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- **Add SPDX license headers to python source files** - **Check for SPDX headers using pre-commit** commit 9d7ef44c3cfb72ca4c32e1c677d99259d10d4745 Author: Russell Bryant <rbryant@redhat.com> Date: Fri Jan 31 14:18:24 2025 -0500 Add SPDX license headers to python source files This commit adds SPDX license headers to python source files as recommended to the project by the Linux Foundation. These headers provide a concise way that is both human and machine readable for communicating license information for each source file. It helps avoid any ambiguity about the license of the code and can also be easily used by tools to help manage license compliance. The Linux Foundation runs license scans against the codebase to help ensure we are in compliance with the licenses of the code we use, including dependencies. Having these headers in place helps that tool do its job. More information can be found on the SPDX site: - https://spdx.dev/learn/handling-license-info/ Signed-off-by: Russell Bryant <rbryant@redhat.com> commit 5a1cf1cb3b80759131c73f6a9dddebccac039dea Author: Russell Bryant <rbryant@redhat.com> Date: Fri Jan 31 14:36:32 2025 -0500 Check for SPDX headers using pre-commit Signed-off-by: Russell Bryant <rbryant@redhat.com> --------- Signed-off-by: Russell Bryant <rbryant@redhat.com>
247 lines
8.2 KiB
Python
247 lines
8.2 KiB
Python
# SPDX-License-Identifier: Apache-2.0
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import datetime
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import json
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import logging
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import os
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import platform
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import time
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from enum import Enum
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from pathlib import Path
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from threading import Thread
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from typing import Any, Dict, Optional, Union
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from uuid import uuid4
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import cpuinfo
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import psutil
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import requests
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import torch
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import vllm.envs as envs
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from vllm.connections import global_http_connection
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from vllm.version import __version__ as VLLM_VERSION
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_config_home = envs.VLLM_CONFIG_ROOT
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_USAGE_STATS_JSON_PATH = os.path.join(_config_home, "usage_stats.json")
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_USAGE_STATS_DO_NOT_TRACK_PATH = os.path.join(_config_home, "do_not_track")
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_USAGE_STATS_ENABLED = None
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_USAGE_STATS_SERVER = envs.VLLM_USAGE_STATS_SERVER
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_GLOBAL_RUNTIME_DATA: Dict[str, Union[str, int, bool]] = {}
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_USAGE_ENV_VARS_TO_COLLECT = [
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"VLLM_USE_MODELSCOPE",
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"VLLM_USE_TRITON_FLASH_ATTN",
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"VLLM_ATTENTION_BACKEND",
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"VLLM_USE_FLASHINFER_SAMPLER",
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"VLLM_PP_LAYER_PARTITION",
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"VLLM_USE_TRITON_AWQ",
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"VLLM_USE_V1",
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"VLLM_ENABLE_V1_MULTIPROCESSING",
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]
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def set_runtime_usage_data(key: str, value: Union[str, int, bool]) -> None:
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"""Set global usage data that will be sent with every usage heartbeat."""
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_GLOBAL_RUNTIME_DATA[key] = value
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def is_usage_stats_enabled():
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"""Determine whether or not we can send usage stats to the server.
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The logic is as follows:
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- By default, it should be enabled.
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- Three environment variables can disable it:
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- VLLM_DO_NOT_TRACK=1
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- DO_NOT_TRACK=1
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- VLLM_NO_USAGE_STATS=1
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- A file in the home directory can disable it if it exists:
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- $HOME/.config/vllm/do_not_track
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"""
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global _USAGE_STATS_ENABLED
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if _USAGE_STATS_ENABLED is None:
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do_not_track = envs.VLLM_DO_NOT_TRACK
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no_usage_stats = envs.VLLM_NO_USAGE_STATS
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do_not_track_file = os.path.exists(_USAGE_STATS_DO_NOT_TRACK_PATH)
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_USAGE_STATS_ENABLED = not (do_not_track or no_usage_stats
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or do_not_track_file)
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return _USAGE_STATS_ENABLED
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def _get_current_timestamp_ns() -> int:
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return int(datetime.datetime.now(datetime.timezone.utc).timestamp() * 1e9)
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def _detect_cloud_provider() -> str:
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# Try detecting through vendor file
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vendor_files = [
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"/sys/class/dmi/id/product_version", "/sys/class/dmi/id/bios_vendor",
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"/sys/class/dmi/id/product_name",
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"/sys/class/dmi/id/chassis_asset_tag", "/sys/class/dmi/id/sys_vendor"
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]
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# Mapping of identifiable strings to cloud providers
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cloud_identifiers = {
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"amazon": "AWS",
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"microsoft corporation": "AZURE",
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"google": "GCP",
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"oraclecloud": "OCI",
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}
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for vendor_file in vendor_files:
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path = Path(vendor_file)
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if path.is_file():
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file_content = path.read_text().lower()
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for identifier, provider in cloud_identifiers.items():
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if identifier in file_content:
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return provider
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# Try detecting through environment variables
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env_to_cloud_provider = {
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"RUNPOD_DC_ID": "RUNPOD",
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}
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for env_var, provider in env_to_cloud_provider.items():
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if os.environ.get(env_var):
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return provider
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return "UNKNOWN"
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class UsageContext(str, Enum):
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UNKNOWN_CONTEXT = "UNKNOWN_CONTEXT"
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LLM_CLASS = "LLM_CLASS"
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API_SERVER = "API_SERVER"
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OPENAI_API_SERVER = "OPENAI_API_SERVER"
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OPENAI_BATCH_RUNNER = "OPENAI_BATCH_RUNNER"
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ENGINE_CONTEXT = "ENGINE_CONTEXT"
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class UsageMessage:
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"""Collect platform information and send it to the usage stats server."""
