
Compare Generations
- 226 installs
- 34 repo stars
- Updated March 27, 2026
- tuist/agent-skills
Helps with ai & agent building tasks.
About
compare-generations is a Claude Code skill for ai & agent building. It helps solo builders move faster with AI-assisted development.
- compare-generations
- AI & Agent Building
- AI-coding skill
Compare Generations by the numbers
- 226 all-time installs (skills.sh)
- +9 installs in the week ending Jul 27, 2026 (Skillselion tracking)
- Ranked #2,687 of 16,546 AI & Agent Building skills by installs in the Skillselion catalog
- Data as of Jul 27, 2026 (Skillselion catalog sync)
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| Installs | 226 |
|---|---|
| repo stars | ★ 34 |
| Last updated | March 27, 2026 |
| Repository | tuist/agent-skills ↗ |
What it does
Helps with ai & agent building tasks.
Files
Compare Generations
Quick Start
You'll typically receive two generation identifiers. Follow these steps:
1. Run tuist generate list --json to find generations on each branch. 2. Run tuist generate show <id> --json for both base and head generations. 3. Compare duration, status, and cache hit rates. 4. Summarize cache changes with root cause analysis.
Step 1: Resolve Generations
If base/head are generation IDs or dashboard URLs
Fetch each directly:
tuist generate show <base-id> --json
tuist generate show <head-id> --jsonIf base/head are branch names
List recent generations on each branch:
tuist generate list --git-branch <base-branch> --json --page-size 1
tuist generate list --git-branch <head-branch> --json --page-size 1Then fetch full details with tuist generate show <id> --json.
Defaults
- If no base is provided, use the project's default branch (usually
main). - If no head is provided, detect the current git branch.
Step 2: Compare Top-Level Metrics
After fetching both generations, compare:
| Metric | What to check |
|---|---|
duration | Flag if head is >10% slower |
status | Flag if base succeeded but head failed |
cacheable_targets | Note if target count changed |
local_cache_target_hits | Compare local hit counts |
remote_cache_target_hits | Compare remote hit counts |
is_ci | Note if one is CI and the other local |
Compute cache hit rates:
- Base:
(local_hits + remote_hits) / cacheable_targets * 100 - Head: same formula
- Delta:
head_rate - base_rate
Step 3: Analyze Cache Invalidation
If cache hit rate dropped, the key question is: which target(s) caused the invalidation cascade?
Cache invalidation typically works like this: 1. A "root cause" target has a direct change (source file modified, build setting changed, etc.) 2. All targets that depend on the root cause target also get invalidated because their dependencies hash changes. 3. This cascade can invalidate many targets from a single root change.
Identifying root cause targets
Without the module cache target detail endpoint (available via MCP), use these heuristics:
1. Check git diff between the base and head commits to see which files changed. 2. Map changed files to their Tuist targets/modules. 3. Targets with direct source changes are likely root causes. 4. Targets that only changed due to dependency hash cascading are secondary invalidations.
Common root causes of cache invalidation
| Cause | Description |
|---|---|
| Source changes | Files in the target's source directory were modified |
| Resource changes | Assets, XIBs, storyboards, or other resources changed |
| Build settings | Target or project build settings were modified |
| Dependency changes | An external dependency version changed |
| Info.plist changes | The target's Info.plist was modified |
| Entitlements changes | The entitlements file was modified |
| Deployment target | The minimum deployment target changed |
| Headers | Public or project headers changed |
| Project settings | Shared project-level settings changed |
Step 4: Assess Impact
Categorize the cache invalidation:
- Expected: Source files were intentionally changed, causing expected cache misses.
- Unexpected: No source changes but cache was invalidated (build settings, Xcode version, etc.).
- Cascade: A small change invalidated many downstream targets.
Summary Format
Produce a summary with:
1. Overall verdict: Cache hit rate improved, regressed, or stable. 2. Cache hit rate: Base rate vs head rate with delta. 3. Duration: Absolute and percentage change. 4. Root cause targets: Which targets had direct changes. 5. Cascade impact: How many targets were invalidated due to dependency cascading. 6. Recommendations: How to minimize cache invalidation.
Example:
Generation Comparison: base (gen-123 on main) vs head (gen-456 on feature-x)
Duration: 12.5s -> 28.3s (+126%) -- REGRESSION
Cache hit rate: 92% (46/50) -> 64% (32/50) (-28%) -- REGRESSION
Status: success -> success
Root cause: FoundationModule had source changes (3 files modified).
This cascaded to 14 downstream targets that depend on FoundationModule.
Cache invalidation breakdown:
- Direct changes: FoundationModule (sources changed)
- Cascade: NetworkModule, AuthModule, UIModule, + 11 others (dependency hash changed)
Recommendations:
- Consider splitting FoundationModule into smaller modules to reduce cascade impact
- The 14 cascaded targets could benefit from more granular dependency declarations
- If FoundationModule changes frequently, consider interface/implementation module splittingDone Checklist
- Resolved both base and head generations
- Compared duration and cache hit rates
- Identified root cause targets for cache invalidation
- Analyzed cascade impact
- Provided actionable recommendations for reducing cache misses