用 Codex 或 Claude 帮你安装 复制这段 Prompt,粘贴到 Codex、Claude 或其他助手里,让它检查 Skill 页面并帮你完成安装。
直接命令不会经过审查 Prompt;运行前请先检查来源。
npx skills add https://github.com/vamseeachanta/workspace-hub --skill complexity-scorer命令会保持在同一行。复制前请横向滚动并检查完整内容。
想先保存到本地?可下载 SkillsMP 当前能够提供的文件。
Write outbound email and external messages in Vamsee Achanta's voice — a subtle offer to help, never bold or rash claims. Load before drafting ANY email, LinkedIn/Collide reply, proposal note, or outreach sent under his name.
Save/publish analysis or computation results from ANY ecosystem repo to Hugging Face as a queryable, viewer-renderable dataset. Use when the user wants to "save results to hugging face", "publish dataset to HF", "hugging face data saving", "save analysis results", "hf dataset", "make results queryable", or "render via datasets-server API". Reshapes nested results into flat parquet tables, writes a dataset card with a viewer `configs:` block and provenance, applies license/public-vs-private routing, enforces a domain data-quality gate (faithful-to-source != correct), publishes to `aceengineer/<repo>-<projection>`, and verifies via the datasets-server API.
Clone, create, fork, configure, and manage GitHub repositories. Manage remotes, secrets, releases, and workflows. Works with gh CLI or falls back to git + GitHub REST API via curl.
正在显示 SKILL.md
基于 SOC 职业分类
| name | complexity-scorer |
| version | 1.0.0 |
| description | Score task complexity using keyword matching and heuristics |
| author | workspace-hub |
| category | bash |
| tags | ["bash","complexity","scoring","keywords","analysis","classification"] |
| platforms | ["linux","macos"] |
Patterns for scoring task complexity using keyword matching, context analysis, and configurable heuristics. Extracted from workspace-hub's model selection system.
✅ Use when:
❌ Avoid when:
Define keyword categories with weights:
#!/bin/bash
# ABOUTME: Keyword-based complexity scoring
# ABOUTME: Pattern from workspace-hub suggest_model.sh
# Keyword categories with associated complexity impact
# High complexity keywords (score +3)
HIGH_COMPLEXITY="architecture|refactor|design|security|complex|multi-file|algorithm|optimization|strategy|planning|cross-repository|performance|migration|integration"
# Medium complexity keywords (score +1)
MEDIUM_COMPLEXITY="implement|feature|bug|fix|code review|documentation|test|update|add|create|build|configure|setup"
# Low complexity keywords (score -2)
LOW_COMPLEXITY="check|status|simple|quick|template|list|grep|find|search|summary|validation|exists|show|display|count|verify"
# Score based on keywords
score_keywords() {
local text="$1"
local text_lower=$(echo "$text" | tr '[:upper:]' '[:lower:]')
local score=0
# Check high complexity first (mutually exclusive)
if echo "$text_lower" | grep -qE "$HIGH_COMPLEXITY"; then
((score+=3))
elif echo "$text_lower" | grep -qE "$MEDIUM_COMPLEXITY"; then
((score+=1))
elif echo "" | grep -qE ;
((score-=))
}
task=
score=$(score_keywords )
Combine multiple factors for better accuracy:
#!/bin/bash
# ABOUTME: Multi-factor complexity scoring
# ABOUTME: Combines keywords, length, context
# Factor weights
declare -A WEIGHTS=(
["keywords"]=3
["length"]=1
["urgency"]=1
["scope"]=2
)
# Score task length
score_length() {
local text="$1"
