2024
DOI: 10.3390/asi7020030
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A Comparative Analysis of Oak Wood Defect Detection Using Two Deep Learning (DL)-Based Software

Branimir Jambreković,
Filip Veselčić,
Iva Ištok
et al.

Abstract: The world’s expanding population presents a challenge through its rising demand for wood products. This requirement contributes to increased production and, ultimately, the high-quality and efficient utilization of basic materials. Detecting defects in wood elements, which are inevitable when working with a natural material such as wood, is one of the difficulties associated with the issue above. Even in modern times, people still identify wood defects by visually scrutinizing the sawn surface and marking the … Show more

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