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ccmusic-database/Guzheng_Tech99
Guzheng_Tech99 is a audio classification model from ccmusic-database. Use it for the audio classification task on the model card, and read the license before you ship it in a product. The card lists the license as mit.
For the 99 recordings, silence is first removed, which is done based on the annotation, targeting the parts where there is no technique annotation. Then all recordings are uniformly segmented into fixed-length segment…
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Updated Feb 27, 2026
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From the Hugging Face model README
For the 99 recordings, silence is first removed, which is done based on the annotation, targeting the parts where there is no technique annotation. Then all recordings are uniformly segmented into fixed-length segments of 3 seconds. After segmentation, clips shorter than 3 seconds are zero padded. This padding approach, unlike circular padding, is adopted specifically for frame-level detection tasks to prevent the introduction of extraneous information. Regarding the dataset split, since the dataset consists of 99 recordings, we split it at the recording level. The data is partitioned into training, validation, and testing subsets in a 79:10:10 ratio, roughly 8:1:1.
https://huggingface.co/spaces/ccmusic-database/Guzheng_Tech99
from huggingface_hub import snapshot_download
model_dir = snapshot_download(
"ccmusic-database/Guzheng_Tech99",
cache_dir="./__pycache__",
)
print(model_dir)
GIT_LFS_SKIP_SMUDGE=1 git clone [email protected]:ccmusic-database/Guzheng_Tech99
cd Guzheng_Tech99
| Backbone | Mel | CQT | Chroma |
|---|---|---|---|
| ViT-B-16 | 0.705 | 0.518 | 0.508 |
| Swin-T | 0.849 | 0.783 | 0.766 |
| VGG19 | 0.862 | 0.799 | 0.665 |
| EfficientNet-V2-L | 0.783 | 0.812 | 0.697 |
| ConvNeXt-B | 0.849 | 0.849 | 0.805 |
| ResNet101 | 0.638 | 0.830 | 0.707 |
| SqueezeNet1.1 | 0.831 | 0.814 | 0.780 |
| Average | 0.788 | 0.772 | 0.704 |
https://huggingface.co/datasets/ccmusic-database/Guzheng_Tech99
https://www.modelscope.cn/models/ccmusic-database/Guzheng_Tech99
https://github.com/monetjoe/ccmusic_eval/tree/tech99
@article{Zhou-2025,
author = {Monan Zhou and Shenyang Xu and Zhaorui Liu and Zhaowen Wang and Feng Yu and Wei Li and Baoqiang Han},
title = {CCMusic: An Open and Diverse Database for Chinese Music Information Retrieval Research},
journal = {Transactions of the International Society for Music Information Retrieval},
volume = {8},
number = {1},
pages = {22--38},
month = {Mar},
year = {2025},
url = {https://doi.org/10.5334/tismir.194},
doi = {10.5334/tismir.194}
}