Today, we want to tell you about one of our machine vision based cases.
Linguists studying ancient texts have been using computer text processing for a long time. However, such digital solutions ensure proper recognition accuracy only for common languages. Arabic studies still have no AI-based developments for text analysis. Difficult scripts recognition and missing areas restoration are the main challenges in paleographic works.
Manual recognition takes much time, especially if the volume of data is large. This can significantly slow down work flows and increase Arabic data processing costs.
The complexity of handwriting and the lack of standardization make the process extremely labor-intensive, and information might also be distorted as a result of manual translation. Arabic handwriting is highly diverse and complex; moreover, there is no unified writing system, which complicates the correct interpretation task.
Manual processing of large data volumes requires significant effort and concentration, which can lead to fatigue and poor performance. Human errors can lead to inaccuracies and mistakes in recognition, especially when working with illegible or non-standard handwriting.
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