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  1. Home
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  3. Octodamus Core
  4. vs Patternfetch
Side-by-Side Model Context Protocol Comparison

Octodamus Core vs Patternfetch

In-depth architectural comparison of the Octodamus Core and Patternfetch MCP servers. Compare execution transports, security boundaries, tool capabilities, quality scores, and ready-to-paste client installation snippets for Claude, Cursor, Windsurf, and VS Code.

At a Glance & Executive Verdict

Octodamus Core
Finance & Fintech · Remote HTTP/SSE
Quality: 63/100 (Good) | Auth: API Key required
Patternfetch
Finance & Fintech · Local stdio
Quality: 57/100 (Good) | Auth: No auth required
Verdict Summary: Choose Octodamus Core if you need specialized Finance & Fintech tools running via a hosted cloud SSE transport. Choose Patternfetch if your workspace requires Finance & Fintech integration with local subprocess execution. Both servers can be configured concurrently in your client's mcpServers manifest.

Which MCP Server Should You Choose?

Octodamus Core logo

Choose Octodamus Core when:

  • You need dedicated capabilities in the Finance & Fintech domain.
  • You prefer remote streaming HTTP/SSE transport architecture.
  • Your security boundary fits: API Key required (Freemium).
  • Primary tools included: get_agent_signal, get_market_brief, get_polymarket_edge.
Explore Octodamus Core Details
Patternfetch logo

Choose Patternfetch when:

  • You need dedicated capabilities in the Finance & Fintech domain.
  • You prefer local stdio subprocess transport architecture.
  • Your security boundary fits: No auth required (Free / Open Source).
  • You have access to required keys: PATTERNFETCH_API_KEY, PATTERNFETCH_MCP_URL.
  • Primary tools included: patternfetch_brief, patternfetch_multi, patternfetch_delta.

Feature & Specification Comparison

Specification
Octodamus Core logo
Octodamus Core
Octodamus
Finance & Fintech
Patternfetch logo
Patternfetch
Finance & Fintech
SummaryAI consensus market oracle for crypto traders and autonomous agents. 11-signal BUY/SELL/HOLD consensus (RSI, MACD, funding rate, L/S ratio, on-chain flow, Fear & Greed, congressional trading), Polymarket prediction market edges with EV scoring, Grok X crowd sentiment divergence. Ed25519-signed, on-chain verifiable. x402 micropayments at $0.01/call on Base, or 500 req/day free.Crypto ticker+timeframe → compact market-state brief (patterns, S/R, regime). Not advice.
Category & Scope

Tools & Capabilities Breakdown

Octodamus Core Tools (8)

get_agent_signal
BUY/SELL/HOLD + confidence + Fear & Greed + BTC price + Polymarket edges
get_market_brief
One-paragraph oracle read across all assets + macro. Drop into any LLM system prompt.
get_polymarket_edge
Prediction market opportunities with EV, true probability, Kelly sizing
get_sentiment
AI sentiment score per asset (-1.0 bearish to +1.0 bullish)
get_prices
Live prices with 24h change for BTC, ETH, SOL (+ stocks with key)
get_oracle_signals
Raw 11-signal consensus votes — RSI, MACD, funding rate, L/S ratio, taker flow, whale moves

Ready-to-Paste Client Configurations

Paste either (or both) of these JSON server blocks into your client config file (e.g. claude_desktop_config.json or ~/.cursor/mcp.json).

Octodamus Core Configuration
mcpServers (Claude Desktop / Cursor)
{
  "mcpServers": {
    "octodamus-octodamus-core": {
      "url": "https://api.octodamus.com"
    }
  }
}
Patternfetch Configuration
mcpServers (Claude Desktop / Cursor)
{
  "mcpServers": {
    "patternfetch": {
      "command": "npx",
      "args": [
        "-y",
        "patternfetch-mcp"
      ],
      "env": {
        "PATTERNFETCH_API_KEY": "YOUR_PATTERNFETCH_API_KEY_HERE",
        "PATTERNFETCH_MCP_URL": "YOUR_PATTERNFETCH_MCP_URL_HERE"
      }
    }
  }
}

Frequently Asked Questions

Octodamus Core is categorized under Finance & Fintech and uses a remote streaming HTTP/SSE transport. In contrast, Patternfetch belongs to Finance & Fintech using local stdio subprocess. Select Octodamus Core when you need capabilities focused on finance & fintech and Patternfetch when you require tools for finance & fintech.

More alternatives to Octodamus CoreMore alternatives to PatternfetchFinance & Fintech category hub

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Popular comparisons with Patternfetch

Explore Patternfetch Details
Finance & Fintech
Finance & Fintech
Quality signal63/100 (Good)57/100 (Good)
Transport ProtocolRemote HTTP/SSELocal Subprocess (stdio)
Auth RequirementAPI Key requiredNo auth required
Pricing ModelFreemiumFree / Open Source
Required Env VarsNone required
PATTERNFETCH_API_KEYPATTERNFETCH_MCP_URL
Compatible Clients
Claude DesktopCursorWindsurfClineVS Code
Claude DesktopCursorWindsurfClineVS Code
Install path signalRemote (HTTP/SSE) · highnpx · high
Engagement & Health 3 views 0 copies 0 upvotes 2 stars 2 views 0 copies 0 upvotes 0 stars
Verified / OfficialCommunity ListingCommunity Listing
Open full listingView Octodamus Core ListingView Patternfetch Listing
get_data_sources
All 27 live data feeds with update frequencies
get_all_data
Everything in one call — signal + edges + sentiment + prices + brief

