Logging Best Practices

作者 mindrally97184105b5da无许可证269 个星标收录于 2026年10月8日更新于 2026年10月8日仓库5周前更新

Logging best practices for applications and services including structured logging, log levels, and log management strategies

AI 生成的概览

为应用程序和服务提供结构化日志、日志级别与日志管理实践的指导。

功能
该技能提供一套日志最佳实践指南,涵盖结构化 JSON 输出、标准日志字段、日志级别、上下文传播、安全与隐私、性能、日志聚合、错误日志以及按环境区分的配置。它是说明性参考资料而非工具,产出的是可供代理在编写或审查日志代码时采用的建议与清单。它不生成文件,也不运行任何脚本。
适用场景
适用于为应用程序或服务设计或审查日志时,或需要决定日志格式、级别、字段或保留策略时。也适合依据隐私、性能和聚合方面的建议审计现有日志。
运行要求
无需任何工具、软件包、运行时、凭据或网络访问。该技能不包含脚本,仅由说明性内容组成。

Logging Best Practices

Apply these logging principles to ensure effective debugging, monitoring, and audit capabilities across applications and services.

Structured Logging

  • Use structured logging formats (JSON) for all log output
  • Include consistent fields across all log entries
  • Make logs machine-parseable while remaining human-readable
  • Use a logging library that supports structured output natively
  • Avoid string concatenation for log messages; use structured fields

Standard Log Fields

Include these fields in every log entry:

  • timestamp: ISO 8601 format with timezone
  • level: Log severity (DEBUG, INFO, WARN, ERROR, FATAL)
  • message: Human-readable description of the event
  • service: Name of the service or application
  • version: Application version or build identifier
  • trace_id: Distributed tracing correlation ID
  • span_id: Current span identifier
  • request_id: Unique identifier for the request

Log Levels

Use appropriate log levels consistently:

  • DEBUG: Detailed diagnostic information for development
  • INFO: Normal operational events and state changes
  • WARN: Unexpected situations that are handled gracefully
  • ERROR: Failures that affect current operation but not the service
  • FATAL: Critical failures requiring immediate attention

Context Propagation

  • Include request context in all log entries within a request lifecycle
  • Propagate trace IDs across service boundaries
  • Add user context (anonymized) for user-initiated actions
  • Include relevant business context for domain events
  • Use MDC (Mapped Diagnostic Context) or equivalent for context management

Security and Privacy

  • Never log sensitive information (passwords, tokens, PII)
  • Mask or redact sensitive data when it must be referenced
  • Implement log access controls appropriate to data sensitivity
  • Consider data retention policies and compliance requirements
  • Audit log access for sensitive systems

Performance Considerations

  • Use asynchronous logging to avoid blocking application threads
  • Implement log sampling for high-volume debug logs in production
  • Buffer logs appropriately to balance latency and throughput
  • Monitor logging infrastructure for bottlenecks
  • Set appropriate log levels per environment

Log Aggregation

  • Centralize logs from all services into a single platform
  • Use consistent formatting across all services
  • Implement log rotation and retention policies
  • Enable full-text search and filtering capabilities
  • Set up log-based alerts for critical patterns

Error Logging

  • Include full error context: message, code, stack trace
  • Log the chain of errors in wrapped/nested exceptions
  • Include relevant request and state information
  • Avoid duplicate error logging across layers
  • Log error recovery actions and outcomes

Best Practices

  • Log at service boundaries (entry and exit points)
  • Include timing information for performance analysis
  • Log configuration changes and deployments
  • Create actionable log messages that aid debugging
  • Review and clean up logging regularly to reduce noise

Log Message Guidelines

  • Write clear, descriptive messages
  • Include relevant identifiers (user ID, order ID, etc.)
  • Avoid generic messages like "Error occurred"
  • Use consistent terminology across the application
  • Include enough context to understand the event without additional lookups

Environment-Specific Configuration

  • Development: DEBUG level, console output, verbose formatting
  • Staging: INFO level, structured JSON, full context
  • Production: INFO/WARN level, structured JSON, sampling for DEBUG

来源与署名

来源:mindrally/skills位于logging-best-practices提交9718410

许可证: 无许可证

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