Difference between revisions of "2025:Audio Chord Estimation Results"
From MIREX Wiki
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= Submissions = | = Submissions = | ||
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! Title | ! Title | ||
! PDF | ! PDF | ||
+ | ! Authors | ||
|- | |- | ||
| style="vertical-align:bottom; background-color:#F8F9FA; color:#222;" | Baseline: Chordino | | style="vertical-align:bottom; background-color:#F8F9FA; color:#222;" | Baseline: Chordino | ||
| style="vertical-align:bottom; background-color:#F8F9FA; color:#222;" | NNLS Chroma v1.1 | | style="vertical-align:bottom; background-color:#F8F9FA; color:#222;" | NNLS Chroma v1.1 | ||
| [https://github.com/ismir-mirex/ace-task-captain-notes?tab=readme-ov-file#baselines Link] | | [https://github.com/ismir-mirex/ace-task-captain-notes?tab=readme-ov-file#baselines Link] | ||
+ | | | ||
|- | |- | ||
| Baseline: ISMIR2019 | | Baseline: ISMIR2019 | ||
| Large-Vocabulary Chord Transcription via Chord Structure Decomposition | | Large-Vocabulary Chord Transcription via Chord Structure Decomposition | ||
| [https://github.com/ismir-mirex/ace-task-captain-notes?tab=readme-ov-file#baselines Link] | | [https://github.com/ismir-mirex/ace-task-captain-notes?tab=readme-ov-file#baselines Link] | ||
+ | | | ||
|- | |- | ||
| MD1 | | MD1 | ||
| Degree-Based Automatic Chord Recognition with Enharmonic Distinction | | Degree-Based Automatic Chord Recognition with Enharmonic Distinction | ||
| TBA | | TBA | ||
+ | | Masayuki Doai | ||
|- | |- | ||
| wu-ensemble | | wu-ensemble | ||
| wu-ensemble | | wu-ensemble | ||
| TBA | | TBA | ||
+ | | Yiwei Ding, Christof Weiß | ||
|- | |- | ||
| wu-single | | wu-single | ||
| wu-single | | wu-single | ||
| TBA | | TBA | ||
+ | | Yiwei Ding, Christof Weiß | ||
|- | |- | ||
| YK1 | | YK1 | ||
| Semi-Supervised Audio Chord Estimator Based on Disentangled Generative Modeling | | Semi-Supervised Audio Chord Estimator Based on Disentangled Generative Modeling | ||
| TBA | | TBA | ||
+ | | Yiming Wu, Kento Yoshida | ||
|- | |- | ||
| BMACE | | BMACE | ||
| A Mamba-Based Model for Automatic Chord Recognition | | A Mamba-Based Model for Automatic Chord Recognition | ||
| TBA | | TBA | ||
+ | | Chunyu Yuan, Jiyeoung Sim, Johanna Devaney | ||
|} | |} | ||
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====Main Test Sets==== | ====Main Test Sets==== | ||
+ | |||
+ | The following datasets are served as pure test sets. No system is allowed to train on them. | ||
+ | |||
* '''Billboard 2013''': The held-out portion of the McGill Billboard dataset, containing mainly western pop songs from the Billboard chart. | * '''Billboard 2013''': The held-out portion of the McGill Billboard dataset, containing mainly western pop songs from the Billboard chart. | ||
* '''Yamaha_JPOP''': A private dataset annotated by Yamaha Corporation. The dataset contains 200 JPOP songs. | * '''Yamaha_JPOP''': A private dataset annotated by Yamaha Corporation. The dataset contains 200 JPOP songs. | ||
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These are datasets that may not be strictly held-out test sets. Some models might have been trained on these datasets; for specific details, please refer to the extended abstracts of each model. | These are datasets that may not be strictly held-out test sets. Some models might have been trained on these datasets; for specific details, please refer to the extended abstracts of each model. | ||
+ | |||
* '''Billboard 2012''': The public portion of the McGill Billboard dataset. | * '''Billboard 2012''': The public portion of the McGill Billboard dataset. | ||
* '''RWC Popular''': 100 pop songs from the RWC (Real World Computing) Music Database. 20% songs with English lyrics and 80% songs with Japanese lyrics. | * '''RWC Popular''': 100 pop songs from the RWC (Real World Computing) Music Database. 20% songs with English lyrics and 80% songs with Japanese lyrics. | ||
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! style="vertical-align:bottom;" | OverSeg | ! style="vertical-align:bottom;" | OverSeg | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | BMACE |
