last30days
Research any topic across Reddit, X, and web from the last 30 days. Get current trends, real community sentiment, and actionable insights in 7 minutes vs 2 hours manual research.
What this skill does
# /last30days Research Skill **Real-time intelligence engine:** Find what's working RIGHT NOW, not last quarter. Scans Reddit, X, and web for the last 30 days, identifies patterns, extracts community insights, and delivers actionable intelligence with copy-paste-ready prompts. ## Mode Detect from context or ask: *"Quick pulse, full research, or strategic intelligence brief?"* | Mode | What you get | Best for | |------|-------------|----------| | `quick` | Reddit only, top 10 insights, 10 min | Fast topic pulse, content spark | | `standard` | Reddit + X + web, full synthesis with themes | Content planning, market research | | `deep` | Full research + strategic brief + content angles + competitive intelligence | Product decisions, campaign strategy | **Default: `standard`** — use `quick` if they want a fast read. Use `deep` if they're making a business or product decision. --- ## Why This vs ChatGPT? **Problem with "research [topic]":** ChatGPT's training data is months/years old. It gives you general knowledge, not current signals. **Problem with Perplexity:** Searches web but misses Reddit threads and X conversations where real practitioners share what's actually working. **This skill provides:** 1. **30-day freshness filter** - Only pulls recent content (not 2023 blog posts) 2. **Multi-platform synthesis** - Combines Reddit (detailed discussions), X (real-time signals), and web (articles) in one pass 3. **Pattern detection** - Highlights themes mentioned 3+ times across sources 4. **Sentiment analysis** - Shows community vibe (hype, skepticism, frustration) 5. **Ready-to-use outputs** - Copy-paste prompts and action ideas, not just summaries **You can replicate this** by manually searching Reddit, X, and Brave Search with date filters, reading 30+ sources, identifying patterns, and synthesizing insights. Takes 2+ hours. This skill does it in 7 minutes. ## When to Use **Perfect for:** - **Trend discovery** - "What's hot in AI agents right now?" - **Strategy validation** - "What content marketing tactics are working in 2026?" - **Competitive intel** - "What are developers saying about Cursor vs Copilot?" - **Product research** - "What do users love/hate about Notion?" - **Prompt research** - "What Claude prompting techniques are trending?" - **Community sentiment** - "How do marketers feel about AI tools?" **Not ideal for:** - Historical research (use regular search) - Academic/scientific papers (use Google Scholar) - Non-English topics (limited coverage) - Topics with zero online discussion ## Required Setup This skill orchestrates multiple tools. Verify you have: ```bash # 1. Brave Search API (for web_search) # Already configured in OpenClaw by default # 2. Bird CLI (for X/Twitter search) source ~/.openclaw/credentials/bird.env && bird search "test" -n 1 # If this fails, install bird CLI first # 3. Reddit Insights (optional but recommended) # If you have reddit-insights MCP server configured, skill will use it # Otherwise falls back to Reddit web search via Brave ``` **Quick verification:** ```bash /last30days --check-setup ``` Should return: - ✅ Brave Search: Available - ✅ Bird CLI: Available - ✅ Reddit Insights: Available (or "Using web search fallback") ## Workflow ### Step 1: Web Search (Freshness Filter = Past Month) ``` web_search: "[topic] 2026" + freshness=pm web_search: "[topic] strategies trends current" web_search: "[topic] what's working" ``` **Purpose:** Get recent articles, blog posts, tools ### Step 2: Reddit Search **If reddit-insights MCP configured:** ``` reddit_search: "[topic] discussions techniques" reddit_get_trends: "[subreddit]" ``` **Otherwise:** ``` web_search: "[topic] site:reddit.com" + freshness=pm web_search: "[topic] reddit.com/r/[relevant_sub]" ``` **Purpose:** Find detailed discussions, practitioner insights, "what's actually working" threads ### Step 3: X/Twitter Search ``` bird search "[topic]" -n 10 bird search "[topic] 2026" -n 10 bird search "[topic] best practices" -n 10 ``` **Purpose:** Real-time signals, expert takes, trending threads ### Step 4: Deep Dive on Top Sources (Optional) For the 2-3 most relevant links: ``` web_fetch: [article URL] ``` **Purpose:** Extract specific tactics, quotes, data points ### Step 5: Synthesize & Package 1. **Identify patterns** - What appears 3+ times across sources? 