SOTAVerified

Medical Report Generation

Medical report generation (MRG) is a task which focus on training AI to automatically generate professional report according the input image data. This can help clinicians make faster and more accurate decision since the task itself is both time consuming and error prone even for experienced doctors.

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Deep neural network and transformer based architecture are currently the most popular methods for this certain task, however, when we try to transfer out pre-trained model into this certain domain, their performance always degrade.

The following are some of the reasons why RSG is hard for pre-trained models:

  • Language datasets in a particular domain can sometimes be quite different from the large number of datasets available on the Internet
  • During the fine-tuning phase, datasets in the medical field are often unevenly distributed

More recently, multi-modal learning and contrastive learning have shown some inspiring results in this field, but it's still challenging and requires further attention.

Here are some additional readings to go deeper on the task:

https://arxiv.org/abs/2004.12150

(Image credit : Transformers in Medical Imaging: A Survey)

Papers

Showing 3140 of 110 papers

TitleStatusHype
A Labeled Ophthalmic Ultrasound Dataset with Medical Report Generation Based on Cross-modal Deep Learning0
MedRAT: Unpaired Medical Report Generation via Auxiliary Tasks0
MiniGPT-Med: Large Language Model as a General Interface for Radiology DiagnosisCode2
A Survey on Trustworthiness in Foundation Models for Medical Image Analysis0
Towards a Holistic Framework for Multimodal Large Language Models in Three-dimensional Brain CT Report GenerationCode1
CoMT: Chain-of-Medical-Thought Reduces Hallucination in Medical Report Generation0
Structural Entities Extraction and Patient Indications Incorporation for Chest X-ray Report GenerationCode1
Factual Serialization Enhancement: A Key Innovation for Chest X-ray Report GenerationCode1
Topicwise Separable Sentence Retrieval for Medical Report Generation0
GSCo: Towards Generalizable AI in Medicine via Generalist-Specialist CollaborationCode2
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1RGRGBLEU-137.3Unverified
2SEI-1BLEU-20.25Unverified
#ModelMetricClaimedVerifiedStatus
1HistGenBLEU-40.18Unverified
#ModelMetricClaimedVerifiedStatus
1X-RGenBLEU-40.18Unverified