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PhD Researcher · Automotive Engineering · Technische Universität Berlin (TU Berlin)

AmirhosseinTaheri

Turning mobility data and simulation into safer decisions.

AV/CAV Safety · SUMO Simulation · Mobility Analytics · Explainable AI

Portrait of Amirhossein Taheri
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13.4050° E
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Research product MobilitySafetyIntelligence An interactive platform translating my PhD evidence into accessible mobility insights.
From research to exploration

This app turns the simulation results from my PhD at TU Berlin into an interactive experience. Whether you work with mobility data every day or are simply curious, you can explore the evidence at your own level.

Inside MSI

MSI, feature
by feature.

A short sequence of the maps and network tools used to explore the research.

New research prototype

SUMO, made easier

Select a packaged network or crop a real street area on the map, configure a scenario, and turn a live SUMO run into readable mobility, safety, and emissions evidence.

Open EZSUMO ↗ Public prototype · live SUMO execution
Amirhossein Taheri
AT / PORTRAIT STUDY2026

Who I Am

Researching
safer mobility systems.

I’m Amirhossein Taheri, a PhD researcher in Automotive Engineering at Technische Universität Berlin (TU Berlin). My research explores how connected and automated vehicles can shape safer and smarter mobility systems.

I combine SUMO microsimulation, surrogate-safety analysis, mobility analytics, and AI-supported methods to transform complex mobility data into transparent, decision-relevant evidence.

Traffic simulationAV/CAV safetyMobility analyticsExplainable AISmart mobility

Research architecture

Mobility systems
& traffic safety.

My PhD centres on traffic simulation. Alongside it, I pursue traffic safety as an independent research line—connecting simulated systems with crash data, statistical inference, machine learning, and visual observation.

PhD research projectTechnische Universität Berlin

Mobility Safety
Intelligence

Doctoral research · Automotive Engineering · TU Berlin

My PhD research platform uses microscopic traffic simulation to examine connected and automated vehicles in mixed traffic. It connects surrogate-safety analysis with headway and fleet scenarios, spatial hotspots, machine learning, SHAP interpretation, emissions, heat, and network-level mobility evidence.

SUMOCAVSafetyEmissions + heat
Explore AV/CAV safety & simulation outputs ↓
Independent research lineSafety analysis

Traffic safety analysis

Across my papers I examine crash severity and duration, injury outcomes, vehicle effects, young-driver and rural-road risk, road-level heterogeneity, and spatiotemporal safety patterns.

Explore crash & road safety outputs ↓
System intelligenceAnalytics

Mobility analytics

Turning simulation, crash, spatial, and visual data into interpretable patterns and decision-relevant evidence.

Explore mobility analytics & AI ↓
Analytical toolkit

Methods used across my papers.

01 Statistical + econometric modelling 02 Machine + deep learning · imbalance handling 03 Multilevel + spatiotemporal analysis 04 Multisource data fusion + visual analytics 05 Surrogate safety + simulation analytics

Research outputs

Ideas, evidence
& applications.

Switch between peer-reviewed evidence and the projects that connect the methods, applications, and wider research questions.

The same categories are used in the research architecture, filters, and research guide.

Peer-reviewed journal articles 09

07
2023 · Peer reviewed

Transportation mode choice analysis for accessibility of the Mehrabad International Airport by statistical models

International Journal of Transport and Vehicle Engineering, 17(2), 102-110

DOI to be added

Book 01

10
2022 · Persian edition

R Programming for Transportation Planning Engineers

Amirkabir University of Technology

Book

Manuscripts under review / revision 03

11
2026 · Under review

Pandemic Road Safety: How COVID-19 Policies Shaped Crash Severity in England

Injury Prevention (BMJ) · Manuscript ip-2026-046183

Under review
12
2026 · Under review

Unsafe road user behaviors on rural roads in Hamedan Province, Iran

Injury Prevention (BMJ) · Manuscript ip-2026-046270

Under review

Preprints 02

Conference contributions 03

16
2026 · Conference

Women's Electric Scooter Adoption: How Religious and Social Norms Shape Acceptance

Transportation Research Board 2026 Annual Meeting

Conference contribution
17
2026 · Conference

Exploring e-scooter rider comfort through video-based analysis using machine learning on protected lanes

Transportation Research Board 2026 Annual Meeting · Tehran case study

Conference contribution
18
2025 · Conference

Coupling SUMO traffic simulator with PALM microscale urban climate model to assess the impact of traffic waste heat on urban microclimates

12th International Conference on Urban Climate · Rotterdam

Conference contribution

Academic service

Peer review
experience.

I contribute to scholarly quality through peer review in transportation, traffic safety, mobility analytics, and data-driven research, including work associated with Taylor & Francis, Springer Nature, and transportation conferences.

01

Transportation & mobility

Research on mobility systems, behaviour, operations, and future transport.

02

Traffic & road safety

Crash outcomes, surrogate safety, risk modelling, and safety performance.

03

Analytics & AI

Statistical, machine-learning, spatial, and simulation-based evidence.

Academic development

Supervision
& credentials.

I support emerging researchers in study design, simulation and data analysis, interpretation, and academic writing. The selected work below spans automated mobility, crash severity, machine learning, and policy evaluation.

2025–2026BSc thesis

Anton Dorn

Assessment of the Safety Impacts of Autonomous Vehicles in Relation to Market Penetration and Vehicle Fleet Composition: A SUMO Scenario Study for Berlin-Charlottenburg

2025MSc thesis

Yini Li

Evaluation and Sensitivity Analysis of Calibrated Traffic-Safety Parameters in Connected and Autonomous Vehicle Simulations

2025BSc thesis

Arton Advula

COVID-19 Policy Measures and Road Traffic Injury Severity in Great Britain: A Hybrid Logistic Regression Approach

2024MSc thesis

Jing Yang

The Impact of Connected and Automated Vehicles on Road Safety: A Meta-Analysis Considering Market Penetration Rate

2024MSc thesis

Siguang Zhu

Machine Learning for Enhancing Road Safety: Evaluating Crash Severity Prediction Models - A Case Study of Australia

2024MSc thesis

Kevin Switala

Analysis of Imbalanced Traffic Data: A Comparative Study of Machine Learning Models for Predicting Accident Severity in England

Amirhossein Taheri taking a break beside his bicycle in a natural landscape

Open channel

Build safer, smarter
mobility together.

For research conversations, collaborations, simulation work, or questions about a paper, use the email button below to contact me at Technische Universität Berlin.