daily-progress-report
Generate automated daily progress reports from site data. Track work completed, labor hours, equipment usage, and weather conditions.
Profil aset
Desain dan produksi kreatif
Design assets, images, video, audio, multimodal media, presentation, and creative production skills.
Skenario
Desain dan kreatif
I need my agent to produce design assets, UI directions, presentations, or creative media workflows.
Kecocokan Agent
Claude Code + CLI + Codex
Cocok untuk Codex, Claude Code, Cursor, CLI, atau Agent khusus.
Pasang
Siap
npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --skill daily-progress-report
Pemeliharaan
Terkini
1 hari sejak push
Risiko
Perlu ditinjau
SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary.
Kualitas GitHub
282
71/100 Kualitas · 74/100 Kepercayaan
Tag cakupan
Catatan ulasan
SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary. · SKILL.md excerpt appears truncated in the review but may be complete in repository.
Kartu adopsi Agent
Kepercayaan, audit, dan kesiapan pemasangan dalam sekali lihat
Skor ini menggabungkan metadata repositori publik, sinyal ulasan OpenAgentSkill, kebaruan pemeliharaan, dan kesiapan pemasangan. Ini adalah sinyal shortlist, bukan pengganti peninjauan manusia.
Kualitas
KuatSolid option that is likely worth shortlisting for production workflows.
Kepercayaan
Hanya sandboxKandidat berguna dengan sinyal kepercayaan yang kurang atau bercampur. Gunakan di ruang kerja terisolasi hingga loop hasil membuktikan kecocokan tugas.
Audit
Perlu ditinjauTinjauan yang dapat dibaca mesin tentang kesiapan pemasangan, metadata keamanan, pemeliharaan, dan risiko adopsi.
Trust Score OpenAgentSkill v5
Tinjauan manusia sebelum pemasangan
Jalankan hanya dalam sandbox dan bandingkan alternatif terdekat sebelum digunakan untuk kerja nyata.
Star
282 star GitHub
Aktivitas repositori
282 star dan 74 fork
Pemeliharaan
1 hari sejak push
Lisensi
MIT
Pasang
npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --skill daily-progress-report
Keamanan pemasangan
Jalur pemasangan paket atau runtime standar
Cakupan izin
Akses sistem file atau dokumen
Hasil Agent
Belum ada data hasil Agent
Dokumentasi
Konteks README/SKILL.md kuat
Ringkasan risiko
Tinjau sebelum produksi
- SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary.
- Quality score needs review
Kesiapan pemasangan
Jalur pemasangan tersedia
- Jalur pemasangan tersedia
- Bukti repositori tersedia
- Lisensi dinyatakan
- Belum ada bukti hasil Agent-Proven
Metadata yang dapat dibaca Agent
Data keputusan yang dapat dibaca mesin untuk skill ini.
Gunakan blok ini atau JSON tersemat untuk memutuskan apakah Agent perlu memasang skill ini, memilih alternatif, atau meminta tinjauan manusia terlebih dahulu.
Tugas yang sesuai
- Alur kerja Agent riset
- Tim Claude Code
- builders willing to evaluate younger projects
- Sumber pencarian
Agent yang sesuai
Keputusan pemasangan
- Perintah
- npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --skill daily-progress-report
- Kebijakan
- Tinjau
- Tinjauan manusia
- Ya
Kepercayaan dan risiko
- Kepercayaan
- 66/100
- Audit
- 80/100
- Tingkat risiko
- Perlu ditinjau
Lingkar hasil
- Endpoint
- /api/agent/outcome
- ID event
- resolve
- Hasil
- 5
Perintah pemasangan
npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --skill daily-progress-reportJangan gunakan ketika
- Tim yang membutuhkan SLA dengan dukungan vendor
- production agents without a repository review
- SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary.
- No OpenAgentSkill engagement data yet
- SKILL.md excerpt appears truncated in the review but may be complete in repository.
Skill alternatif
Frontend Design
171.1K Star
npx skills add anthropics/skills --skill frontend-design
Skill alternatif
Taste Skill: Anti-Slop Frontend
79.4K Star
npx skills add Leonxlnx/taste-skill --skill design-taste-frontend
Skill alternatif
Canvas Design
171.1K Star
npx skills add anthropics/skills --skill canvas-design
Skill alternatif
Anthropic Brand Guidelines
171.1K Star
npx skills add anthropics/skills --skill brand-guidelines
Keamanan Agent v2
64/100 · Tinjau sebelum memasang
Kandidat yang dapat digunakan, tetapi Agent harus menampilkan catatan izin dan audit sebelum memasang.
