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Tag: Quantitative Strategy
Market Knowledge & Data Guides

TEJ Point-in-Time Audited Financial Database  – Rejecting “Peek-ahead” Backtesting

TEJ PIT Audited Financial Database eliminates look-ahead and survivorship bias with Point-in-Time data, full version retention, IFRS alignment, and 300+ ready-to-use ratios—delivering reliable backtesting and faster strategy development.

2025.09.22 more
Factor Investing

Factor Strategy – Capital Gain Overhang | Part 2 

In the previous study, we examined the Capital Gain Overhang (CGO) factor, designed to capture the behavioral bias known as the Disposition Effect. By measuring the gap between current market prices and investors’ average cost basis, CGO quantifies unrealized gains and losses at the market level. Empirical tests in Taiwan’s equity market confirmed that CGO is a meaningful predictor of future returns: high-CGO stocks consistently outperformed low-CGO stocks, generating significant positive alpha beyond standard Fama–French models, especially over medium- to long-term horizons.

2025.08.12 more
Factor Investing

Factor Research –Capital Gain Overhang | Part 1

The origins of the momentum anomaly have long been debated, with multiple competing explanations. Among them, one of the most influential behavioral interpretations attributes momentum to the Disposition Effect, a systematic bias in investor decision-making. This article focuses on the Capital Gain Overhang (CGO) factor, specifically designed to quantify this behavioral bias. Using the Taiwan equity market as a case study, we examine CGO’s predictive power as a stock selection indicator and evaluate its practical value through empirical analysis.

2025.08.12 more
Quant Research

Starting from Robert Gaddie’s Stock-Picking Method: Searching for Small-Cap Growth Dark Horses in the Taiwan Stock Market

Discover how Robert Gaddie’s stock-picking method helps uncover hidden small-cap growth gems in Taiwan’s market. This strategy targets under-the-radar companies with earnings momentum and delivers strong backtested returns.

2025.07.15 more
Quant Research

Implementing Peter Lynch’s Investment Philosophy: A Quantitative Strategy Combining Growth and Value

Discover how Peter Lynch’s legendary investment philosophy can be applied to Taiwan’s stock market. This article builds a quantitative GARP strategy using TEJ data to identify undervalued growth stocks—and tests its performance over seven years.

2025.07.02 more
Quant Research

Derwood Chase’s Growth Momentum Stock-Picking Strategy: The Intersection of Value and Momentum

Discover how Derwood Chase’s value-momentum strategy—favoring low P/E stocks with strong price trends—delivers long-term outperformance in Taiwan’s market. Backtest results show strong alpha and lower drawdowns, proving the power of disciplined factor investing.

2025.06.17 more
Quant Research

The Wisdom of Blue-Chip Stocks: Howard Rosman’s Prudent Path to Wealth

Rothman’s core investment philosophy is to “buy right and hold tight” or “buy strong and hold long.” He emphasizes selecting financially sound companies with stable and growing earnings, purchasing them at the right price, and holding them patiently for the long term. Without frequent portfolio adjustments, investors can achieve strong long-term returns. This simple yet resolute investment approach reflects Rothman’s practical wisdom and provides a clear, historically validated foundation for the strategy tested in this study.

2025.06.03 more
Factor Investing

Factor Strategy – Idiosyncratic Volatility | Part 2 

Building on the statistical foundation presented in Part 1, this article explores how Idiosyncratic Volatility (IVOL) can be effectively applied in investment strategy design. We present two categories of approaches: a single-factor sorting model and a set of filter-enhanced momentum strategies. Through robust backtesting across two decades of Taiwan stock market data, we demonstrate how IVOL can improve risk-adjusted performance when used as a portfolio filter—especially when combined with momentum or dividend-based signals.

2025.05.28 more
Factor Investing

Factor Research – Idiosyncratic Volatility | Part 1

In recent years, the low-volatility anomaly has gained widespread attention for challenging traditional asset pricing theory. This article takes a closer look at one key driver behind the anomaly—Idiosyncratic Volatility (IVOL)—through a comprehensive analysis of the Taiwan stock market. Using point-in-time data from the TEJ Factor Library, we investigate the statistical behavior of IVOL, its relationship with stock characteristics, and its implications for cross-sectional return prediction.

2025.05.28 more
Quant Research

Michael Murphy’s Risk Assessment Rules for Investing in High-Tech Stocks

With the rapid development of the high-tech industry, technology stocks have increasingly become the focus of the market. While these stocks offer significant growth potential, they also come with high volatility and substantial investment risk. Investors seeking high returns may face major losses if they fail to properly assess the associated risks. Therefore, effectively measuring and managing the downside risk of high-tech stocks has become a crucial component of sound investment decision-making.

2025.05.20 more
Quant Research

Charles Brandes’ Value Investing Principles : Building a Portfolio with a Margin of Safety

In the field of investing, business cycles have always served as an important reference. Whether it’s fluctuations in the macroeconomy or the ups and downs of corporate earnings, these cycles play a crucial role. Charles Brandes, a distinguished disciple of Benjamin Graham, founded Brandes Investment Partners in 1974 and has since grown its assets under management from $130 million to over $75 billion. The firm’s Brandes Global Equity Fund achieved an impressive 20-year annualized return of 17.91%, significantly outperforming the MSCI World Index, and has received Morningstar’s five-star rating along with numerous international awards. Another flagship product, the AGF International Value Fund, has also demonstrated outstanding long-term performance. Brandes himself has been repeatedly ranked among the world’s top fund managers.

2025.05.08 more
Quant Research

Enhancing Investment Performance of the Ichimoku Cloud with the XGBoost Machine Learning Algorithm

Traditional Ichimoku strategies rely on fixed parameters (9-26-52) and visual interpretation, making them inflexible in adapting to different market conditions. XGBoost learns complex high-dimensional relationships between different data points and enhances the filtering and decision-making process of trading signals. This article use XGBoost to enhance investment performance of Ichimoku Cloud.

2025.03.07 more