遇见数据集

ahidalgocenteno/triscore-composer

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Hugging Face2026-04-29 更新2026-05-03 收录
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该数据集是一个多模态嵌入数据集,包含音频、乐谱和图像三种模态的特征表示。具体特征包括:基于MERT模型生成的音频嵌入(audio-embeddings-MERT)、基于RoBERTa模型生成的乐谱嵌入(score-embeddings-RoBERTa)和基于ViT模型生成的图像嵌入(image-embeddings-ViT),每个嵌入均为float32类型的列表。此外,数据集还提供整数类型的标签(label)和字符串类型的标识符(identifier)。数据集分为训练集(1829个样本)、验证集(229个样本)和测试集(229个样本),适用于多模态机器学习任务,如分类或跨模态分析。

This dataset is a multimodal embedding dataset that includes feature representations for three modalities: audio, musical scores, and images. Specific features consist of audio embeddings generated by the MERT model (audio-embeddings-MERT), score embeddings generated by the RoBERTa model (score-embeddings-RoBERTa), and image embeddings generated by the ViT model (image-embeddings-ViT), each represented as a list of float32 values. Additionally, the dataset provides integer labels (label) and string identifiers (identifier). It is divided into a training set (1829 examples), a validation set (229 examples), and a test set (229 examples), suitable for multimodal machine learning tasks such as classification or cross-modal analysis.

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