Memerlukan persetujuan manusia sebelum memasang ke workspace nyata.
Sedang
Akses jaringan
Skill kemungkinan mengambil halaman jarak jauh, API, repositori, atau layanan eksternal.
Sedang
Akses sistem file
Skill dapat membaca atau menulis file proyek, dokumen, artefak yang dihasilkan, atau status workspace lokal.
- SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary.
Target pemasangan
Pasang skill ini di alur Agent Anda
Gunakan endpoint publik untuk mengambil perintah, checklist keamanan, prompt target, dan tautan kanonis.
OpenAgentSkill CLI
Resolve policy, run the source installer safely, and report a verified install receipt.
$ npx --yes https://github.com/Leon-Drq/openagentskill/releases/download/cli-v0.2.1/openagentskill-0.2.1.tgz install datadrivenconstruction-daily-progress-reportRencana resolusi Agent
Biarkan Agent memverifikasi kecocokan sebelum memasang.
API Resolve mengembalikan skill utama, alternatif, kebijakan keamanan, catatan audit, target pemasangan, dan prompt siap pakai.
Buka JSON
/api/agent/resolve?task=Use%20daily-progress-report%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Teks Resolve
/api/agent/resolve?task=Use%20daily-progress-report%20for%20an%20agent%20workflow&agent=codex&max_risk=medium&format=text
Serah-terima pemasangan
/api/skills/datadrivenconstruction-daily-progress-report/install
Agent harus memeriksa
- Task fit and alternatives from Resolve API.
- Audit score, trust score, and safety policy warnings.
- Install target compatibility for Codex, Claude Code, Cursor, or CLI.
Salin prompt
Task: Use daily-progress-report in this workspace.
Resolve first: https://www.openagentskill.com/api/agent/resolve?task=Use%20daily-progress-report%20for%20an%20agent%20workflow&agent=codex&max_risk=medium
Review install handoff: https://www.openagentskill.com/api/skills/datadrivenconstruction-daily-progress-report/install
Install command: npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --skill daily-progress-report
Before running it, summarize audit warnings, required permissions, and the fallback skill if install is risky.Serah-terima Agent
Berikan jalur pemasangan kepada Agent, bukan direktori lain.
Gunakan endpoint publik untuk mengambil perintah, checklist keamanan, prompt target, dan tautan kanonis.
Serah-terima pemasangan
/api/skills/datadrivenconstruction-daily-progress-report/install
Format teks LLM
/api/skills/datadrivenconstruction-daily-progress-report/install?format=text
Cari alternatif
/api/skills/search?q=daily-progress-report&limit=3
Prompt Agent
Use daily-progress-report for this task. Review https://www.openagentskill.com/api/skills/datadrivenconstruction-daily-progress-report/install, then install with: npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --skill daily-progress-reportMetadata Registry
Profil yang dapat dibaca Agent untuk pemilihan skill otomatis.
API Registry menyediakan sinyal keputusan, kepercayaan, audit, use case, dan pemasangan tanpa mengikis UI.
Manifest
/api/registry/manifest/datadrivenconstruction-daily-progress-report
Teks LLM
/api/registry/manifest/datadrivenconstruction-daily-progress-report?format=text
Alias pemasangan
/api/registry/install/datadrivenconstruction-daily-progress-report
Rekomendasikan
/api/registry/recommend?task=Use%20daily-progress-report%20in%20an%20agent%20workflow&limit=3
Kecocokan Agent
Agent riset
Tag use case
Platform
Claude Code
Laporan audit
Perlu ditinjau · 80/100
Tinjauan yang dapat dibaca mesin tentang kesiapan pemasangan, metadata keamanan, pemeliharaan, dan risiko adopsi.
Panel keputusan Agent
Fallback candidate for Research agents
Prototype with this skill first; keep a fallback candidate ready.
