AI Article Synopsis

  • Large language models (LLMs) have transformed technology beyond just natural language processing, capable of handling a wide range of tasks without additional fine-tuning.
  • These models are evolving quickly to tackle challenges like bias, hallucination, and high costs, while also integrating various types of input.
  • There’s increasing interest in small, on-premise open-source LLMs that can be tailored for specific fields like medicine, providing solutions for efficiency, privacy, and performance monitoring.

Article Abstract

Large language models (LLMs) have revolutionized the global landscape of technology beyond the field of natural language processing. Owing to their extensive pre-training using vast datasets, contemporary LLMs can handle tasks ranging from general functionalities to domain-specific areas, such as radiology, without the need for additional fine-tuning. Importantly, LLMs are on a trajectory of rapid evolution, addressing challenges such as hallucination, bias in training data, high training costs, performance drift, and privacy issues, along with the inclusion of multimodal inputs. The concept of small, on-premise open source LLMs has garnered growing interest, as fine-tuning to medical domain knowledge, addressing efficiency and privacy issues, and managing performance drift can be effectively and simultaneously achieved. This review provides conceptual knowledge, actionable guidance, and an overview of the current technological landscape and future directions in LLMs for radiologists.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11473987PMC
http://dx.doi.org/10.3348/jksr.2024.0080DOI Listing

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