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Dataset for "Human Activity Recognition with FMCW Radar Using Few-Shot learning"
- Citation Author(s):
- Submitted by:
- Zhefu Wu
- Last updated:
- Sat, 05/20/2023 - 23:13
- DOI:
- 10.21227/pfzr-g090
- Data Format:
- License:
- Categories:
- Keywords:
Abstract
Our dataset has a total of 8 actions, 7 people(P1-P7), and 3 experimental environments(Room-A,Room-B,Room-C). There are a total of 3 directions in each environment, with 5 samples of each action taken for each person in each direction, so the number of samples is 360(samples/person)*7 = 2520.
We use two environments(Room-A and Room-B) and 5 people(p1-p5) as training and validation, 150(samples/action)*8(actions) = 1200,the Classes in front of the symbol (_), followed by the serial number, The 1-75 samples are taken from the training set and the 76-150 samples are taken from the val set. i. e,the images of action Bow are named 0_1~0_75(train_bow),0_76~0_150(val_bow).
We take the last environment(Room-C) and 2 people(P6 and P7) as a test, 30(samples/action)*8(actions) = 240.Image name naming rules: the symbol (_) in front of the category, followed by the serial number, where the test set of 30 samples per action, each category is sorted according to 1-30, i. e,the images of action Bow are named 0_1~0_30(test_bow).
Each action is classified as follows:
0 is bow
1 is boxing
2 is falldown
3 is handup
4 is stand
5 is squat
6 is sit
7 is walk
Our dataset has a total of 8 actions, 7 people(P1-P7), and 3 experimental environments(Room-A,Room-B,Room-C). There are a total of 3 directions in each environment, with 5 samples of each action taken for each person in each direction, so the number of samples is 360(samples/person)*7 = 2520.
We use two environments(Room-A and Room-B) and 5 people(p1-p5) as training and validation, 150(samples/action)*8(actions) = 1200,the Classes in front of the symbol (_), followed by the serial number, The 1-75 samples are taken from the training set and the 76-150 samples are taken from the val set. i. e,the images of action Bow are named 0_1~0_75(train_bow),0_76~0_150(val_bow).The environment(Room-C) and 2 people(P6 and P7) are used as a test, 30(samples/action)*8(actions) = 240.
Image name naming rules:
the symbol (_) in front of the category, followed by the serial number, where the test set of 30 samples per action, each category is sorted according to 1-30, i. e,the images of action Bow are named 0_1~0_30(test_bow).
Each action is classified as follows:
0 is bow
1 is boxing
2 is falldown
3 is handup
4 is stand
5 is squat
6 is sit
7 is walk
Documentation
Attachment | Size |
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Dataset-Readme.txt | 1.18 KB |