包含: - hair_service_sd: 换发型/换发色算法服务 (端口 8801) - photo_service: LoRA 训练调度服务 (端口 32678) - stable-diffusion-webui: SD WebUI 推理服务 (端口 57860) - kohya_ss_home: 训练环境代码 - meidaojia: 监控测试脚本 - setup.sh: 一键部署脚本 (conda环境恢复 + 配置生成 + 完整性检查) - start_all_services.sh: 启动3个服务 - configure.ini.template: 路径模板化 (BASE_DIR自动推导) - conda_envs/py310.yml: py310 环境定义 大文件 (weights/, models/, data/, conda_envs/*.tar.gz 等) 通过 .gitignore 排除, 由网盘单独上传。
137 lines
4.6 KiB
Python
137 lines
4.6 KiB
Python
import requests
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import random
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import time
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import concurrent.futures
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import base64
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from collections import defaultdict
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url = 'http://172.17.110.92/api/swapHair/v1'
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# url = 'https://699520645652485-http-8801.northwest1.gpugeek.com:8443/api/swapHair/v1'
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headers = {'Content-Type': 'application/json'}
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data = {
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"hair_id": "1907651680352395265",
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"task_id": "1907651680352395265",
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"user_img_path": "https://cdn.meidaojia.com/ZoeFiles/user2_1_%E5%89%AF%E6%9C%AC.JPG",
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"is_hr": "false",
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"output_format": "base64"
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}
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def image_to_base64(file_path, mime_type=None):
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"""
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将图片文件转换为带Base64前缀的Data URI字符串
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参数:
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file_path (str): 图片文件路径
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mime_type (str): 可选,指定MIME类型。如果为None,则根据文件扩展名自动判断
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返回:
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str: 带Base64前缀的Data URI字符串
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"""
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# 如果没有指定MIME类型,根据文件扩展名推断
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if mime_type is None:
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extension = file_path.split('.')[-1].lower()
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mime_types = {
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'jpg': 'image/jpeg',
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'jpeg': 'image/jpeg',
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'png': 'image/png',
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'gif': 'image/gif',
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'webp': 'image/webp',
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'bmp': 'image/bmp'
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}
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mime_type = mime_types.get(extension, 'application/octet-stream')
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# 读取文件内容并编码为Base64
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with open(file_path, 'rb') as image_file:
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encoded_string = base64.b64encode(image_file.read()).decode('utf-8')
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# 组合成Data URI格式
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return f"data:{mime_type};base64,{encoded_string}"
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img64_str = image_to_base64("aaa.jpg")
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data['user_img_path'] = img64_str
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class RequestStats:
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def __init__(self):
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self.total_requests = 0
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self.successful_requests = 0
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self.failed_requests = 0
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self.response_times = []
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self.start_time = None
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self.end_time = None
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self.request_timestamps = defaultdict(int)
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def record_success(self, response_time):
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self.successful_requests += 1
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self.response_times.append(response_time)
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self.request_timestamps[int(time.time())] += 1
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def record_failure(self):
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self.failed_requests += 1
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def calculate_qps(self):
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if not self.request_timestamps:
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return 0
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timestamps = sorted(self.request_timestamps.keys())
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if len(timestamps) < 2:
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return self.successful_requests
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total_time = timestamps[-1] - timestamps[0] + 1
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return self.successful_requests / total_time
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def send_request(stats):
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try:
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data['task_id'] = str(int(random.uniform(0, 10000000)))
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start_time = time.time()
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response = requests.post(url, headers=headers, json=data)
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end_time = time.time()
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response_time = end_time - start_time
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if response.status_code == 200:
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stats.record_success(response_time)
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print(f"请求完成,响应时间: {response_time:.3f} 秒")
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return response_time
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else:
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print(f"请求失败,状态码: {response.status_code}")
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stats.record_failure()
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return None
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except Exception as e:
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print(f"请求发生错误: {e}")
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stats.record_failure()
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return None
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def main():
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total_requests = 100 #请求总数
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concurrency = 25 # 并发数
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stats = RequestStats()
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stats.start_time = time.time()
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stats.total_requests = total_requests
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print(f"开始测试,总请求数: {total_requests},并发数: {concurrency}")
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with concurrent.futures.ThreadPoolExecutor(max_workers=concurrency) as executor:
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futures = [executor.submit(send_request, stats) for _ in range(total_requests)]
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concurrent.futures.wait(futures)
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stats.end_time = time.time()
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print("\n统计结果:")
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print(f"总请求数: {stats.total_requests}")
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print(f"成功请求数: {stats.successful_requests}")
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print(f"失败请求数: {stats.failed_requests}")
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if stats.successful_requests > 0:
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total_time = stats.end_time - stats.start_time
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avg_response_time = sum(stats.response_times) / len(stats.response_times)
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qps = stats.calculate_qps()
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print(f"测试总时间: {total_time:.3f} 秒")
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print(f"平均响应时间: {avg_response_time:.3f} 秒")
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print(f"最大响应时间: {max(stats.response_times):.3f} 秒")
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print(f"最小响应时间: {min(stats.response_times):.3f} 秒")
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print(f"QPS (每秒查询率): {qps:.2f}")
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else:
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print("所有请求都失败了,无法计算统计信息")
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if __name__ == "__main__":
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main() |