Lottery
A signal built from the most extreme recent positive daily return, designed to capture lottery-like payoff preference.
A sentiment-style signal that uses recent close-to-open returns as a proxy for firm-specific overnight demand.
Investor Behavior
Overnight Return Sentiment 1
-0.71
Download the complete signal report as a PDF with the full tables, charts, and research framing in one file.
Overnight return sentiment averages each stock's daily overnight return over a one-month window, measuring the price change from the prior close to the next open. Higher values indicate more positive recent overnight pressure.
The core idea is that sentiment-heavy demand often arrives outside regular trading hours and can create temporary price pressure at the open. That makes overnight returns a distinct behavioral signal rather than just another intraday price statistic.
Inside the finance research stack, the representative implementation sorts the Russell 1000 cross-section on the overnight-sentiment score and compares the strongest recent overnight profiles against the weakest profiles in a market-neutral spread.
The first pass on this signal starts with a headline comparison across the sorted signal portfolios and the Russell 1000 benchmark.
Dec 2025
Total Return
CAGR
Sharpe Ratio
Max Drawdown
Top Quintile contains the lowest-ranked names in the representative sort, while Bottom Quintile contains the highest-ranked names.
The baseline return path shows how the top-ranked bucket, bottom-ranked bucket, and long-short spread evolved through time in the representative Russell 1000 formation.
This section checks whether the signal depends too heavily on when the strategy begins. We restart the same baseline long-short construction every six months and compare how the excess return profile changes across those staggered entry dates.
Dec 2025
Jun 2026
Each row uses the same monthly market-weighted portfolio construction as the baseline sort, but starts the sample at the stated month and carries it through the final available month. Excess returns are measured relative to the 3-month U.S. Treasury bill rate, proxied by the FRED 'DTB3' series.
Sector results show whether the signal's long-short behavior is broad across the Russell 1000 or concentrated in a smaller set of industries.
The plot shows average monthly excess returns for sector-specific long-short implementations using the same baseline portfolio construction within each sector.
This section tests how sensitive the turnover-constrained implementation is to the path of portfolio formation. We run 1,000 different paths that each try to maximize the signal while allowing 10% turnover at each monthly rebalance.
The realized path starts from the actual T-B portfolio on the first initialization date. The other paths use random initializations on day one, then follow the same monthly turnover budget through time. The plot shows the distribution of average monthly excess returns across those random-start paths, with the realized path marked separately for comparison.
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