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A New Multi-modal Dataset and Two-stage DNN Approach for Acute Ischemic Stroke Detection

  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Multi-modal data play an essential role in medical diagnostics, in particular for the detection of acute ischemic stroke (AIS). However, existing methods for AIS detection focus on single-modality learning, neglecting the advantages of integrating multiple modalities as well as lacking multi-modal database. In this paper, we introduce a novel multi-modal dataset consisting of 80 cases with 5 medical modalities and propose a two-stage deep neural network (DNN) framework designed for AIS detection. The proposed framework includes two subnet: A lesion localization subnet for the preliminary identification of potential lesion regions, and a stroke segmentation subnet for the precise delineation of stroke areas. Additionally, we incorporate a Transformer-based multi-modal fusion module that effectively learns cross-attention between different modalities. The proposed method is evaluated on our newly established multi-modal dataset, and experimental results demonstrate that our method achieves the state-of-the-art performance for AIS detection.

Original languageEnglish
Title of host publicationIEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331515669
DOIs
StatePublished - 2024
Event2nd IEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024 - Zhuhai, China
Duration: 22 Nov 202424 Nov 2024

Publication series

NameIEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024

Conference

Conference2nd IEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024
Country/TerritoryChina
CityZhuhai
Period22/11/2424/11/24

Keywords

  • AIS detection
  • lesion localization
  • multi-modal database
  • stroke segmentation

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