Publications
Found 16 results
Filters: Author is Mateusz Żarski  [Clear All Filters]
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Submitted.  Beyond Accuracy: Uncovering the Role of Similarity Perception and its Alignment with Semantics in Supervised Learning. arXiv preprint. 
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Submitted.  Neuroplasticity-inspired dynamic ANNs for multi-task demand forecasting. arXiv preprint. 
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Submitted.  Semantic Depth Matters: Explaining Errors of Deep Vision Networks through Perceived Class Similarities. arXiv preprint. 
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2025.  Balancing Performance and Scalability of Demand Forecasting ML Models. Intelligent Data Analysis XXIII [IDA]. 
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2025.  dpVision: environment for multimodal images. SoftwareX. 30(102093)
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2024.  Multi-Step Feature Fusion for Natural Disaster Damage Assessment on Satellite Images. IEEE Access. 
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2023.  A deep learning method for hard-hat-wearing detection based on head center localization. Bulletin of the Polish Academy of Sciences Technical Sciences. 71 (EA)(6)
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2023.  The Effectiveness of World Models for Continual Reinforcement Learning. Conference on Lifelong Learning Agents. 
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2023.  A framework for computer vision-based health monitoring of a truss structure subjected to unknown excitations. Earthquake Engineering and Engineering Vibration. 
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2022.  Computer Vision Based Inspection on Post-Earthquake With UAV Synthetic Dataset. IEEE Access. 10
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2022.  An Efficient Computer Vision-Based Method for Estimation of Dynamic Displacements in Spatial Truss Structures. Workshop on Structural Health Monitoring. 
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2021.  Advances in applicable deep-learning based defect  detection. 2nd Workshop on Engineering  Optimization – WEO 2021.  (377.77 KB)
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2021.  Extracting crack characteristics from RGB-D images. 2nd Workshop on Engineering  Optimization – WEO 2021.  (283.77 KB)
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2021.  Finicky transfer learning—A method of pruning convolutional neural networks for cracks classification on edge devices. Computer-Aided Civil And Infrastructure Engineering. 37(4)
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2021.  KrakN: Transfer Learning framework and dataset for infrastructure thin crack detection. SoftwareX. 16
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2021.  The measurements of surface defect area with an RGB-D camera for a BIM-backed bridge inspection. Bulletin of the Polish Academy of Sciences: Technical Sciences. 69(3)