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def __init__(self) -> None:
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# NOTE: vLLM's server _only_ support flat KV pair.
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# Do not use nested fields.
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self.uuid = str(uuid4())
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# Environment Information
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self.provider: Optional[str] = None
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self.num_cpu: Optional[int] = None
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self.cpu_type: Optional[str] = None
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self.cpu_family_model_stepping: Optional[str] = None
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self.total_memory: Optional[int] = None
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self.architecture: Optional[str] = None
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self.platform: Optional[str] = None
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self.cuda_runtime: Optional[str] = None
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self.gpu_count: Optional[int] = None
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self.gpu_type: Optional[str] = None
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self.gpu_memory_per_device: Optional[int] = None
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self.env_var_json: Optional[str] = None
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# vLLM Information
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self.model_architecture: Optional[str] = None
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self.vllm_version: Optional[str] = None
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self.context: Optional[str] = None
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# Metadata
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self.log_time: Optional[int] = None
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self.source: Optional[str] = None
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def report_usage(self,
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model_architecture: str,
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usage_context: UsageContext,
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extra_kvs: Optional[Dict[str, Any]] = None) -> None:
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t = Thread(target=self._report_usage_worker,
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args=(model_architecture, usage_context, extra_kvs or {}),
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daemon=True)
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t.start()
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def _report_usage_worker(self, model_architecture: str,
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usage_context: UsageContext,
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extra_kvs: Dict[str, Any]) -> None:
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self._report_usage_once(model_architecture, usage_context, extra_kvs)
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self._report_continous_usage()
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def _report_usage_once(self, model_architecture: str,
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usage_context: UsageContext,
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extra_kvs: Dict[str, Any]) -> None:
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# Platform information
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from vllm.platforms import current_platform
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if current_platform.is_cuda_alike():
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device_property = torch.cuda.get_device_properties(0)
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self.gpu_count = torch.cuda.device_count()
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self.gpu_type = device_property.name
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self.gpu_memory_per_device = device_property.total_memory
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if current_platform.is_cuda():
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self.cuda_runtime = torch.version.cuda
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self.provider = _detect_cloud_provider()
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self.architecture = platform.machine()
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self.platform = platform.platform()
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self.total_memory = psutil.virtual_memory().total
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info = cpuinfo.get_cpu_info()
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self.num_cpu = info.get("count", None)
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self.cpu_type = info.get("brand_raw", "")
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self.cpu_family_model_stepping = ",".join([
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str(info.get("family", "")),
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str(info.get("model", "")),
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str(info.get("stepping", ""))
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])
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# vLLM information
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self.context = usage_context.value
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self.vllm_version = VLLM_VERSION
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self.model_architecture = model_architecture
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# Environment variables
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self.env_var_json = json.dumps({
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env_var: getattr(envs, env_var)
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for env_var in _USAGE_ENV_VARS_TO_COLLECT
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})
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# Metadata
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self.log_time = _get_current_timestamp_ns()
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self.source = envs.VLLM_USAGE_SOURCE
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data = vars(self)
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if extra_kvs:
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data.update(extra_kvs)
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self._write_to_file(data)
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self._send_to_server(data)
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def _report_continous_usage(self):
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"""Report usage every 10 minutes.
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This helps us to collect more data points for uptime of vLLM usages.
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This function can also help send over performance metrics over time.
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"""
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while True:
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time.sleep(600)
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data = {
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"uuid": self.uuid,
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"log_time": _get_current_timestamp_ns(),
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}
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data.update(_GLOBAL_RUNTIME_DATA)
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self._write_to_file(data)
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self._send_to_server(data)
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def _send_to_server(self, data: Dict[str, Any]) -> None:
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try:
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global_http_client = global_http_connection.get_sync_client()
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global_http_client.post(_USAGE_STATS_SERVER, json=data)
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except requests.exceptions.RequestException:
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# silently ignore unless we are using debug log
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logging.debug("Failed to send usage data to server")
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def _write_to_file(self, data: Dict[str, Any]) -> None:
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os.makedirs(os.path.dirname(_USAGE_STATS_JSON_PATH), exist_ok=True)
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Path(_USAGE_STATS_JSON_PATH).touch(exist_ok=True)
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with open(_USAGE_STATS_JSON_PATH, "a") as f:
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json.dump(data, f)
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f.write("\n")
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usage_message = UsageMessage()
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