Cluster Analysis for Evaluating Trading Strategies

Jeff Bacidore et al.

The Journal of Trading2018https://doi.org/10.3905/jot.2018.13.4.132article
ABDC C
Weight
0.26

What the paper says

In this article, we introduce a new methodology to empirically identify the primary strategies used by a trader using only post-trade fill data. To do this, we apply a well-established statistical clustering technique called k-means to a sample of progress charts, representing the portion of the order completed by each point in the day as a measure of a trade’s aggressiveness. Our methodology identifies the primary strategies used by a trader and determines which strategy the trader used for each order in the sample. Having identified the strategy used for each order, trading cost analysis can be performed by strategy. We also discuss ways to exploit this technique to characterize trader behavior, assess trader performance, and suggest the appropriate benchmarks for each distinct trading strategy. <b>TOPICS:</b>Statistical methods, portfolio management/multi-asset allocation, performance measurement

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https://doi.org/https://doi.org/10.3905/jot.2018.13.4.132

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@article{jeff2018,
  title        = {{Cluster Analysis for Evaluating Trading Strategies}},
  author       = {Jeff Bacidore et al.},
  journal      = {The Journal of Trading},
  year         = {2018},
  doi          = {https://doi.org/https://doi.org/10.3905/jot.2018.13.4.132},
}

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Evidence weight

0.26

Balanced mode · F 0.40 / M 0.15 / V 0.05 / R 0.40

F · citation impact0.00 × 0.4 = 0.00
M · momentum0.20 × 0.15 = 0.03
V · venue signal0.50 × 0.05 = 0.03
R · text relevance †0.50 × 0.4 = 0.20

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