Peran di stack
Kandidat cadangan
Kecocokan utama
Agent riset
Label kepercayaan
Buat prototipe dulu
Jalur pemasangan
Perintah siap
Gunakan saat
- Alur kerja Agent riset
- Tim Claude Code
- builders willing to evaluate younger projects
Bukti
- recent repository activity
- install command or GitHub repo available
- profil kualitas 71/100
tinjau dulu
- SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary.
- No OpenAgentSkill engagement data yet
Jalur implementasi
- 1Pasang di Agent sandbox dan jalankan satu tugas Agent riset dari awal hingga akhir.
- 2Compare output quality, latency, and failure behavior against at least one alternative.
- 3Promote it into production only after reviewing repository permissions, license, and maintenance signals.
Profil kepercayaan
Hanya sandbox
Kandidat berguna dengan sinyal kepercayaan yang kurang atau bercampur. Gunakan di ruang kerja terisolasi hingga loop hasil membuktikan kecocokan tugas.
Adopsi GitHub
Info282 star GitHub
Aktivitas star/fork
Info282 star dan 74 fork; aktivitas issue tidak tersedia dalam metadata saat ini
Pemeliharaan terbaru
Lulus1 hari sejak push
Kejelasan lisensi
LulusMIT
Sinyal positif
- Tinjauan AI disetujui
- Jalur pemasangan tersedia
- Bukti repositori tersedia
- Repositori yang baru dipelihara
- Perintah pemasangan tidak memiliki pola berisiko tinggi yang jelas
- Loop hasil siap tetapi membutuhkan eksekusi Agent nyata pertama
Tinjau sebelum memasang
- SKILL.md does not explicitly list required Python packages (e.g., pandas) as dependencies, only python3 binary.
- Quality score needs review
- Belum ada laporan hasil Agent nyata
- Tinjauan manusia diperlukan sebelum pemasangan tanpa pengawasan
Tindakan yang disarankan
Jalankan hanya dalam sandbox dan bandingkan alternatif terdekat sebelum digunakan untuk kerja nyata.
Profil kualitas
Kuat kandidat untuk alur kerja Agent
Solid option that is likely worth shortlisting for production workflows.
Kecocokan alur kerja
Gunakan skill ini pada skenario berikut
Investigate faster
Research agents
I need my agent to research a topic, compare sources, and produce a concise report.
Create assets
Design and creative
I need my agent to produce design assets, UI directions, presentations, or creative media workflows.
Operate web apps
Browser automation
I need my agent to control a browser, fill forms, and verify web app workflows.
Kecocokan alur kerja
Tambahkan ke alur kerja lengkap
Design, build, test, and ship interfaces
Frontend and UI
A practical workflow for agents that turn product briefs or Figma designs into polished frontend code, review the result, test it in a browser, and prepare a safe deployment.
Find, compare, and synthesize
Research report agent
A workflow for agents that gather sources, compare claims, summarize long material, and draft useful research briefs.
Operate and verify web apps
Browser QA agent
A workflow for agents that navigate products, fill forms, take screenshots, and verify real user flows across web applications.
Daftar alternatif
Bandingkan sebelum memasang
Similar skills that may fit this task.
Frontend Design
Guidance for distinctive, intentional UI design, typography, visual direction, and non-template-like product interfaces.
Taste Skill: Anti-Slop Frontend
Design and implementation guidance for distinctive landing pages, portfolios, product demos, and purposeful redesigns.
Canvas Design
Create original visual art, posters, PNG assets, and PDF documents through a clear design philosophy.
Anthropic Brand Guidelines
Apply Anthropic official brand colors, typography, and visual standards to appropriate Anthropic-related artifacts.
Ringkasan
--- name: "daily-progress-report" description: "Generate automated daily progress reports from site data. Track work completed, labor hours, equipment usage, and weather conditions." homepage: "https://datadrivenconstruction.io" metadata: {"openclaw": {"emoji": "📊", "os": ["darwin", "linux", "win32"], "homepage": "https://datadrivenconstruction.io", "requires": {"bins": ["python3"]}}} --- # Daily Progress Report Generator
## Business Case
### Problem Statement Site managers spend hours creating daily reports: - Manual data collection - Inconsistent formats - Delayed submissions - Missing information
