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Data labeling is an essential step in the process of building and training machine learning models for search relevance evaluation. It involves annotating and categorizing data sets to train and test the model’s ability to match the relevance of search results to a user’s query. This process is critical to the accuracy and performance of
Image annotation is integral to machine learning and artificial intelligence, especially when using computer vision (CV) models. It is the process where images of a particular dataset are labeled to help train a machine learning model. Different image annotation techniques such as polygon annotations and bounding boxes can do this. The benefits and importance of
The data annotation market is expected to grow at 25.6% for the next five years. The adoption of AI-based services in different domains has contributed to this rise in demand. Many sectors such as healthcare, automobiles, telecom, and e-commerce among others are finding it expedient to collect datasets from different sources and label them based