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| Funder | Engineering and Physical Sciences Research Council |
|---|---|
| Recipient Organization | The University of Manchester |
| Country | United Kingdom |
| Start Date | Sep 30, 2024 |
| End Date | Sep 29, 2028 |
| Duration | 1,460 days |
| Number of Grantees | 2 |
| Roles | Student; Supervisor |
| Data Source | UKRI Gateway to Research |
| Grant ID | 2932724 |
LLMs have demonstrated a remarkable ability to generate text taking as input images, text, audio and video. They are able to achieve higher performance than traditional neural methods and pre-trained language models without the need of supervised training. The project will examine different approaches for multimodal LLM-based NLP to address
complex and fine-grained tasks such as reasoning in model-based systems engineering. The
PhD will delve into LLM architectures, data augmentation methods, multi-task and domainspecific LLMs, prompting engineering and interpretability.
The University of Manchester
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