### Solution Automated daily progress report generation from structured site data inputs.
## Technical Implementation
```python import pandas as pd from datetime import datetime, date from typing import Dict, Any, List from dataclasses import dataclass from enum import Enum
class WeatherCondition(Enum): CLEAR = "clear" CLOUDY = "cloudy" RAIN = "rain" SNOW = "snow" WIND = "wind" EXTREME = "extreme"
class WorkStatus(Enum): COMPLETED = "completed" IN_PROGRESS = "in_progress" DELAYED = "delayed" NOT_STARTED = "not_started"
@dataclass class WorkActivity: activity_id: str description: str location: str planned_qty: float actual_qty: float unit: str status: WorkStatus crew_size: int hours_worked: float notes: str = ""
@dataclass class LaborEntry: trade: str company: str workers: int hours: float overtime_hours: float = 0
@dataclass class EquipmentEntry: equipment_type: str equipment_id: str hours_used: float status: str # active, idle, maintenance operator: str = ""
@dataclass class DailyReport: report_date: date project_name: str project_number: str weather: WeatherCondition temperature_high: float temperature_low: float work_activities: List[WorkActivity] labor: List[LaborEntry] equipment: List[EquipmentEntry] delays: List[str] safety_incidents: int visitors: List[str] deliveries: List[str] prepared_by: str
class DailyProgressReporter: """Generate daily progress reports."""
def __init__(self, project_name: str, project_number: str): self.project_name = project_name self.project_number = project_number
def create_report(self, report_date: date, weather: WeatherCondition, temp_high: float, temp_low: float, prepared_by: str) -> DailyReport: """Create new daily report."""
return DailyReport( report_date=report_date, project_name=self.project_name, project_number=self.project_number, weather=weather, temperature_high=temp_high, temperature_low=temp_low, work_activities=[], labor=[], equipment=[], delays=[], safety_incidents=0, visitors=[], deliveries=[], prepared_by=prepared_by )
def add_work_activity(self, report: DailyReport, activity_id: str, description: str, location: str, planned_qty: float, actual_qty: float, unit: str, crew_size: int, hours_worked: float, notes: str = ""): """Add work activity to report."""
# Determine status if actual_qty >= planned_qty: status = WorkStatus.COMPLETED elif actual_qty > 0: status = WorkStatus.IN_PROGRESS elif actual_qty == 0 and planned_qty > 0: status = WorkStatus.DELAYED else: status = WorkStatus.NOT_STARTED
activity = WorkActivity( activity_id=activity_id, description=description, location=location, planned_qty=planned_qty, actual_qty=actual_qty, unit=unit, status=status, crew_size=crew_size, hours_worked=hours_worked, notes=notes )
report.work_activities.append(activity)
def add_labor(self, report: DailyReport, trade: str, company: str, workers: int, hours: float, overtime_hours: float = 0): """Add labor entry."""
report.labor.append(LaborEntry( trade=trade, company=company, workers=workers, hours=hours, overtime_hours=overtime_hours ))
def add_equipment(self, report: DailyReport, equipment_type: str, equipment_id: str, hours_used: float, status: str, operator: str = ""): """Add equipment entry."""
report.equipment.append(EquipmentEntry( equipment_type=equipment_type, equipment_id=equipment_id, hours_used=hours_used, status=status, operator=operator ))
def calculate_summary(self, report: DailyReport) -> Dict[str, Any]: """Calculate report summary metrics."""
total_workers = sum(l.workers for l in report.labor) total_manhours = sum(l.workers * l.hours for l in report.labor) total_overtime = sum(l.workers * l.overtime_hours for l in report.labor) equipment_hours = sum(e.hours_used for e in report.equipment)
completed = sum(1 for a in report.work_activities if a.status == WorkStatus.COMPLETED) in_progress = sum(1 for a in report.work_activities if a.status == WorkStatus.IN_PROGRESS) delayed = sum(1 for a in report.work_activities if a.status == WorkStatus.DELAYED)
return { 'total_workers': total_workers, 'total_manhours': round(total_manhours, 1), 'total_overtime': round(total_overtime, 1), 'equipment_hours': round(equipment_hours, 1), 'activities_completed': completed, 'activities_in_progress': in_progress, 'activities_delayed': delayed, 'safety_incidents': report.safety_incidents, 'deliveries_count': len(report.deliveries) }
def export_to_excel(self, report: DailyReport, output_path: str) -> str: """Export report to Excel."""