2. **Extract key quotes** - Most upvoted Reddit comments, retweeted takes 3. **Assess sentiment** - Hype, adoption, skepticism, frustration? 4. **Create ready-to-use outputs** - Prompts, action ideas, copy-paste tactics ## Output Template ```markdown # 🔍 /last30days: [TOPIC] *Research compiled: [DATE]* *Sources analyzed: [NUMBER] (Reddit threads, X posts, articles)* *Time period: Last 30 days* --- ## 🔥 Top Patterns Discovered ### 1. [Pattern Name] **Mentioned: X times across [platforms]** [Description of the pattern + why it matters] **Key evidence:** - Reddit (r/[sub]): "[Quote from highly upvoted comment]" - X: "[Quote from popular thread]" - Article ([Source]): "[Key insight]" --- ### 2. [Pattern Name] [Continue same format...] --- ## 📊 Reddit Sentiment Breakdown | Subreddit | Discussion Volume | Sentiment | Key Insight | |-----------|-------------------|-----------|-------------| | r/[sub] | [# threads] | 🟢 Positive / 🟡 Mixed / 🔴 Skeptical | [One-liner takeaway] | **Top upvoted insights:** 1. "[Quote]" — u/[username] (+234 upvotes) 2. "[Quote]" — u/[username] (+189 upvotes) --- ## 🐦 X/Twitter Signal Analysis **Trending themes:** - [Theme 1] - [# mentions] - [Theme 2] - [# mentions] **Notable voices:** - [@handle]: "[Key take]" - [@handle]: "[Key take]" **Engagement patterns:** [What types of posts are getting traction?] --- ## 📈 Web Article Highlights **Most shared articles:** 1. "[Article Title]" — [Source] — [Key insight] 2. "[Article Title]" — [Source] — [Key insight] **Common recommendations across articles:** - [Tactic 1] - [Tactic 2] - [Tactic 3] --- ## 🎯 Copy-Paste Prompt **Based on current community best practices:** ``` [Ready-to-use prompt incorporating the patterns discovered] Context: [Relevant context from research] Task: [Clear task] Style: [Tone/voice based on research] Constraints: [Any patterns to avoid based on research] ``` **Why this works:** [Brief explanation based on research findings] --- ## 💡 Action Ideas **Immediate opportunities based on this research:** 1. **[Opportunity 1]** - What: [Specific action] - Why: [Evidence from research] - How: [Implementation steps] 2. **[Opportunity 2]** [Continue format...] --- ## 📌 Source List **Reddit Threads:** - [Thread title] - r/[sub] - [URL] **X Threads:** - [@handle] - [Tweet] - [URL] **Articles:** - [Title] - [Source] - [URL] --- *Research complete. [X] sources analyzed in [Y] minutes.* ``` ## Real Examples ### Example 1: Prompt Research **Query:** `/last30days Claude prompting best practices` **Abbreviated Output:** ```markdown # 🔍 /last30days: Claude Prompting Best Practices ## Top Patterns Discovered ### 1. XML Tags for Structure (12 mentions) Reddit and X both emphasize using XML tags for complex prompts: - Reddit: "XML tags changed my Claude workflow. <context> and <task> make responses 3× more accurate." - X: "@anthropicAI's own docs now recommend XML. It's the meta." ### 2. Examples Over Instructions (9 mentions) "Show, don't tell" — Provide 2-3 examples instead of long instructions. ### 3. Chain of Thought Explicit (7 mentions) Add "Think step-by-step before answering" dramatically improves reasoning. ## Copy-Paste Prompt <context> [Your context here] </context> <task> [Your task here] </task> <examples> Example 1: [Show desired output style] Example 2: [Show edge case handling] </examples> Think step-by-step before providing your final answer. ``` --- ### Example 2: Competitive Intel **Query:** `/last30days Notion vs Obsidian 2026` **Abbreviated Output:** ```markdown ## Top Patterns ### 1. "Notion for Teams, Ob
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