Correlation Between NYSE Composite and Nova Fund

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Can any of the company-specific risk be diversified away by investing in both NYSE Composite and Nova Fund at the same time? Although using a correlation coefficient on its own may not help to predict future stock returns, this module helps to understand the diversifiable risk of combining NYSE Composite and Nova Fund into the same portfolio, which is an essential part of the fundamental portfolio management process.
By analyzing existing cross correlation between NYSE Composite and Nova Fund Class, you can compare the effects of market volatilities on NYSE Composite and Nova Fund and check how they will diversify away market risk if combined in the same portfolio for a given time horizon. You can also utilize pair trading strategies of matching a long position in NYSE Composite with a short position of Nova Fund. Check out your portfolio center. Please also check ongoing floating volatility patterns of NYSE Composite and Nova Fund.

Diversification Opportunities for NYSE Composite and Nova Fund

0.65
  Correlation Coefficient

Poor diversification

The 3 months correlation between NYSE and Nova is 0.65. Overlapping area represents the amount of risk that can be diversified away by holding NYSE Composite and Nova Fund Class in the same portfolio, assuming nothing else is changed. The correlation between historical prices or returns on Nova Fund Class and NYSE Composite is a relative statistical measure of the degree to which these equity instruments tend to move together. The correlation coefficient measures the extent to which returns on NYSE Composite are associated (or correlated) with Nova Fund. Values of the correlation coefficient range from -1 to +1, where. The correlation of zero (0) is possible when the price movement of Nova Fund Class has no effect on the direction of NYSE Composite i.e., NYSE Composite and Nova Fund go up and down completely randomly.
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Pair Corralation between NYSE Composite and Nova Fund

Assuming the 90 days trading horizon NYSE Composite is expected to generate 0.53 times more return on investment than Nova Fund. However, NYSE Composite is 1.88 times less risky than Nova Fund. It trades about -0.28 of its potential returns per unit of risk. Nova Fund Class is currently generating about -0.15 per unit of risk. If you would invest  2,010,779  in NYSE Composite on October 7, 2024 and sell it today you would lose (85,350) from holding NYSE Composite or give up 4.24% of portfolio value over 90 days.
Time Period3 Months [change]
DirectionMoves Together 
StrengthSignificant
Accuracy100.0%
ValuesDaily Returns

NYSE Composite  vs.  Nova Fund Class

 Performance 
       Timeline  

NYSE Composite and Nova Fund Volatility Contrast

   Predicted Return Density   
       Returns  

Pair Trading with NYSE Composite and Nova Fund

The main advantage of trading using opposite NYSE Composite and Nova Fund positions is that it hedges away some unsystematic risk. Because of two separate transactions, even if NYSE Composite position performs unexpectedly, Nova Fund can make up some of the losses. Pair trading also minimizes risk from directional movements in the market. For example, if an entire industry or sector drops because of unexpected headlines, the short position in Nova Fund will offset losses from the drop in Nova Fund's long position.
The idea behind NYSE Composite and Nova Fund Class pairs trading is to make the combined position market-neutral, meaning the overall market's direction will not affect its win or loss (or potential downside or upside). This can be achieved by designing a pairs trade with two highly correlated stocks or equities that operate in a similar space or sector, making it possible to obtain profits through simple and relatively low-risk investment.
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Note that this page's information should be used as a complementary analysis to find the right mix of equity instruments to add to your existing portfolios or create a brand new portfolio. You can also try the Watchlist Optimization module to optimize watchlists to build efficient portfolios or rebalance existing positions based on the mean-variance optimization algorithm.

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