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| Funder | Vinnova |
|---|---|
| Recipient Organization | Stiftelsen Chalmers Industriteknik |
| Country | Sweden |
| Start Date | Nov 01, 2023 |
| End Date | Oct 31, 2025 |
| Duration | 730 days |
| Number of Grantees | 3 |
| Roles | Principal Investigator |
| Data Source | Swedish Research Council |
| Grant ID | 2023-02974_Vinnova |
Purpose and goal:
In the previous PiiA-funded project AutoWEEEdakt, we proposed and developed new innovative methods to create artificial intelligent (AI)-powered computer vision methods that could learn the categorization of WEEE by observing the manual sorting work being done. In this proposed project, we want to continue to increase the amount of labelled image data.
Furthermore, we want to further develop methods that, through web scraping and the production of synthetic image data, improve the balance between the different classes and make our AI models more robust. Expected results and effects:
We expect that the improvements will enable consumer electronics manufacturers to more easily recover and reuse parts and components from their end-of-life products.
With the innovations developed in AutoWEEEdakt and in the new AutoWEEEdakt II project, Sweden has the opportunity to strengthen its position as a forerunners in the recycling sector and demonstrate the country´s ability to keep up with the global development of applied AI solutions. Approach and implementation:
The project is led by Stiftelsen Chalmers Industriteknik, a research institute that works to develop innovative solutions for a sustainable future and has broad knowledge in applied AI and circular economy. The consortium includes Trapper Data, a consumer electronics manufacturer; El-Kretsen, a producer responsibility organization; NG Metall AB, an electronics recycler and OP technology an indtech company.
Stiftelsen Chalmers Industriteknik
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