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February 5, 2026Future Transportation0 citationsOpen Access

Left-Turn Conflict Predictive Modeling Using Surrogate Safety Measures at Urban Intersections: The Case Study of Thessaloniki

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VZVictoria ZorbaAAApostolos AnagnostopoulosKMKonstantinos Michopoulos

Key Points

  • The aim is to analyze left-turn safety at urban intersections using surrogate safety measures from field observations.
  • Conducted video observations of left-turn conflicts at various urban intersection types in Thessaloniki.
  • Extracted surrogate safety measures including time-to-collision (TTC) and post-encroachment time (PET) from the video data.
  • Estimated count-based models (Poisson, Negative Binomial) and machine-learning approaches (Random Forest, Gradient Boosting) for analysis.
  • Linked surrogate safety measures to geometric attributes, traffic conditions, and signal operations.
  • Increased pedestrian volume and shared left-turn lanes raised PET-defined conflicts, while high opposing flow and wider lanes reduced them.
  • TTC events correlated with lower vehicle speeds and protected left-turn signal phases, while influenced by passenger car numbers.
  • Machine-learning models performed worse than classical count models due to limited sample size and data structure.

Abstract

This study investigates left-turn safety at urban intersections using surrogate safety measures derived from field video observations. Time-to-Collision (TTC) among motorized traffic and Post-Encroachment Time (PET) among pedestrian and motorized traffic were extracted for left-turn conflicts across five intersection types in Thessaloniki, Greece, and linked to geometric attributes, signal operations, and traffic conditions. Count-based models (Poisson, Negative Binomial) were estimated alongside machine-learning approaches (Random Forest, Gradient Boosting with Poisson loss). For PET events, the Poisson model had the best balance of parsimony and predictive accuracy, whereas the Negative Binomial model provided a superior fit for TTC events. Results indicate that PET-defined conflicts increased with pedestrian volume and the presence of shared and protected left-turn lanes, and decreased with higher opposing flow, greater average acceleration, and wider end-approach lanes. By contrast, TTC events were associated with lower average speeds, the presence of protected signal phasing for left turns, and the number of passenger cars. Machine-learning models underperformed relative to classical count models, reflecting limited sample size and the discrete event structure. The analysis indicates that the determinants of TTC and PET differ, with certain variables such as pedestrian activity and lane configuration having contrasting effects on the two surrogate safety measures. The analysis reveals that pedestrian demand and shared lane configurations significantly increase PET occurrences, whereas TTC events are more strongly associated with vehicle volumes, speeds, and signal phasing. This distinction underscores the importance of tailoring safety assessment and intervention strategies to the type of interaction being evaluated.

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Cite This Study

Zorba et al. (2026) studied this question.

synapsesocial.com/papers/698435b9f1d9ada3c1fb4e81https://doi.org/10.3390/futuretransp6010036
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