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Musketeer: Joint Training for Multi-task Vision Language Model with Task Explanation Prompts

Published 11 May 2023 in cs.CV, cs.AI, and cs.CL | (2305.07019v2)

Abstract: We present a vision-LLM whose parameters are jointly trained on all tasks and fully shared among multiple heterogeneous tasks which may interfere with each other, resulting in a single model which we named Musketeer. The integration of knowledge across heterogeneous tasks is enabled by a novel feature called Task Explanation Prompt (TEP). With rich and structured information such as task input/output format, TEP reduces interference among tasks, allowing the model to focus on their shared structure. With a single model, Musketeer achieves results comparable to or better than strong baselines trained on single tasks, almost uniformly across multiple tasks.

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