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An automatic court hearing transcription system is being developed for the Federal Supreme Court of Ethiopia to address the challenges faced in manual transcription. By utilizing Automatic Speech Recognition technology, the system aims to transcribe Amharic language court recordings accurately and efficiently. This innovative solution not only improves the court system but also safeguards the health of transcribers and enhances the overall speed and quality of legal proceedings in Ethiopia. In this study, a self-supervised Transformer based Wave2Vec 2.0 approach has been conducted to build an ASR system. With a dataset comprising over 500 hours of unlabeled data, the system has achieved a remarkable Word Error Rate (WER) of 14.36%, showcasing its effectiveness in transcribing court proceedings with high accuracy.
