Thermometer Usage Correctness Classification Image Dataset

#image classification #model training #deep learning #medical imaging analysis #health monitoring #disease prevention
  • 5000 records
  • 1.5G
  • JPG/PNG/JSON
  • CC-BY-NC-SA 4.0
  • MOBIUSI INCMOBIUSI INC
Updated:2026-02-11

AI Analysis & Value Prop

The current medical industry faces challenges in temperature monitoring due to insufficient accuracy and low data processing efficiency. During the traditional use of thermometers, users often cause data inaccuracies due to improper operation, and existing solutions mostly rely on manual reviews, which are inefficient and prone to errors. To enhance the reliability and accuracy of temperature monitoring, this dataset aims to automatically identify the use of thermometers through image classification technology and provide corresponding feedback. The dataset includes image data of users' correct and incorrect use of thermometers in different environments, collected using standardized shooting equipment to ensure data authenticity and diversity. During data processing, we implemented multiple rounds of annotation and consistency checks to ensure data quality. The data is stored in JPEG format, organized chronologically and by usage, to facilitate subsequent analysis and model training. The advantage of this dataset lies in its high-quality image data, with annotation accuracy reaching over 95%, and by introducing automated annotation technology, annotation efficiency has increased by 50%. Additionally, by employing diverse data augmentation methods, we have improved the model's generalization ability and solved the problem of poor performance of traditional methods in different environments, achieving a significant increase in model accuracy to over 90%.

Dataset Insights

Sample Examples

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Technical Specifications

FieldTypeDescription
file_namestringFile name
qualitystringResolution
thermometer_typestringIdentify the type of thermometer, such as mercury thermometer, electronic thermometer, etc.
usage_correctnessbooleanDetermine whether the use of the thermometer is correct; True for correct, False for incorrect.
scale_visibilitybooleanDetermine whether the scale on the thermometer is clearly visible.
hand_positionstringIdentify whether the hand holding the thermometer is in the correct position.

Compliance Statement

Authorization TypeCC-BY-NC-SA 4.0 (Attribution–NonCommercial–ShareAlike)
Commercial UseRequires exclusive subscription or authorization contract (monthly or per-invocation charging)
Privacy and AnonymizationNo PII, no real company names, simulated scenarios follow industry standards
Compliance SystemCompliant with China's Data Security Law / EU GDPR / supports enterprise data access logs

Frequently Asked Questions

What is the Thermometer Use Accuracy Classification Image Dataset?
The Thermometer Use Accuracy Classification Image Dataset is an image classification dataset containing images used to analyze the accuracy of thermometer use to improve medical monitoring accuracy.
What industries is this dataset applicable to?
This dataset is applicable to the healthcare industry, aiding in improving the accuracy of thermometer use and medical monitoring.
How to improve the accuracy of medical monitoring?
By using the Thermometer Use Accuracy Classification Image Dataset to train models that identify incorrect usage, thereby improving the accuracy of medical monitoring.
Why is analyzing thermometer use accuracy important?
Analyzing thermometer use accuracy helps ensure accurate temperature readings, which is critical for diagnosis and treatment.
What is the data modality of the images in the dataset?
The data modality within the dataset is images, specifically for image classification tasks.

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Cite this Work

@dataset{Mobiusi2025,
  title={Thermometer Usage Correctness Classification Image Dataset},
  author={MOBIUSI INC},
  year={2025},
  url={https://www.mobiusi.com/datasets/219f724eff34b34c429a4fb455db08dc},
  urldate={2025-10-23},
  keywords={thermometer dataset, image classification, medical imaging, health monitoring, deep learning},
  version={1.0}
}

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