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⚠️ This article was written in 2021. Some content may be outdated.

Tree Shaking Deep Optimization Guide

This is a deep-dive guide to Tree Shaking. Many developers only scratch the surface at the API level. This article looks at the real problems you hit in production and how to solve them.

Basic Principles ​

In real projects, usage gets a bit more involved:

javascript
const observer = new PerformanceObserver((list) => {
  for (const entry of list.getEntries()) {
    if (entry.entryType === 'largest-contentful-paint') {
      reportMetric('LCP', entry.startTime)
    }
    if (entry.entryType === 'first-input') {
      reportMetric('FID', entry.processingStart - entry.startTime)
    }
  }
})
observer.observe({ entryTypes: ['largest-contentful-paint', 'first-input'] })

This makes the code both more testable and more scalable.

Advanced Features ​

Here is a complete example:

javascript
const observer = new PerformanceObserver((list) => {
  for (const entry of list.getEntries()) {
    if (entry.entryType === 'largest-contentful-paint') {
      reportMetric('LCP', entry.startTime)
    }
    if (entry.entryType === 'first-input') {
      reportMetric('FID', entry.processingStart - entry.startTime)
    }
  }
})
observer.observe({ entryTypes: ['largest-contentful-paint', 'first-input'] })

Handle edge cases carefully — they are critical in production.

Project Practice ​

The key is understanding the core logic:

javascript
const observer = new PerformanceObserver((list) => {
  for (const entry of list.getEntries()) {
    if (entry.entryType === 'largest-contentful-paint') {
      reportMetric('LCP', entry.startTime)
    }
    if (entry.entryType === 'first-input') {
      reportMetric('FID', entry.processingStart - entry.startTime)
    }
  }
})
observer.observe({ entryTypes: ['largest-contentful-paint', 'first-input'] })

Performance optimization should be tailored to specific scenarios; not all cases require over-optimization.

Best Practices ​

Here are a few ways to take this further:

javascript
const observer = new PerformanceObserver((list) => {
  for (const entry of list.getEntries()) {
    if (entry.entryType === 'largest-contentful-paint') {
      reportMetric('LCP', entry.startTime)
    }
    if (entry.entryType === 'first-input') {
      reportMetric('FID', entry.processingStart - entry.startTime)
    }
  }
})
observer.observe({ entryTypes: ['largest-contentful-paint', 'first-input'] })

This approach has run stably in production for over six months, so it's proven in practice.

Summary ​

  • Understanding underlying principles is more important than memorizing APIs
  • Always verify compatibility before using in production
  • In team collaboration, conventions and documentation are more important than the technology itself
  • Stay updated with the community; technical solutions need continuous iteration
  • Don't adopt new technology just for the sake of it

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