
fn=record_access, | |
inputs=None, | |
outputs=logs_display, | |
queue=False | |
) | |
demo.queue(default_concurrency_limit=8) | |
demo.unload(fn=cleanup_session) | |
if __name__ == "__main__": | |
demo.launch( | |
server_name="0.0.0.0", | |
server_port=7860, # Hugging Face Space默认端口 | |
share=False, | |
debug=False, # 生产环境建议关闭debug | |
allowed_paths=["./assets", "./logs"] # 修改为相对路径 | |
) |