Correction: Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Sensors 2020, 20, 2200
1. Changes in Main Body Paragraphs
- On page 8, at the end of the “Data Preparation and Feature Extraction” section, the sentences “While doing this, we also take each recorded activity and split it into the previously defined time interval to prepare them for the next step. The remaining parts of each period are discarded.” should be “While doing this, we also get rid of those sessions that have quite large gaps between the data (at least five seconds) for any sensor other than the GPS, by considering them as invalid.”
- Following the previous sentences, there is a typo on the next one, where “In this way, in Table 7, the final results after the application of this sliding window and overlap is shown for the samples containing all the sensors.” should be “In this way, in Table 7, the final results after the application of this sliding window and overlap are shown for the samples containing all the sensors.”
- On page 10, in the “Results” section, the sentences “As can be seen, the best results correspond, in general, to the RBF kernel, and, more specifically, for cases where γ equals 0.01, especially in conjunction with C = 10. With this combination of hyperparameters, we managed to achieve an f1-score of 64.14%.” should be “As can be seen, the best results correspond, in general, to the RBF kernel, and, more specifically, for cases where γ equals 0.1, especially in conjunction with C = 100. With this combination of hyperparameters, we managed to achieve an f1-score of 74.34%.”
- Following the previous sentences, in the next paragraph, the sentence “This result corresponds to an accuracy of 67.22%.” should be “This result corresponds to an accuracy of 69.28%.”
- On page 12, at the end of the “Results” section, the sentences “As can be seen, the combination of the four sensors performs better in comparison with the other two, especially with the case formed only by accelerometer and GPS. Both the gyroscope and the magnetometer seem to have a pretty important implication for the final classification. In the first case, it seems to significantly improve the final accuracy, as in the other works that included it in their studies. However, it looks like what makes the highest difference is the appendage of this sensor to the magnetometer.” should be “As can be seen, the combination of the accelerometer, the magnetometer and the GPS, with the lack of the gyroscope, performs better in comparison with the other two, especially with the case formed only by accelerometer and GPS. However, the expected best result would have been the one that appends the gyroscope too, as in the other works that included it in their studies. Perhaps the fact that we are studying long-themed activities is something in which the gyroscope does not have much of a presence. In addition, the model has more patterns with the winning combination, which could also positively influence the final result.”
2. Changes in Tables
Activity | ||||
---|---|---|---|---|
Inactive | Active | Walking | Driving | Overall |
201,501 | 137,407 | 86,383 | 77,852 | 503,143 |
(40%) | (27%) | (17%) | (16%) |
Activity | ||||
---|---|---|---|---|
Inactive | Active | Walking | Driving | Overall |
214,130 | 140,060 | 83,376 | 61,710 | 499,276 |
(43%) | (28%) | (17%) | (12%) |
C = 1 | C = 10 | C = 100 | C = 1000 | C = 10,000 | ||
---|---|---|---|---|---|---|
Linear | 36.15% | 31.41% | 31.41% | 31.41% | 31.41% | |
= 0.0001 | 10.56% | 4.57% | 17.04% | 40.72% | 34.70% | |
= 0.001 | 20.67% | 21.30% | 39.71% | 38.70% | 46.70% | |
RBF | = 0.01 | 60.37% | 64.14% | 56.47% | 57.20% | 56.49% |
= 0.1 | 51.76% | 54.10% | 57.09% | 51.62% | 51.36% | |
= 1 | 50.99% | 41.16% | 41.28% | 41.28% | 41.28% | |
= 0.0001 | 18.09% | 21.04% | 41.00% | 32.67% | 37.12% | |
= 0.001 | 16.09% | 37.86% | 37.82% | 37.26% | 32.01% | |
Poly d = 1 | = 0.01 | 37.73% | 41.49% | 36.16% | 36.67% | 36.67% |
= 0.1 | 33.36% | 32.58% | 34.11% | 34.11% | 34.11% | |
= 1 | 36.15% | 31.41% | 31.41% | 31.41% | 31.41% | |
= 0.0001 | 10.96% | 6.27% | 7.03% | 9.34% | 9.60% | |
= 0.001 | 7.03% | 9.10% | 8.39% | 10.62% | 22.55% | |
Poly d = 2 | = 0.01 | 9.60% | 10.55% | 23.08% | 24.34% | 27.69% |
= 0.1 | 22.73% | 23.46% | 25.84% | 25.82% | 25.82% | |
= 1 | 25.58% | 25.59% | 25.59% | 25.59% | 25.59% | |
= 0.0001 | 6.11% | 6.86% | 10.61% | 9.15% | 11.16% | |
