Related Experiment Video
Updated: May 24, 2025

Application of Deep Learning-Based Medical Image Segmentation via Orbital Computed Tomography
Published on: November 30, 2022
Hierarchical Contrastive Learning for Semantic Segmentation
Abstract:
Recently, pixel-to-pixel contrastive learning in single-scale feature space has been widely studied in semantic segmentation to learn a unified feature expression for pixels of the same category. However, the unified representation is too extreme, and the receptive field of each single-scale pixel is limited, which is insufficient to reflect the representative features of the category. To address these problems, this article extends the single-scale feature space to that of multiscale and proposes a hierarchical contrastive learning (Hi-CL) method to explore pixel-to-component semantic relationships. First, we generate multiscale candidate samples by applying several pooling windows with different sizes on a feature map, where different windows may represent different parts of the objects in the image. Then, we prune the sample set through threshold-based criteria to select appropriate samples for feature representation learning. Finally, Hi-CL is performed to learn the pixel-to-component consistency with the pruned samples. Our method is easy to be applied on existing semantic segmentation models and obtains consistent improvement. Furthermore, we achieve state-of-the-art results on three popular benchmarks, including Cityscapes, ADE20K, and COCO Stuff datasets.
Related Concept Videos
Structural Classification of Joints
A fibrous joint is where the adjacent bones are united by fibrous connective...
Classification of Systems-II
Force Classification
Contact and non-contact forces are two of the most widely used categories of forces. As the name suggests, contact forces require physical contact between two objects to act upon each other. Examples of contact forces include frictional,...
Classification of Systems-I
Homogeneity dictates that if an input x(t) is multiplied by a constant c, the output y(t) is multiplied by the same constant. Mathematically, this is expressed as:

