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Fall_Detection_image_dataset

List of free/public domain datasets with image data for use in the Fall Detection field. Most stuff here is just raw image data, if you are looking for annotated and processed dataset, I provide a Human-Body-Segmentation-Fall dataset here based on Le2i dataset and SisFall dataset with a download link. If you think it helpful, PLEASE refer to the sources at the bottom.

Recommend Datasets

  • [Le2i - Laboratoire Electronique, Informatique et Image](Le2i - Laboratoire Electronique, Informatique et Image) [1]. A dataset contains four scenes: Home(60 videos), Coffee room(70 videos), Office(64 videos), Lecture room(27 videos). Only Home and Coffee room subset have 'Annotation_files', which describe the frame number of the beginning and end of the fall. FORMAT: 320x240 25FPS. High quality. Single person. A large-volume dataset.
  • SisFall: A Fall and Movement Dataset [2]. A dataset contains two categories: ADL(19 videos), Fall(15 videos). This dataset consists of 34 videos and 4,510 files(both image and sensor data), each file with a single activity. FORMAT: 1440x1080. High quality. Single person. A large-diverse dataset.

Other Datasets

Human-Body-Segmentation-Fall dataset

This dataset[3] is reprocessed by the author himself. The original dataset is based on the partial Le2i dataset and SisFall dataset. The author cut out the videos of ADL(daily activities) and fall actions into pictures through the OpenCV library, and then sent the pictures to the human segmentation neural network to get the pictures with only the foreground of the human body, and then processed all the pictures by binarization and morphological corrosion and expansion.

The dataset provided by the author is divided into two parts. Each dataset is divided into five folders, representing five categories. Blank represented the situation where there was no person, Fall represented the situation where there was a fall, Likefall represented the situation where the center of gravity was unstable, Lie represented the situation when the body was lying, and Stand represented the situation when the body was standing. The figure and pictures of the dataset are as follows. Please note that this dataset complies with the GNU license. Please refer to the source of this dataset when using.

figure(per 16 frames) Le2i-processed SisFall-processed
Blank 7 7
Fall 68 15
Likefall 83 13
Lie 11 17
Stand 84 9
sum 253 61

image-20200412194842831

Download:(please wait. Later I will upload.)

Dataset Google BaiduDisk
Le2i-processed 29.0MB 29.0MB
SisFall-processed 30.2MB 30.2MB

Reference

[1] I. Charfi, J. Miteran, J. Dubois, M. Atri and R. Tourki, “Optimised spatio-temporal descriptors for real-time fall detection: comparison of SVM and Adaboost based classification,” J. Electron. Imaging (JEI), vol. 22, no. 4, pp. 17, October 2013.

[2] A. Sucerquia, J. D. López, J. F. Vargas-Bonilla, “SisFall: a fall and movement dataset,” Sensors, vol. 17, no. 12, pp. 198, 2017.

[3] Y. Yang, Q. Hu, M. Dai, H. Yan, J. Ling, "Design and Implementation of Fall Detection System Based on Video," Int. Conf. on Comput. Eng. & App. (ICCEA), Guangzhou, 2020, on press.

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Fall Detection video dataset. A new processed dataset here.

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