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Compression Strategies for Efficient Storage and Access of Whole Slide Images

Mémoire / Mémoire de master

Leuven (Belgium)

Publiée le 2 septembre 2026

  • Contrat

    Mémoire / Mémoire de master

  • Lieu

    Leuven (Belgium)

  • Date de début

    Dès que possible

  • Salaire

    Information non renseignée

  • Télétravail

    Non spécifié

Background

Whole Slide Imaging (WSI) produces gigapixel images, creating major challenges for storage, transmission, and interactive visualization. Current systems rely on classical compression methods such as JPEG, however, these approaches are not fully optimized for WSI-specific characteristics like large homogeneous regions and the need for fast region-of-interest (ROI) access. Balancing compression efficiency with low-latency decoding and smooth navigation remains an open challenge in digital pathology systems.

Objectives

This thesis aims to investigate efficient, compression strategies for WSI.

Key objectives include:
  • Comparing classical codecs (e.g., JPEG, JPEG2000) for compression efficiency and quality
  • Analyzing multi-resolution and tiling strategies for fast ROI access
  • Evaluating trade-offs between compression ratio, decoding speed, and usability

Methodology and Expected Contributions

The work will involve implementing and benchmarking different compression pipelines on WSI datasets. Evaluation will focus on compression ratio, reconstruction quality (PSNR, SSIM), and access performance (latency, ROI decoding). The outcomes are expected to provide practical insights into optimizing WSI compression for both storage efficiency and interactive use.

Expected Student Profile

  • Programming skills (Python or C/C++)
  • Basic image processing knowledge
  • Interest in performance evaluation and large-scale data systems

Type of internship: Master internship

Required educational background: Computer Science, Electrotechnics/Electrical Engineering, Biomedical engineering

Supervising scientist(s): For further information or for application, please contact Saeed Mahmoudpour (< email supprimé pour raison de sécurité >)

The reference code for this position is 2026-INT-163. Mention this reference code in your application.

Applications should include the following information:
  • resume
  • motivation
  • current study

Incomplete applications will not be considered.

Date limite de candidature

Tant que l’offre est en ligne

Niveau d'étude

Niveau Master, MSc ou Programme Grande Ecole

Fonction

Développement Informatique

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