Commercial

X-ray of upper-extremity joints

This large-scale X-ray labeled images dataset comprises over 1.2 million digital X-ray images focused on the shoulder, elbow, and wrist joints, designed for pathology recognition, segmentation tasks, and training deep learning models in medical imaging, with detailed annotations for the accurate detection of bone and joint conditions.

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  • studies with protocol
    200,000+
  • studies without protocol
    1,000,000+
  • pathologies
    13
  • Medicine
  • Computer vision
  • Machine Learning
  • Segmentation
  • Classification

This large-scale X-ray labeled images dataset comprises over 1.2 million digital X-ray images focused on the shoulder, elbow, and wrist joints, designed for pathology recognition, segmentation tasks, and training deep learning models in medical imaging, with detailed annotations for the accurate detection of bone and joint conditions.

Get in touch Download sample
  • Medicine
  • Computer vision
  • Machine Learning
  • Segmentation
  • Classification
  • studies with protocol
    200,000+
  • studies without protocol
    1,000,000+
  • pathologies
    13

Dataset Info

Characteristic Data
Description X-ray of upper-extremity joints with or without protocols
Data types DiCOM
Markup Segmentation of pathologies
Tasks Pathology recognition, computer vision.
Number of studies 1,200,000+
Labeling Information about each study, including target pathology (1 for presence, 0 for absence)
Pathologies Pulmonary tuberculosis, pneumonia, purulent and necrotic conditions, lung masses, pleural effusion, pneumothorax, atelectasis, mediastinal pathology, cardiomegaly, rib/ribs fractures, shoulder, elbow, and wrist joint conditions.
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Technical
Characteristics

Characteristic Data
File extension DiCOM
Extension of labeling file csv
Source and collection methodology. Data was collected by a partner of Unidata

Dataset Use Cases

  • Healthcare & Radiology

    Improving Diagnosis of Bone and Joint Disorders

    Upper-Extremity Joints Dataset provides high-quality X-ray images for analyzing bones, joints, and limb structures. The dataset comprises manually labeled medical images that help radiologists and researchers detect fractures, arthritis, and other musculoskeletal conditions with greater precision. It serves as valuable reference material for X-ray imaging diagnostics and orthopedic studies.

  • Artificial Intelligence & Deep Learning

    Training Models for Bone Segmentation and Classification

    This X-ray labeled images dataset supports machine learning and deep learning applications in object detection and segmentation tasks. The dataset consists of annotated digital X-rays from various X-ray machines, providing reliable training data for developing segmentation algorithms and classification models that achieve the highest accuracy in bone structure identification.

  • Biomedical Research & Education

    Analyzing Musculoskeletal Structures in Medical Studies

    Researchers and educators use this X-ray dataset to study the anatomy of upper-extremity joints, including wrists, elbows, and shoulders. The datasets contain detailed X-ray scans that illustrate bone alignment and joint function, making it ideal for teaching radiology, orthopedics, and medical imaging principles in academic settings.

  • Computer Vision & Model Benchmarking

    Developing Automated Systems for Medical Image Recognition

    The dataset is used as benchmark data for testing segmentation algorithms and classification tasks in medical image analysis. With manually annotated and segmented data, developers can train and validate machine learning systems designed for X-ray recognition, thereby improving model accuracy and advancing diagnostic automation tools.

FAQs

What is included in this dataset?
The dataset comprises over 1.2 million X-ray studies in DICOM format, each labeled with metadata describing the presence or absence of specific joint or bone pathologies. Accompanying CSV files provide structured details for use in training and evaluating diagnostic models.
What types of annotations are provided?
Annotations include binary labels (1 for presence, 0 for absence) for multiple upper-extremity joint and bone conditions, along with pathology segmentation data. Each file is accompanied by detailed metadata, making it suitable for classification, segmentation, and object detection tasks in medical imaging.
Can I request a sample of the dataset before purchasing or downloading it?
Yes. Unidata provides free dataset samples that include a small set of X-ray images and labeling files. These samples help users verify data structure, labeling accuracy, and image quality of digital X-rays before purchasing the full dataset.
How was the data collected?
The dataset was collected from clinical imaging systems by a Unidata partner, ensuring medical-grade X-ray imaging quality. Data was curated under standard imaging protocols and formatted in DICOM, supporting interoperability with major medical image analysis frameworks.
How are Unidata datasets licensed?
Unidata datasets follow a dual-licensing model: free sample data is available for testing and evaluation, while full datasets are offered exclusively through purchase. This allows researchers to confirm data suitability before full acquisition.
Do Unidata datasets follow GDPR or other data privacy regulations?
Yes. All datasets, including X-ray of Upper-Extremity Joints Dataset, comply with GDPR and relevant medical data protection laws. All X-ray images are fully anonymized and sourced from legally authorized providers, ensuring ethical and lawful data use.
How are Unidata datasets stored?
Unidata stores all datasets securely within AWS cloud infrastructure, offering high availability, scalability, and data redundancy. Our systems adhere to ISO 27001 and ISO 27701 certifications, ensuring secure and privacy-compliant handling of medical imaging datasets.
Is this a real-world dataset or synthetic data?
This dataset is entirely real-world, consisting of authentic digital X-ray images captured from clinical imaging systems. It reflects genuine upper-extremity joint and bone conditions.
Still have questions about using Unidata datasets? Read our user-guides

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