dkyazzentwatwa/chatgpt-skills153 installs
report-generator
Generate professional PDF/HTML reports with charts, tables, and narrative from data. Supports templates, branding, and automated report generation.
How do I install this agent skill?
npx skills add https://github.com/dkyazzentwatwa/chatgpt-skills --skill report-generatorIs this agent skill safe to install?
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This skill only contains a list of standard Python dependencies for data analysis and PDF generation. No executable code or malicious patterns were found.
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Risk: LOW · No issues
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What does this agent skill do?
Report Generator
Create professional, data-driven reports with charts, tables, and narrative text. Perfect for business reports, analytics dashboards, status updates, and automated reporting pipelines.
Quick Start
from scripts.report_gen import ReportGenerator
# Create a simple report
report = ReportGenerator("Monthly Sales Report")
report.add_text("This report summarizes sales performance for Q4 2024.")
report.add_table(sales_data, title="Sales by Region")
report.add_chart(sales_data, chart_type="bar", title="Revenue by Month")
report.add_text("Key findings: Revenue increased 25% quarter-over-quarter.")
report.generate().save("sales_report.pdf")
# From template
report = ReportGenerator.from_template("executive_summary")
report.set_data(data_dict)
report.generate().save("exec_summary.pdf")
Features
- Multiple Output Formats: PDF, HTML
- Rich Content: Text, tables, charts, images, headers
- Chart Types: Bar, line, pie, scatter, area, heatmap
- Table Formatting: Auto-styling, conditional formatting
- Templates: Pre-built report templates
- Branding: Logo, colors, fonts, headers/footers
- Sections: Table of contents, page numbers, appendices
- Data Integration: CSV, DataFrame, dict inputs
API Reference
Initialization
# New report
report = ReportGenerator("Report Title")
report = ReportGenerator("Report Title", subtitle="Q4 2024 Analysis")
# From template
report = ReportGenerator.from_template("quarterly_review")
# With config
report = ReportGenerator("Title", config={
"page_size": "letter",
"orientation": "portrait",
"margins": {"top": 1, "bottom": 1, "left": 0.75, "right": 0.75}
})
Report Metadata
# Title and subtitle
report.set_title("Annual Report 2024")
report.set_subtitle("Financial Performance Analysis")
# Author and date
report.set_author("Analytics Team")
report.set_date("December 2024")
report.set_date_auto() # Use today
# Organization
report.set_organization("Acme Corporation")
report.set_logo("logo.png")
Adding Content
Text Content
# Simple paragraph
report.add_text("This is a paragraph of analysis text.")
# Styled text
report.add_text("Important finding!", style="highlight")
report.add_text("Key metric: 42%", style="metric")
# Headers
report.add_heading("Executive Summary", level=1)
report.add_heading("Revenue Analysis", level=2)
report.add_heading("By Region", level=3)
# Bullet points
report.add_bullets([
"Revenue increased 25% YoY",
"Customer acquisition up 15%",
"Churn rate decreased to 3%"
])
# Numbered list
report.add_numbered_list([
"Expand to European markets",
"Launch mobile application",
"Implement AI-driven analytics"
])
Tables
# From DataFrame
import pandas as pd
df = pd.DataFrame({
'Region': ['North', 'South', 'East', 'West'],
'Revenue': [100000, 85000, 92000, 78000],
'Growth': ['12%', '8%', '15%', '5%']
})
report.add_table(df, title="Regional Performance")
# From dict/list
data = [
{'Product': 'A', 'Sales': 1000, 'Profit': 200},
{'Product': 'B', 'Sales': 1500, 'Profit': 350}
]
report.add_table(data, title="Product Summary")
# With styling
report.add_table(df, title="Sales Data",
highlight_max=['Revenue'], # Highlight max values
highlight_min=['Growth'], # Highlight min values
currency_cols=['Revenue'], # Format as currency
percent_cols=['Growth'], # Format as percent
align={'Region': 'left', 'Revenue': 'right'}
)
Charts
# Bar chart
report.add_chart(
data=df,
chart_type="bar",
x="Region",
y="Revenue",
title="Revenue by Region"
)
# Line chart
report.add_chart(
data=time_series_df,
chart_type="line",
x="Month",
y=["Sales", "Forecast"],
title="Sales Trend"
)
# Pie chart
report.add_chart(
data=category_df,
chart_type="pie",
values="Amount",
labels="Category",
title="Budget Allocation"
)
# Chart options
report.add_chart(
data=df,
chart_type="bar",
x="Region",
y="Revenue",
title="Revenue Analysis",
color="#3498db",
width=6, # inches
height=4,
show_values=True,
show_legend=True
)
Images
# Add image
report.add_image("screenshot.png", caption="Dashboard View")
report.add_image("diagram.png", width=5, caption="Architecture Diagram")
Special Elements
# Page break
report.add_page_break()
# Horizontal line
report.add_divider()
# Spacer
report.add_spacer(height=0.5) # inches
# Callout box
report.add_callout(
"Key Insight: Customer retention improved 20% after implementing the new onboarding flow.",
style="info" # info, warning, success, error
)
# Quote
report.add_quote(
"Data is the new oil.",
attribution="Clive Humby"
)
Sections and Structure
# Start a new section
report.start_section("Financial Analysis")
# Add content to section
report.add_text("...")
report.add_table(...)
# End section
report.end_section()
# Table of contents (auto-generated)
report.enable_toc()
# Appendix
report.start_appendix()
report.add_heading("Raw Data", level=2)
report.add_table(raw_data)
Branding and Styling
# Logo and organization
report.set_logo("logo.png", width=150)
report.set_organization("Acme Corp")
# Colors
report.set_colors(
primary="#1e40af", # Headers, accents
secondary="#6b7280", # Secondary text
background="#ffffff" # Background
)
# Fonts
report.set_fonts(
heading="Helvetica-Bold",
body="Helvetica"
)
# Header and footer
report.set_header("Confidential - Internal Use Only")
report.set_footer("Page {page} of {total}")
# Watermark
report.set_watermark("DRAFT")
Templates
# Available templates
report = ReportGenerator.from_template("executive_summary")
report = ReportGenerator.from_template("quarterly_review")
report = ReportGenerator.from_template("project_status")
report = ReportGenerator.from_template("analytics_dashboard")
# Template with data
report = ReportGenerator.from_template("monthly_metrics")
report.set_data({
"period": "December 2024",
"revenue": 1500000,
"growth": 0.15,
"customers": 5000,
"charts": {"revenue_trend": trend_df}
})
report.generate()
Generation and Export
# Generate report
report.generate()
# Save as PDF
report.save("report.pdf")
# Save as HTML
report.save("report.html")
# Get bytes
pdf_bytes = report.to_bytes()
html_string = report.to_html()
Templates
Executive Summary
- Title page
- Key metrics highlights
- Summary bullets
- Charts section
- Recommendations
Quarterly Review
- Performance overview
- Financial metrics
- Comparison to previous quarter
- Goals progress
- Next quarter outlook
Project Status
- Project overview
- Timeline/milestones
- Risks and issues
- Team updates
- Next steps
Analytics Dashboard
- KPI cards
- Multiple charts
- Trend analysis
- Data tables
- Insights
CLI Usage
# Generate from JSON config
python report_gen.py --config report_config.json --output report.pdf
# With template
python report_gen.py --template executive_summary --data data.json --output summary.pdf
# Quick report from CSV
python report_gen.py --csv data.csv --title "Data Report" --output report.pdf
CLI Arguments
| Argument | Description | Default |
|---|---|---|
--config | Report configuration JSON | - |
--template | Template name | - |
--data | Data JSON file | - |
--csv | CSV data file | - |
--title | Report title | Report |
--output | Output file path | report.pdf |
--format | Output format (pdf/html) | pdf |
Examples
Sales Report
report = ReportGenerator("Q4 Sales Report")
report.set_subtitle("October - December 2024")
report.set_organization("Sales Department")
report.set_logo("company_logo.png")
report.add_heading("Executive Summary", level=1)
report.add_text(
"Q4 2024 showed strong performance across all regions, "
"with total revenue reaching $4.2M, a 23% increase over Q3."
)
report.add_callout(
"Total Revenue: $4.2M (+23% QoQ)",
style="success"
)
report.add_heading("Regional Performance", level=2)
report.add_chart(regional_data, "bar", x="Region", y="Revenue",
title="Revenue by Region")
report.add_table(regional_data, title="Detailed Metrics")
report.add_heading("Trends", level=2)
report.add_chart(monthly_data, "line", x="Month", y="Revenue",
title="Monthly Revenue Trend")
report.add_heading("Recommendations", level=1)
report.add_bullets([
"Increase investment in high-growth East region",
"Address declining West region performance",
"Launch Q1 promotional campaign"
])
report.generate().save("q4_sales_report.pdf")
Analytics Dashboard
report = ReportGenerator("Marketing Analytics")
report.set_date_auto()
# KPI Summary
report.add_heading("Key Metrics", level=1)
kpis = [
["Visitors", "125,000", "+15%"],
["Conversions", "3,750", "+22%"],
["Revenue", "$187,500", "+18%"],
["CAC", "$45", "-8%"]
]
report.add_table(kpis, headers=["Metric", "Value", "Change"])
# Traffic Sources
report.add_heading("Traffic Sources", level=2)
report.add_chart(traffic_df, "pie", values="Sessions", labels="Source",
title="Traffic Distribution")
# Conversion Funnel
report.add_heading("Conversion Funnel", level=2)
report.add_chart(funnel_df, "bar", x="Stage", y="Users",
title="Funnel Analysis", horizontal=True)
# Trend Analysis
report.add_heading("Trends", level=2)
report.add_chart(daily_df, "line", x="Date", y=["Visitors", "Conversions"],
title="Daily Performance")
report.generate().save("marketing_dashboard.pdf")
Dependencies
reportlab>=4.0.0
Pillow>=10.0.0
pandas>=2.0.0
matplotlib>=3.7.0
Limitations
- Charts rendered as static images in PDF
- Complex layouts may need manual adjustment
- Large datasets may impact performance
- HTML output has basic styling (no interactive charts)
How can the creator link this skill?
Add the canonical catalog link to the repository README so users can inspect current installs and available audits. The publishing guide covers the complete discovery path.
<a href="https://skillzs.dev/skills/dkyazzentwatwa/chatgpt-skills/report-generator">View report-generator on skillZs</a>