Predictive Strength

Negligible
Cardano historically had 5.18% 30 days returns when Attention Index was▆ Moderate (0.4 - 0.6). It indicates average expected returns.
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ADA Price with Attention Index

Factor Plot

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▆ Very Low▆ Low▆ Moderate▆ High▆ Very High

Predictive Strength

Negligible

Measures the assets' overall share of all conversations about crypto.

Potential Edge

Granger-Causal Relationship to Price Action

Investor attention demonstrably precedes Bitcoin returns and volatility, acting as a predictive factor. Studies show attention metrics (Google Trends, social volume) Granger-cause price movements, with predictive accuracy improvements of 20% over baseline models in out-of-sample tests. This aligns with behavioral finance principles where attention drives retail investor inflows before institutional actors react.

Liquidity Proxy for Altcoins

For smaller-cap assets, attention directly impacts liquidity. A 10% increase in conversation share reduces idiosyncratic risk by improving market depth and narrowing bid-ask spreads. This creates a self-reinforcing cycle: rising attention → improved liquidity → reduced volatility → sustained attention.

Data Collection Methodology

The Attention Index sources data from social media platforms, forums, and crypto-related websites to track conversation volumes about specific assets. These inputs are aggregated and normalized against historical averages to determine relative attention levels, with maximum score of 1 indicating heightened interest compared to past trends.

Read more about our methodology

Track this predictive factor on your dashboard

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Scatter plot - Attention Index and ADA 30 and 90 Day Average Returns

Backtest - Strategy Performance

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To understand a predictive factors predictive power, we create a simple long/short strategy and simulate its past performance (with daily rebalancing):

  • 100% Long when the predictive factor is close to 1, with a position size equivalent to the predictive factor value.
  • Flat when the predictive factor is close to 0, with a position size equivalent to the predictive factor value.

The strategy is rebalanced daily, on a continuous basis. There are 0.5% transaction costs applied on each position adjustment.

API

Get started by validating the historical performance of the strategy with our transparent code snippets.
Copy and paste the code snippets below into your Python environment or download the files below.

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Our Methodology