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Observability components for Pip.Services in Python

Project description

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Observability Components for Python

This module is a part of the Pip.Services polyglot microservices toolkit.

The Observability module contains observability component definitions that can be used to build applications and services.

The module contains the following packages:

  • Count - performance counters
  • Log - basic logging components that provide console and composite logging, as well as an interface for developing custom loggers
  • Trace - tracing components

Quick links:

Use

Install the Python package as

pip install pip_services4_observability

Example how to use Logging and Performance counters. Here we are going to use CompositeLogger and CompositeCounters components. They will pass through calls to loggers and counters that are set in references.

from pip_services3_commons.config import ConfigParams, IConfigurable
from pip_services3_commons.refer import IReferences, IReferenceable
from pip_services3_components.count import CompositeCounters
from pip_services3_components.log import CompositeLogger


class MyComponent(IConfigurable, IReferenceable):
    __logger = CompositeLogger()
    __counters = CompositeCounters()

    def configure(self, config):
        self.__logger.configure(config)

    def set_references(self, references):
        self.__logger.set_references(references)
        self.__counters.set_references(references)

    def my_method(self, context, param1):
        try:
            self.__logger.trace(context, "Executed method mycomponent.mymethod")
            self.__counters.increment("mycomponent.mymethod.exec_count", 1)
            timing = self.__counters.begin_timing("mycomponent.mymethod.exec_time")
            # ...
            timing.end_timing()
        except Exception as ex:
            self.__logger.error(context, ex, "Failed to execute mycomponent.mymethod")
            self.__counters.increment("mycomponent.mymethod.error_count", 1)

Develop

For development you shall install the following prerequisites:

  • Python 3.7+
  • Visual Studio Code or another IDE of your choice
  • Docker

Install dependencies:

pip install -r requirements.txt

Run automated tests:

python test.py

Generate API documentation:

./docgen.ps1

Before committing changes run dockerized build and test as:

./build.ps1
./test.ps1
./clear.ps1

Contacts

The initial implementation is done by Sergey Seroukhov. Pip.Services team is looking for volunteers to take ownership over Python implementation in the project.

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