local word_count=$(echo "$text" | wc -w)
if [[ $word_count -gt 20 ]]; then
echo 2 # Long = more complex
elif [[ $word_count -gt 10 ]]; then
echo 1
elif [[ $word_count -lt 5 ]]; then
echo -1 # Short = simpler
else
echo 0
fi
}
# Score urgency indicators
score_urgency() {
local text="$1"
local text_lower=$(echo "$text" | tr '[:upper:]' '[:lower:]')
if echo | grep -qE ;
2
| grep -qE ;
1
0
}
() {
text=
text_lower=$( | )
| grep -qE ;
2
| grep -qE ;
1
| grep -qE ;
-1
0
}
() {
text=
total=0
keyword_score=$(score_keywords )
length_score=$(score_length )
urgency_score=$(score_urgency )
scope_score=$(score_scope )
total=$((keyword_score * +
length_score * +
urgency_score * +
scope_score * ))
}
Adjust scores based on context (repository, domain, etc.):
#!/bin/bash
# ABOUTME: Context-aware complexity scoring
# ABOUTME: Adjusts based on repository tier, domain
# Repository tiers
TIER1_REPOS="workspace-hub|digitalmodel|energy|client-a"
TIER2_REPOS="aceengineercode|assetutilities|worldenergydata|client-b"
TIER3_REPOS="lng-a|client-d|OGManufacturing|client-f"
PERSONAL_ACTIVE="aceengineer-admin|aceengineer-website"
PERSONAL_EXPERIMENTAL="hobbies|sd-work|mkt-a"
# Get repository tier
get_repo_tier() {
local repo="$1"
if echo "$repo" | grep -qE "$TIER1_REPOS"; then
echo "tier1"
elif echo "$repo" | grep -qE "$TIER2_REPOS"; then
echo "tier2"
elif echo "$repo" | grep -qE "$TIER3_REPOS"; then
echo "tier3"
elif echo "$repo" | grep -qE "$PERSONAL_ACTIVE"; then
echo "personal_active"
| grep -qE ;
}
() {
base_score=
repo=
adjusted=
tier=$(get_repo_tier )
tier1)
((adjusted+=))
;;
tier3|personal_experimental)
((adjusted-=))
;;
}
() {
task=
repo=
base_score=$(calculate_complexity )
final_score=$(adjust_for_context )
}
Map scores to categories:
#!/bin/bash
# ABOUTME: Map complexity scores to categories
# ABOUTME: Provides actionable classifications
# Classification thresholds
THRESHOLD_HIGH=5
THRESHOLD_MEDIUM=1
THRESHOLD_LOW=-2
# Classify score
classify_complexity() {
local score="$1"
if [[ $score -ge $THRESHOLD_HIGH ]]; then
echo "high"
elif [[ $score -ge $THRESHOLD_MEDIUM ]]; then
echo "medium"
elif [[ $score -ge $THRESHOLD_LOW ]]; then
echo "low"
else
echo "trivial"
fi
}
# Get recommendation based on classification
get_recommendation() {
local score="$1"
local classification=$(classify_complexity "$score")
case "$classification" in
high)
echo "OPUS"
echo "Use for complex architecture, multi-file refactoring, security analysis"
;;
medium)
;;
low)
;;
trivial)
;;
}
() {
score=
classification=$(classify_complexity )
high) ;;
medium) ;;
low) ;;
trivial) ;;
}
Add confidence to scoring:
#!/bin/bash
# ABOUTME: Confidence scoring for complexity estimates
# ABOUTME: Indicates reliability of the score
# Calculate confidence
calculate_confidence() {
local text="$1"
local confidence=50 # Base confidence
local word_count=$(echo "$text" | wc -w)
local keyword_matches=0
local text_lower=$(echo "$text" | tr '[:upper:]' '[:lower:]')
# More words = higher confidence (more context)
if [[ $word_count -gt 15 ]]; then
((confidence+=20))
elif [[ $word_count -gt 8 ]]; then
((confidence+=10))
elif [[ $word_count -lt 3 ]]; then
((confidence-=20))
fi
# Keyword matches boost confidence
for pattern in "$HIGH_COMPLEXITY" "$MEDIUM_COMPLEXITY" "$LOW_COMPLEXITY"; do
if echo "" | grep -qE ;