with pd.ExcelWriter(output_path, engine='openpyxl') as writer: # Header header_df = pd.DataFrame([{ 'Project': report.project_name, 'Project #': report.project_number, 'Date': report.report_date, 'Weather': report.weather.value, 'High Temp': report.temperature_high, 'Low Temp': report.temperature_low, 'Prepared By': report.prepared_by }]) header_df.to_excel(writer, sheet_name='Summary', index=False)
# Work Activities if report.work_activities: activities_df = pd.DataFrame([ { 'Activity ID': a.activity_id, 'Description': a.description, 'Location': a.location, 'Planned': a.planned_qty, 'Actual': a.actual_qty, 'Unit': a.unit, 'Status': a.status.value, 'Crew': a.crew_size, 'Hours': a.hours_worked, 'Notes': a.notes } for a in report.work_activities ]) activities_df.to_excel(writer, sheet_name='Work Activities', index=False)
# Labor if report.labor: labor_df = pd.DataFrame([ { 'Trade': l.trade, 'Company': l.company, 'Workers': l.workers, 'Hours': l.hours, 'Overtime': l.overtime_hours, 'Total Hours': l.workers * (l.hours + l.overtime_hours) } for l in report.labor ]) labor_df.to_excel(writer, sheet_name='Labor', index=False)
# Equipment if report.equipment: equip_df = pd.DataFrame([ { 'Type': e.equipment_type, 'ID': e.equipment_id, 'Hours': e.hours_used, 'Status': e.status, 'Operator': e.operator } for e in report.equipment ]) equip_df.to_excel(writer, sheet_name='Equipment', index=False)
return output_path
def generate_text_report(self, report: DailyReport) -> str: """Generate text version of report."""
summary = self.calculate_summary(report)
lines = [ f"DAILY PROGRESS REPORT", f"=" * 50, f"Project: {report.project_name}", f"Project #: {report.project_number}", f"Date: {report.report_date}", f"Prepared by: {report.prepared_by}", f"", f"WEATHER CONDITIONS", f"-" * 30, f"Conditions: {report.weather.value}", f"Temperature: {report.temperature_low}°C - {report.temperature_high}°C", f"", f"SUMMARY", f"-" * 30, f"Total Workers: {summary['total_workers']}", f"Total Man-hours: {summary['total_manhours']}", f"Equipment Hours: {summary['equipment_hours']}", f"Activities Completed: {summary['activities_completed']}", f"Activities In Progress: {summary['activities_in_progress']}", f"Activities Delayed: {summary['activities_delayed']}", f"Safety Incidents: {summary['safety_incidents']}", ]
if report.delays: lines.extend([f"", f"DELAYS", f"-" * 30]) for delay in report.delays: lines.append(f"• {delay}")
return "\n".join(lines) ```
## Quick Start
```python from datetime import date
# Initialize reporter reporter = DailyProgressReporter("Office Tower A", "PRJ-2024-001")
# Create report report = reporter.create_report( report_date=date.today(), weather=WeatherCondition.CLEAR, temp_high=28, temp_low=18, prepared_by="John Smith" )
# Add activities reporter.add_work_activity( report, activity_id="A-101", description="Pour concrete slab Level 3", location="Level 3, Zone A", planned_qty=150, actual_qty=150, unit="m3", crew_size=8, hours_worked=10 )
# Add labor reporter.add_labor(report, "Concrete", "ABC Concrete Co", 8, 10, 2)
# Export reporter.export_to_excel(report, "daily_report.xlsx") ```
## Common Use Cases
### 1. Generate Text Summary ```python text = reporter.generate_text_report(report) print(text) ```
### 2. Track Delays ```python report.delays.append("Weather delay - rain from 14:00-16:00") report.delays.append("Material delivery late by 2 hours") ```
### 3. Calculate Metrics ```python summary = reporter.calculate_summary(report) print(f"Productivity: {summary['total_manhours']} man-hours") ```
## Resources - **DDC Book**: Chapter 4.1 - Site Data Collection
Detail teknis
- Versi
- 1.0.0
- Lisensi
- MIT
- Pembaruan terakhir
- 22 Agu 2026
- Diterbitkan
- 22 Agu 2026
Ringkasan keputusan
Kandidat cadangan
recent repository activity
Audit
Tinjauan pemasangan
Tinjauan pemasangan dan adopsi
- Keamanan
- 82/100
- Pemeliharaan
- 100/100
- Pasang
- 92/100
Bukti tervalidasi Agent
Bukti tervalidasi Agent
Laporan hasil setelah resolve, tinjau, pasang, dan satu eksekusi terbatas.
