
The mining industry is undergoing a rapid transition towards increased automation, electrification, and digitalisation. Autonomous vehicles and machines are increasingly being used to improve safety, productivity, and sustainability. At the same time, mining operations often consist of mixed machine fleets from several different suppliers, where autonomous and manually operated vehicles need to work together within the same operational area. Despite technological advances, there are currently no established solutions that enable efficient and safe collaboration between autonomous systems from different manufacturers. This limits flexibility, increases costs, and makes large-scale implementation of autonomous mining operations more difficult.
To enable the autonomous mines of the future, vehicles, machines, and control systems from different suppliers must be able to share information, understand one another’s intentions, and make coordinated decisions in real time. Today’s autonomous mining solutions are often supplier-specific, creating lock-in, limiting scalability, and making efficient collaboration in shared operational areas more difficult. This is particularly important in Autonomous Operation Zones (AOZs), where autonomous haul trucks, loaders, manually operated vehicles, and higher-level control systems need to coexist under shared traffic and safety rules.
The master’s thesis will be carried out within the CAVE project — Interoperable Collaboration of Autonomous Vehicles and Machines for Efficient Mining Operations. The project aims to develop and evaluate principles, architectures, and design guidelines for supplier-neutral interoperability between autonomous and manually operated vehicles in mining environments. A central starting point is the evaluation of a broker-based system-of-systems architecture for coordinating autonomous mining transport operations involving multiple suppliers.
The aim of the master’s thesis is to develop an initial version of a simulation platform for evaluating architectural principles that allow vehicles and machines from different suppliers to collaborate in realistic mining scenarios. The simulation will be used to test and validate key assumptions in the architecture, such as how shared situational awareness, intentions, traffic rules, prioritisation, and fallback behaviours can be modelled and how they affect productivity, waiting times, and robustness.
Possible research questions include:
The expected outcome is an executable simulation model with documented scenarios, an analysis of key parameters, and a report showing how simulation can be used to validate and further develop the CAVE project’s architecture and design principles. The thesis can thereby contribute both to the project’s technical development and to future standardisation of interoperable autonomous transport systems in mining environments.
The master’s thesis is expected to include the following tasks:
Suitable backgrounds and meritorious skills include:
About the master’s thesis:
Supervision and compensation:
About the project:
The master’s thesis will be carried out within CAVE — Interoperable Collaboration of Autonomous Vehicles and Machines for Efficient Mining Operations, a research and innovation project involving RISE, Boliden, Volvo Autonomous Solutions, Scania, and Epiroc.
The project builds on previous research on interoperability between autonomous machines and vehicles in mining environments and is linked to international standardisation in autonomous transport and mining operations.
Welcome with your application!
The application deadline is October 8th. Selection and interviews will take place continuously during and after the application period. Please send your application including CV and transcript of records.

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