Patternfetch Tools (6)

patternfetch_brief
Get a token-compact market-state brief for a stock, ETF, or crypto ticker + timeframe. Returns compact candles, detected chart/candlestick patterns with geometric confidence AND a backtested historical base rate (how often that pattern+timeframe+confidence-band actually resolved its way), support/resistance levels, trend/regime, and interpreted indicators (RSI/EMA state) plus a one-line summary. Covers US stocks/ETFs (split & dividend adjusted, delayed/EOD) and crypto spot (realtime). WHEN: an agent needs the current technical picture of a market without dumping raw OHLCV into context (saves tokens, avoids numeric hallucination). WHEN NOT: you need order execution or portfolio advice. Examples: {"ticker":"AAPL","timeframe":"1d"}, {"ticker":"BTC/USDT","timeframe":"4h"}. Output is impersonal market data, NOT investment advice.
patternfetch_multi
Get a multi-timeframe market-state view for one stock, ETF, or crypto ticker in a single call: a token-compact brief for each requested timeframe (default 1h, 4h, 1d) PLUS a cross-timeframe alignment read — whether the trends across timeframes agree or diverge, with the split spelled out (e.g. "1h up / 4h up / 1d down"). WHEN: an agent wants to know if a setup is confirmed across horizons or conflicting between them, without making 3 separate brief calls. WHEN NOT: you only care about one timeframe (use brief). The alignment/divergence is impersonal DESCRIPTIVE data, not a signal to act on. Example: {"ticker":"BTC/USDT","timeframes":["1h","4h","1d"]}. Not investment advice.
patternfetch_delta
Get only what CHANGED since your last brief for a ticker+timeframe (trend flips, new patterns, RSI-state changes). WHEN: an agent polls the same market repeatedly and wants minimal tokens — call brief once, then delta on each later poll. WHEN NOT: first look at a market (use brief). Returns changed=false when nothing material changed. Example: {"ticker":"BTC/USDT","timeframe":"4h"}. Impersonal data, not advice.
patternfetch_analogs
Find earlier windows IN THE SAME SERIES whose shape resembles the current price action and return the FULL distribution of what followed (win-rate, median, min, max, n) over a fixed forward horizon. Parameters: window = how many recent bars form the shape being matched (default 32); horizon = how many bars forward each match is measured over (default 20). WHEN: an agent wants the historical spread of outcomes after a similar-looking setup, including how wide and how uncertain that spread is. WHEN NOT: you want the current technical picture (use brief), you want to find candidates across the market (use scan), or you need one expected value — this deliberately returns a distribution, not a point estimate. NOT a prediction, NOT a backtest of a strategy; past distribution does not guarantee future results. Example: {"ticker":"ETH/USDT","timeframe":"1d"}. Impersonal data, not advice.
patternfetch_scan
Scan US stocks, ETFs, and crypto for tickers currently in a given regime or showing a chart/candlestick pattern, RANKED by the honest backtested base rate + 95% CI — discovery, NOT lookup. This is the screener: instead of asking about one ticker you already know, ask "which tickers right now are in an uptrend / printing a double_bottom, and which of those has the strongest historical base rate?" and get a ranked shortlist back. Precomputed daily over a curated universe (liquid US large-caps + core/sector ETFs + major crypto pairs) so it is fast and cheap. Filters (all optional): assetClass ("stock"|"crypto"|"all"), regime ("up"|"down"|"range"), pattern (e.g. "double_bottom","double_top","head_and_shoulders","bullish_engulfing","bearish_engulfing","hammer"), minLift (-1..1 in rate points, e.g. 0.02 = keep only patterns beating their OWN pattern-free baseline by >= 2pp; 0 = at or above baseline), minBaseRate (0..1, drop tickers whose top pattern base rate is below this), tf, limit. PREFER minLift over minBaseRate: a raw base rate is not comparable across bullish and bearish rows, so minBaseRate:0.55 mostly returns bullish patterns in a rising universe before any of them carries information, whereas minLift returns the ones that measurably add something. Rows with no baseline in the evidence table are excluded by any minLift (absence of a lift is not a lift of 0). Each row: {sym, tf, assetClass, regime, pattern, baseRate, ci95, n, scope, confidence, asOf} PLUS the drift-free comparison {baseline, lift, liftCi95, liftReading} — baseline is the direction-matched rate with no pattern present, lift is baseRate minus that baseline, and liftReading says whether the difference is distinguishable from zero at all ("above-baseline" | "below-baseline" | "indistinguishable-from-baseline"). Read lift, not baseRate, when comparing a bullish row against a bearish one: in a rising universe a bullish pattern starts ahead before it carries any information. Ranked by baseRate desc, then confidence desc, then narrower CI, then fresher asOf. WHEN: an agent wants to FIND candidates across the market, not analyze a named one (then call brief on the shortlist). WHEN NOT: you already have a specific ticker (use brief). Example: {"assetClass":"all","regime":"up","minLift":0.02,"limit":20}. Impersonal historical data, not investment advice; base rates are gross directional frequencies and do not guarantee future results.
patternfetch_capabilities
Return patternfetch's own capability matrix: which asset classes are covered (US stocks, ETFs, crypto spot), the data source and delay for each, the supported timeframes, the endpoint list, the per-call prices and tier limits, and the product version. Takes no arguments and returns the same static self-description on every call — it contains NO market data (no quotes, candles, patterns or base rates). WHEN: once at the start of a session, to learn which asset classes and timeframes are supported before calling brief/multi/delta/analogs/scan, instead of guessing and getting a validation error. WHEN NOT: you already know the ticker and timeframe are supported (go straight to brief), or you want actual market data (this returns none).
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