- Tingkat sukses
- —
- Kegagalan terbaru
- —
- Hasil
- 0
- Kualitas output
- —
- Gagal
- 0
- Tidak relevan
- 0
- Pemasangan
- 0
- Diblokir risiko
- 0
- Perlu penyiapan
- 0
- Produksi
- 0
Belum ada data hasil Agent. Eksekusi pertama dapat melaporkan keberhasilan, kebutuhan setup, blok risiko, kegagalan, atau tidak relevan melalui /api/agent/outcome.
Pasang
Tambahkan ke alur Agent
Gratis dan sumber terbuka. Tinjau laporan sebelum memasang pada Agent produksi.
Siklus pertumbuhan
Kit berbagi
Draf berbasis skenario untuk daily-progress-report, siap untuk posting manual di X.
daily-progress-report: Generate automated daily progress reports from site data. Track work completed, labor hours,... 282 stars https://www.openagentskill.com/skills/datadrivenconstruction-daily-progress-report?ref=x
Balasan opsional dengan perintah pemasangan
Listing + install path for daily-progress-report: https://www.openagentskill.com/skills/datadrivenconstruction-daily-progress-report?ref=x Install: npx skills add datadrivenconstruction/DDC_Skills_for_AI_Agents_in_Construction --...
Sumber listing
Diindeks Registry
Listing ini diindeks dari sumber publik dan belum ditandai resmi hingga klaim pemelihara disetujui.
- Kreator
- datadrivenconstruction
- Diindeks oleh
- Indeks komunitas OpenAgentSkill
Atribusi menautkan ke repositori publik atau profil kreator. Kreator dapat mengklaim listing untuk memperbarui sinyal kepemilikan.
Klaim skill iniKlaim pemilik
Klaim listing skill ini
Listing Diindeks Registry ini dikaitkan dengan datadrivenconstruction, tetapi belum ditandai resmi. Klaim untuk menambahkan sinyal pemilik terverifikasi dan membuat pembaruan peluncuran, pemasangan, serta audit berikutnya lebih tepercaya.
Kit backlink kreator
Tambahkan badge bukti ke README Anda
Tampilkan listing kanonis, sinyal kepercayaan dan audit saat ini, serta bukti Agent-Proven nyata di tempat pengembang mengevaluasi repositori.
[](https://www.openagentskill.com/skills/datadrivenconstruction-daily-progress-report)
[](https://www.openagentskill.com/skills/datadrivenconstruction-daily-progress-report)
[](https://www.openagentskill.com/skills/datadrivenconstruction-daily-progress-report/audit)
[](https://www.openagentskill.com/skills/datadrivenconstruction-daily-progress-report)Penulis
datadrivenconstruction
@datadrivenconstruction
Tag
Kecocokan platform
Sinyal kesehatan
- Star GitHub
- 282
- Skor kualitas
- 40/100
- Push GitHub terakhir
- 22 Agu 2026
- Petunjuk framework
- Tidak diketahui
- Tampilan OpenAgentSkill
- 0
- Salinan pemasangan
- 0
- Klik keluar
- 0
Sinyal komunitas
Bagikan apakah skill ini bermanfaat untuk alur kerja Agent Anda. Masukan gabungan meningkatkan peringkat dari waktu ke waktu.
Kepercayaan & keamanan
Hanya sandbox
- Adopsi GitHub282 star GitHubInfo
- Aktivitas star/fork282 star dan 74 fork; aktivitas issue tidak tersedia dalam metadata saat iniInfo
- Pemeliharaan terbaru1 hari sejak pushLulus
- Kejelasan lisensiMITLulus
- Kelengkapan README/SKILL.mdMetadata memuat konteks penggunaan dan alur kerja yang cukupLulus
- Risiko dependensi/runtimeTidak ada petunjuk risiko dependensi besar dalam metadata publikLulus
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