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dsProject/dsLightRag/Test/S4_QVQLanguage.py

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2025-08-14 15:45:08 +08:00
from openai import OpenAI
import os
# 初始化OpenAI客户端
client = OpenAI(
api_key="sk-01d13a39e09844038322108ecdbd1bbc",
base_url="https://dashscope.aliyuncs.com/compatible-mode/v1"
)
reasoning_content = "" # 定义完整思考过程
answer_content = "" # 定义完整回复
is_answering = False # 判断是否结束思考过程并开始回复
prompt = """
def 几何预处理(text):
# 坐标系标准化
建立参考坐标系(以最长边为x轴基准)
计算各点相对坐标(保留2位小数)
# 约束显式化
"直角在上方"转换为 if 角C是直角
设置C.y = max(A.y, B.y) + offset
添加约束 Angle(A,C,B)=90°
# 指令优化
移除所有文字描述
输出结构化指令元组 return [ ('CreatePoint', 'A', (x1,y1)), ('SetConstraint', 'Perpendicular', ['AC','BC']), ('VisualHint', 'C', {'color':'red','size':8}) ]
"""
# 创建聊天完成请求
completion = client.chat.completions.create(
model="qvq-max", # 此处以 qvq-max 为例,可按需更换模型名称
messages=[
{
"role": "user",
"content": [
{
"type": "image_url",
"image_url": {
"url": "https://dsideal.obs.cn-north-1.myhuaweicloud.com/wb/math.jpg"
},
},
{"type": "text",
"text": prompt},
],
},
],
stream=True,
)
print("\n" + "=" * 20 + "思考过程" + "=" * 20 + "\n")
for chunk in completion:
# 如果chunk.choices为空则打印usage
if not chunk.choices:
print("\nUsage:")
print(chunk.usage)
else:
delta = chunk.choices[0].delta
# 打印思考过程
if hasattr(delta, 'reasoning_content') and delta.reasoning_content != None:
print(delta.reasoning_content, end='', flush=True)
reasoning_content += delta.reasoning_content
else:
# 开始回复
if delta.content != "" and is_answering is False:
print("\n" + "=" * 20 + "完整回复" + "=" * 20 + "\n")
is_answering = True
# 打印回复过程
print(delta.content, end='', flush=True)
answer_content += delta.content
# print("=" * 20 + "完整思考过程" + "=" * 20 + "\n")
# print(reasoning_content)
# print("=" * 20 + "完整回复" + "=" * 20 + "\n")
# print(answer_content)