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Abstract
This paper presents a proof-of-concept system for waste level detection using an Oak-D Pro disparity camera integrated with a Raspberry Pi. The device captures and processes depth frames in real time to estimate the fill level of a paper waste bin in an industrial environment. A mean depth value is calculated from 500 consecutive frames captured every minute, serving as a proxy for bin fullness. Visual data collected alongside depth readings enables validation of the approach and identification of potential errors. Results demonstrate that the system can reliably distinguish between empty, full, and partially filled states, even under challenging conditions such as low lighting and variable ambient interference. This work highlights the potential for low-cost, adaptable vision-based solutions for automated waste monitoring.
| Original language | English |
|---|---|
| Title of host publication | Proceedings of the Irish Machine Vision and Image Processing Conference 2025 |
| Publisher | Irish Pattern Recognition and Classification Society |
| Pages | 46-49 |
| Number of pages | 4 |
| ISBN (Electronic) | 978-0-9934207-9-5 |
| Publication status | Published (in print/issue) - 1 Sept 2025 |
| Event | IMVIP 2025 - Ulster University, Derry~Londonderry, Northern Ireland, Londonderry, United Kingdom Duration: 1 Sept 2025 → 3 Sept 2025 https://imvipconference.github.io/ |
Conference
| Conference | IMVIP 2025 |
|---|---|
| Country/Territory | United Kingdom |
| City | Londonderry |
| Period | 1/09/25 → 3/09/25 |
| Internet address |
Funding
This work was funded by Innovate UK through the Smart Manufacturing Data Hub (SMDH) project.
| Funders |
|---|
| Innovate UK |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 8 Decent Work and Economic Growth
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SDG 9 Industry, Innovation, and Infrastructure
Keywords
- Disparity
- Depth Estimation
- Waste Management
- Industrial Automation
Fingerprint
Dive into the research topics of 'WasteWatch: Intelligent Waste Level Detection'. Together they form a unique fingerprint.Projects
- 1 Finished
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Smart Manufacturing Data Hub (follow-on)
Coleman, S. (PI), Kerr, D. (CoI) & Quinn, J. (CoI)
1/04/25 → 31/03/26
Project: Research
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