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3 September 2026

LiteSpeed cache behaviour for a growing publication — field note 0145

Scaling · WordPress · 8 comments
Abstract HYEHOST load lab benchmark visual 073

Traffic Bursts checkpoint 1

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 2

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 3

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 4

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 5

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 6

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 7

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

Traffic Bursts checkpoint 8

This benchmark note models a realistic LiteSpeed cache behaviour workload on WordPress. The dataset includes enough related posts, metadata, taxonomy, media, and comments to exercise archive and object-cache behaviour without using an artificial CPU burn loop. Testers can compare a cold application response with a repeated LiteSpeed-cached request, then inspect pagination, search, category archives, and individual articles.

For repeatable results, record response status, time to first byte, transfer size, cache headers, concurrency, and error rate. A useful hosting demonstration protects other tenants while serving ordinary WordPress traffic reliably, so every public query on this site is intentionally bounded.

8 responses to “LiteSpeed cache behaviour for a growing publication — field note 0145”

  1. Benchmark interaction 01045: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  2. Benchmark interaction 04645: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  3. Benchmark interaction 01945: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  4. Benchmark interaction 05545: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  5. Benchmark interaction 02845: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  6. Benchmark interaction 06445: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  7. Benchmark interaction 00145: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.

  8. Benchmark interaction 03745: this synthetic comment exercises WordPress comment queries, pagination, counters, and cache invalidation without containing personal or customer data.