News sentiment score trends for any topic over time. Free key at trendsapi.ai
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News sentiment as clean JSON: positive/negative tone scores for any topic over time, with growth windows and volume context from one REST endpoint. NLP already done - you get a number, not a corpus.
One endpoint. One API key. One normalized 0-100 trend score you can compare against 14 other platforms.
Docs: https://trendsapi.ai/#quickstart Β· llms.txt: https://trendsapi.ai/llms.txt Β· Free API key (100 req/mo): https://trendsapi.ai/#get-key
1. Get a free API key at https://trendsapi.ai/#get-key - 100 requests/month, no credit card.
2. Make your first call:
Python:
Node.js:
| Mode | What it returns | Needs a keyword? |
|---|---|---|
get_time_series | Historical sentiment score as a normalized 0-100 series | yes |
get_growth | Growth % over 3M / 6M / 12M / 5Y windows | yes |
get_top_trends | Live trending feeds (21 of them) | no |
| DIY sentiment pipeline | Trends API | |
|---|---|---|
| NLP pipeline | build and maintain your own | pre-computed scores |
| Output | raw articles to classify | one score per period |
| History | store it yourself | weekly/daily series included |
| Cross-signal compare | no | same scale as volume, search, social |
| Free tier | n/a | 100 requests/month |
The same API key powers the Trends API MCP server, so Claude, Cursor, VS Code, ChatGPT and any MCP-compatible client can query this data in natural language.
Cursor / Windsurf / Cline (~/.cursor/mcp.json or equivalent):
VS Code / GitHub Copilot (.vscode/mcp.json):
Claude Desktop (claude_desktop_config.json):
Claude.ai (browser): Settings -> Connectors -> Add custom connector -> https://api.trendsapi.ai/mcp
Then ask things like:
| Source | source value | What it measures |
|---|---|---|
| Google Search | google search | Search volume |
| Google Images | google images | Image search volume |
| Google News | google news | News search volume |
| Google Shopping | google shopping | Shopping search volume |
| YouTube | youtube | Search volume |
| TikTok | tiktok | Hashtag volume |
reddit | Subreddit subscribers | |
| Amazon | amazon | Product search volume |
| Wikipedia | wikipedia | Page views |
| News volume | news volume | Article mention volume |
| News sentiment | news sentiment | Positive / negative score |
| App downloads | app downloads | Android downloads (AppBrain) |
| App rankings | app rankings | Android chart position |
| npm | npm | Weekly package downloads |
| Steam | steam | Concurrent players (monthly) |
get_top_trends, no keyword needed)| Feed | type value |
|---|---|
| Google Trends | Google Trends |
| Google News Top News | Google News Top News |
| TikTok Trending Hashtags | TikTok Trending Hashtags |
| TikTok Trending Searches | TikTok Trending Searches |
| TikTok Shop Hot Products | TikTok Shop Hot Products |
| YouTube Trending | YouTube Trending |
| X (Twitter) Trending | X (Twitter) Trending |
| Reddit Hot Posts | Reddit Hot Posts |
| Reddit World News | Reddit World News |
| Wikipedia Trending | Wikipedia Trending |
| Amazon Best Sellers Top Rated | Amazon Best Sellers Top Rated |
| Amazon Best Sellers by Category | Amazon Best Sellers by Category |
| App Store Top Free | App Store Top Free |
| App Store Top Paid | App Store Top Paid |
| Google Play | Google Play |
| Top Websites | Top Websites |
| Spotify Top Podcasts | Spotify Top Podcasts |
| Steam Most Played | Steam Most Played |
| GitHub Trending Repos | GitHub Trending Repos |
| IMDb MOVIEmeter | IMDb MOVIEmeter |
| Open Library Trending Books | Open Library Trending Books |
A positive/negative sentiment score for any topic as a time series (weekly or daily), plus growth windows showing how tone is shifting. Pair it with the news volume source to see tone and attention together.
Articles mentioning your keyword are classified for tone, then aggregated into a normalized score per period. You get the number - no corpus handling, no model hosting.
Yes, and you should: rising negative sentiment on rising volume is a very different signal than rising negative sentiment on falling volume. Both sources come back in the same response shape.
Up to 5 years on paid plans; 90 days on the free tier.
It is an alternative-data input used in research workflows. Like any sentiment signal, treat it as one input among many, not a trading system by itself.
MIT - see LICENSE. Data is served by Trends API; usage of the API itself is subject to the plan limits on your key.
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