Multimodal Approach of Improving Spatial Abilities
Abstract
:1. Introduction
2. Assessing Spatial Skills: The Mental Cutting Test
3. Media and Technology Support of Training and Testing: The Multimodal Approach
4. Methodology
- The test starts with a short explanation of MCT.
- The test consists of 10 exercises (maximum score is 10).
- The 2D viewer is available to all the users, while the 3D viewer is available only to the second group (3D).
5. Results
- 2D Group: The increase in the mean score from 3.43 to 3.64 was not statistically significant, with a p-value > 0.05. This suggests that the observed change was likely due to random variation and not the result of any effective intervention.
- 3D Group: The improvement in the mean score from 5.00 to 6.30 was statistically significant (p-value < 0.05), indicating that the use of 3D tools had a meaningful impact on the group’s performance. Additionally, the reduction in standard deviation suggests that the intervention was particularly useful for those who underperformed in the first test, and this method not only improved scores but also led to more uniformity in performance across participants.
- 2D+3D Group: The increase in mean score from 3.86 to 6.00 was also statistically significant (p-value < 0.05). The multimodal combination of 2D and 3D tools appears to be the most effective intervention among the three groups, leading to a substantial improvement in each participant’s overall performance, while the scores’ spread remained similar.
- Small effect: from ;
- Medium effect: from ;
- Large effect: or greater.
6. Conclusions and Future Work
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
MCT | Mental Cutting Test |
MRT | Mental Rotation Test |
ULT | Urban Layout Test |
IPT | Indoor Perspective Test |
2D | Planar figure, and test with planar view of the task |
3D | Spatial figure, and test with spatial view of the task |
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Group | Test 1 | Test 2 | ||||
---|---|---|---|---|---|---|
Median | Mean | Std. Dev. | Median | Mean | Std. Dev. | |
2D | 5 | 3.43 | 1.24 | 5 | 3.64 | 1.34 |
3D | 7 | 5.00 | 1.96 | 7 | 6.30 | 1.49 |
2D+3D | 5 | 3.86 | 2.04 | 7 | 6.00 | 2.12 |
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Balla, T.; Tóth, R.; Zichar, M.; Hoffmann, M. Multimodal Approach of Improving Spatial Abilities. Multimodal Technol. Interact. 2024, 8, 99. https://doi.org/10.3390/mti8110099
Balla T, Tóth R, Zichar M, Hoffmann M. Multimodal Approach of Improving Spatial Abilities. Multimodal Technologies and Interaction. 2024; 8(11):99. https://doi.org/10.3390/mti8110099
Chicago/Turabian StyleBalla, Tamás, Róbert Tóth, Marianna Zichar, and Miklós Hoffmann. 2024. "Multimodal Approach of Improving Spatial Abilities" Multimodal Technologies and Interaction 8, no. 11: 99. https://doi.org/10.3390/mti8110099
APA StyleBalla, T., Tóth, R., Zichar, M., & Hoffmann, M. (2024). Multimodal Approach of Improving Spatial Abilities. Multimodal Technologies and Interaction, 8(11), 99. https://doi.org/10.3390/mti8110099