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Project description
ml-task-fusion
跨服务器llm和stable diffusion任务调用分发.
在 /etc/.ml-task-fusion/main.conf 中增加以下配置:
# redis 配置
REDIS_HOST="192.168.9.5"
REDIS_PASSWORD="123456"
REDIS_PORT=16379
# vllm 框架地址
VLLM_BASE_URL="http://118.145.131.117:8000/v1"
测试调用脚本:
import os
import mltaskfusion
from mltaskfusion.task.vllm import VllmData
from mltaskfusion.task.base import QueueJobModel
from mltaskfusion.utils import image
os.environ['CONFIG_FILE'] = "/etc/.ml-task-fusion/main.conf "
from mltaskfusion.db import queue_client
queue_cli = queue_client(queue_name="vllm-j76g")
from mltaskfusion.utils import helper
prompt = """
OCR the text of the image. Extract the text of the following fields and put it in a JSON format: 'why choose us', 'about us', 'company profile'.
If the 'why choose us', 'about us', 'company profile' fields do not appear in the image, simply return [].
Ignore Other: Ignore all other text information in the picture except for the above fields.
IMPORTANT:
1. YOU MUST RESPOND ONLY WITH VALID JSON. DO NOT INCLUDE ANY INTRODUCTION, EXPLANATION, OR EXTRA TEXT. ONLY PROVIDE THE JSON ARRAY.
2. NO ADDITIONAL TEXT.
Output format:
[
{
"field": "field name 1",
"sections": [
{
"title": "",
"content": "chunk1 text here"
},
{
"title": "",
"content": "chunk2 text here"
}
]
},
{
"field": "field name 2",
"sections": [
{
"title": "",
"content": "chunk3 text here"
},
{
"title": "",
"content": "chunk4 text here"
}
]
}
]
"""
data = VllmData(prompt=prompt, image_urls=[], max_tokens=1024, id=helper.unique_id())
result = queue_cli.push_and_response(job=QueueJobModel(id=data.id, data=data.model_dump()), seconds=120)
print(result)
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