= 0.001 | 9.15% | 11.16% | 6.04% | 8.56% | 19.86% | |
Poly d = 3 | = 0.01 | 8.32% | 23.63% | 23.18% | 20.63% | 30.29% |
= 0.1 | 21.79% | 25.40% | 27.70% | 27.70% | 27.70% | |
= 1 | 23.11% | 23.11% | 23.11% | 23.11% | 23.11% | |
= 0.0001 | 7.33% | 8.20% | 6.96% | 4.78% | 10.36% | |
= 0.001 | 10.36% | 7.63% | 7.84% | 13.20% | 9.68% | |
Poly d = 4 | = 0.01 | 9.68% | 9.54% | 8.04% | 7.11% | 11.79% |
= 0.1 | 8.39% | 12.34% | 12.34% | 12.34% | 12.34% | |
= 1 | 9.02% | 9.02% | 9.02% | 9.02% | 9.02% |
C = 1 | C = 10 | C = 100 | C = 1000 | C = 10,000 | ||
---|---|---|---|---|---|---|
Linear | 36.33% | 38.96% | 42.58% | 42.58% | 42.58% | |
= 0.0001 | 5.88% | 11.08% | 17.81% | 39.94% | 37.38% | |
= 0.001 | 15.78% | 28.26% | 45.12% | 41.09% | 42.75% | |
RBF | = 0.01 | 59.16% | 63.21% | 58.66% | 65.44% | 59.24% |
= 0.1 | 68.30% | 73.33% | 74.34% | 70.94% | 69.42% | |
= 1 | 63.73% | 56.88% | 56.96% | 56.96% | 56.96% | |
= 0.0001 | 12.89% | 29.65% | 37.20% | 26.37% | 43.37% | |
= 0.001 | 29.39% | 33.50% | 34.51% | 39.10% | 39.17% | |
Poly d = 1 | = 0.01 | 32.08% | 33.90% | 40.71% | 43.18% | 39.07% |
= 0.1 | 33.21% | 33.69% | 40.93% | 36.65% | 36.65% | |
= 1 | 36.33% | 38.96% | 42.58% | 42.58% | 42.58% | |
= 0.0001 | 7.92% | 6.85% | 10.22% | 5.92% | 9.69% | |
= 0.001 | 10.22% | 5.92% | 9.70% | 12.34% | 24.01% | |
Poly d = 2 | = 0.01 | 9.69% | 12.27% | 26.54% | 22.56% | 20.64% |
= 0.1 | 23.63% | 24.40% | 26.24% | 26.23% | 26.23% | |
= 1 | 27.35% | 27.33% | 27.33% | 27.33% | 27.33% | |
= 0.0001 | 5.61% | 6.21% | 7.45% | 10.01% | 10.03% | |
= 0.001 | 10.01% | 10.03% | 6.60% | 8.19% | 20.48% | |
Poly d = 3 | = 0.01 | 5.87% | 19.68% | 24.29% | 22.63% | 16.92% |
= 0.1 | 26.40% | 17.90% | 17.60% | 17.60% | 17.60% | |
= 1 | 17.77% | 17.77% | 17.77% | 17.77% | 17.77% | |
= 0.0001 | 5.87% | 6.42% | 9.09% | 8.91% | 13.12% | |
= 0.001 | 13.12% | 7.92% | 6.18% | 11.03% | 11.26% | |
Poly d = 4 | = 0.01 | 9.16% | 7.87% | 6.45% | 5.52% | 7.18% |
= 0.1 | 8.71% | 9.55% | 9.49% | 9.49% | 9.49% | |
= 1 | 8.97% | 8.97% | 8.97% | 8.97% | 8.97% |
Ground Truth | |||||
---|---|---|---|---|---|
Inactive | Active | Walking | Driving | Precision | |
Inactive | 15,887 | 1904 | 1165 | 1195 | 78.84% |
Active | 3226 | 6159 | 3134 | 1222 | 44.82% |
Walking | 259 | 1540 | 5863 | 976 | 67.88% |
Driving | 149 | 653 | 1073 | 5910 | 75.92% |
Recall | 81.38% | 60.05% | 52.19% | 63.53% | 67.22% |
Ground Truth | |||||
---|---|---|---|---|---|
Inactive | Active | Walking | Driving | Precision | |
Inactive | 16,787 | 610 | 486 | 90 | 93.40% |
Active | 3026 | 8676 | 1163 | 914 | 62.97% |
Walking | 1341 | 3772 | 5675 | 1714 | 45.39% |
Driving | 259 | 948 | 1015 | 3453 | 60.85% |
Recall | 78.40% | 61.95% | 68.05% | 55.96% | 69.28% |
Acc. + GPS. | Acc. + Magn. + GPS | Acc. + Gyro. + Magn. + GPS |
---|---|---|
60.10% | 62.66% | 67.22% |
Acc. + GPS. | Acc. + Magn. + GPS | Acc. + Gyro. + Magn. + GPS |
---|---|---|
67.53% | 74.39% | 69.28% |
3. Changes in References
- Garcia-Gonzalez D.; Rivero, D.; Fernandez-Blanco, E.; R.Luaces, M. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Mendeley Data 2020, V1, doi:10.17632/3xm88g6m6d.1
- Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Available Online: https://data.mendeley.com/datasets/3xm88g6m6d/2 (accessed on 18 August 2020).
Reference
- Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Sensors 2020, 20, 2200. [Google Scholar] [CrossRef] [PubMed] [Green Version]
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. Correction: Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Sensors 2020, 20, 2200. Sensors 2020, 20, 4650. https://doi.org/10.3390/s20164650
Garcia-Gonzalez D, Rivero D, Fernandez-Blanco E, Luaces MR. Correction: Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Sensors 2020, 20, 2200. Sensors. 2020; 20(16):4650. https://doi.org/10.3390/s20164650
Chicago/Turabian StyleGarcia-Gonzalez, Daniel, Daniel Rivero, Enrique Fernandez-Blanco, and Miguel R. Luaces. 2020. "Correction: Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Sensors 2020, 20, 2200" Sensors 20, no. 16: 4650. https://doi.org/10.3390/s20164650
APA StyleGarcia-Gonzalez, D., Rivero, D., Fernandez-Blanco, E., & Luaces, M. R. (2020). Correction: Garcia-Gonzalez, D.; Rivero, D.; Fernandez-Blanco, E.; Luaces, M.R. A Public Domain Dataset for Real-Life Human Activity Recognition Using Smartphone Sensors. Sensors 2020, 20, 2200. Sensors, 20(16), 4650. https://doi.org/10.3390/s20164650