((keyword_matches++))
((confidence += keyword_matches * ))
[[ -gt 100 ]] && confidence=100
[[ -lt 10 ]] && confidence=10
}
() {
confidence=
[[ -ge 80 ]];
[[ -ge 60 ]];
[[ -ge 40 ]];
}
Adjust based on past accuracy:
#!/bin/bash
# ABOUTME: Historical learning for complexity scoring
# ABOUTME: Track and adjust based on actual outcomes
HISTORY_FILE="${HOME}/.complexity-scorer/history.log"
# Log prediction vs actual
log_outcome() {
local task="$1"
local predicted_score="$2"
local actual_complexity="$3" # user-provided feedback
local timestamp=$(date '+%Y-%m-%d_%H:%M:%S')
mkdir -p "$(dirname "$HISTORY_FILE")"
echo "${timestamp}|${predicted_score}|${actual_complexity}|${task}" >> "$HISTORY_FILE"
}
# Calculate prediction accuracy
calculate_accuracy() {
local correct=0
local total=0
while IFS='|' read -r ts predicted actual task; do
[[ "$ts" =~ ^#.*$ ]] && continue
[[ -z "$ts" ]] && continue
((total++))
local predicted_class=$(classify_complexity )
[[ == ]];
((correct++))
<
[[ -gt 0 ]];
$((correct * / total))
0
}
() {
IFS= -r ts predicted actual task;
predicted_class=$(classify_complexity )
[[ != ]];
<
}
#!/bin/bash
# ABOUTME: Complete task complexity scoring system
# ABOUTME: Multi-factor scoring with recommendations
set -e
# ─────────────────────────────────────────────────────────────────
# Configuration
# ─────────────────────────────────────────────────────────────────
# Colors
GREEN='\033[0;32m'
BLUE='\033[0;34m'
YELLOW='\033[1;33m'
CYAN='\033[0;36m'
RED='\033[0;31m'
NC='\033[0m'
# Keyword patterns
OPUS_KEYWORDS="architecture|refactor|design|security|complex|multi-file|algorithm|optimization|strategy|planning|cross-repository|performance|migration"
SONNET_KEYWORDS="implement|feature|bug|fix|code review|documentation|test|update|add|create|build"
HAIKU_KEYWORDS="check|status|simple|quick|template|list|grep|find|search|summary|validation|exists|show|display"
# Repository tiers
WORK_TIER1="workspace-hub|digitalmodel|energy|client-a"
WORK_TIER2="aceengineercode|assetutilities|worldenergydata"
WORK_TIER3="lng-a|client-d|OGManufacturing"
PERSONAL="hobbies|sd-work|mkt-a"
# ─────────────────────────────────────────────────────────────────
# Scoring Functions
# ─────────────────────────────────────────────────────────────────
score_task() {
local task="$1"
local repo="${2:-}"
local task_lower=$(echo "$task" | tr '[:upper:]' )
score=0
| grep -qE ;
((score+=))
| grep -qE ;
((score+=))
| grep -qE ;
((score-=))
word_count=$( | -w)
[[ -gt 15 ]];
((score+=))
[[ -lt 5 ]];
((score-=))
[[ -n ]];
| grep -qE ;
((score+=))
| grep -qE ;
((score-=))
}
() {
score=
[[ -ge 3 ]];
[[ -ge 0 ]];
}
() {
repo=
| grep -qE ;
| grep -qE ;
| grep -qE ;
| grep -qE ;
}
() {
task=
repo=
score=$(score_task )
recommendation=$(get_recommendation )
tier=$(get_tier_name )
color
OPUS) color= ;;
SONNET) color= ;;
HAIKU) color= ;;
-e
-e
-e
[[ -n ]] && -e
-e
-e
-e
-e
task_lower=$( | )
| grep -qE ;
| grep -qE ;
| grep -qE ;
[[ -n ]] &&
-e
}
() {
<<
}
REPO=
SCORE_ONLY=
JSON_OUTPUT=
[[ -gt 0 ]];
-r|--repo)
REPO=
2
;;
-s|--score-only)
SCORE_ONLY=
;;
-j|--json)
JSON_OUTPUT=
;;
-h|--)
show_usage
0
;;
-*)
show_usage
1
;;
*)
;;
TASK=
[[ -z ]];
-p TASK
[[ -z ]];
1
[[ == ]];
score_task
[[ == ]];
score=$(score_task )
rec=$(get_recommendation )
<<
display_result