− | | | + | | 55.72 |
− | + | | 8.88 | |
− | + | | 8.70 | |
− | | | + | | 2.52 |
− | | | + | | 2.45 |
− | + | | 68.16 | |
− | + | | 90.86 | |
− | + | | 56.60 | |
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|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | MD1 | | style="text-align:left;" | MD1 | ||
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| 66.40 | | 66.40 | ||
| 65.33 | | 65.33 | ||
− | | | + | | 86.17 |
− | | | + | | 85.50 |
− | | | + | | 88.89 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | YK1 | ||
+ | | 81.01 | ||
+ | | 78.10 | ||
+ | | 75.41 | ||
+ | | 64.53 | ||
+ | | 62.05 | ||
+ | | 85.50 | ||
+ | | 85.08 | ||
+ | | 87.49 | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-ensemble | | style="text-align:left;" | wu-ensemble | ||
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| 55.06 | | 55.06 | ||
| 53.96 | | 53.96 | ||
− | | | + | | 83.19 |
− | | | + | | 86.29 |
− | | | + | | 82.20 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-single | | style="text-align:left;" | wu-single | ||
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| 55.41 | | 55.41 | ||
| 54.15 | | 54.15 | ||
− | | | + | | 83.16 |
− | | | + | | 85.44 |
− | | | + | | 83.08 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | Baseline: Chordino |
− | | 81. | + | | 71.06 |
− | | 78. | + | | 67.18 |
− | | | + | | 65.09 |
− | | 64. | + | | 48.88 |
− | | 62. | + | | 47.06 |
− | | | + | | 81.60 |
− | | | + | | 83.14 |
− | | | + | | 82.71 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | Baseline: ISMIR2019 | ||
+ | | 78.61 | ||
+ | | 76.39 | ||
+ | | 74.72 | ||
+ | | 64.15 | ||
+ | | 62.65 | ||
+ | | 83.39 | ||
+ | | 78.57 | ||
+ | | 92.78 | ||
|} | |} | ||
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! style="vertical-align:bottom;" | OverSeg | ! style="vertical-align:bottom;" | OverSeg | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | BMACE |
− | | | + | | 58.92 |
− | | | + | | 12.59 |
− | + | | 12.29 | |
− | | | + | | 4.52 |
− | | | + | | 4.34 |
− | | | + | | 71.62 |
− | | | + | | 91.05 |
− | + | | 60.47 | |
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | | | ||
− | | | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | MD1 | | style="text-align:left;" | MD1 | ||
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| 64.13 | | 64.13 | ||
| 63.14 | | 63.14 | ||
− | | | + | | 88.09 |
− | | | + | | 88.67 |
− | | | + | | 88.47 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | YK1 | ||
+ | | 82.53 | ||
+ | | 79.71 | ||
+ | | 75.60 | ||
+ | | 66.02 | ||
+ | | 62.31 | ||
+ | | 88.94 | ||
+ | | 89.78 | ||
+ | | 89.33 | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-ensemble | | style="text-align:left;" | wu-ensemble | ||
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| 62.84 | | 62.84 | ||
| 60.84 | | 60.84 | ||
− | | | + | | 87.48 |
− | | | + | | 88.68 |
− | | | + | | 87.43 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-single | | style="text-align:left;" | wu-single | ||
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| 61.60 | | 61.60 | ||
| 59.84 | | 59.84 | ||
− | | | + | | 87.03 |
− | | | + | | 89.81 |
− | | | + | | 85.89 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | Baseline: Chordino | ||
+ | | 77.57 | ||
+ | | 74.64 | ||
+ | | 71.59 | ||
+ | | 56.38 | ||
+ | | 53.90 | ||
+ | | 86.51 | ||
+ | | 87.25 | ||
+ | | 87.48 | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | Baseline: ISMIR2019 |
− | | 82. | + | | 82.00 |
− | | | + | | 81.16 |
− | | | + | | 79.69 |
− | | 66. | + | | 66.97 |
− | | | + | | 65.77 |
− | | | + | | 89.04 |
− | | | + | | 86.43 |
− | | | + | | 93.49 |
|} | |} | ||
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! style="vertical-align:bottom;" | OverSeg | ! style="vertical-align:bottom;" | OverSeg | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | BMACE |
− | + | | 52.38 | |
− | + | | 11.90 | |
− | + | | 11.65 | |
− | | 52. | + | | 2.37 |
− | | | + | | 2.23 |
− | | | + | | 71.98 |
− | | | + | | 90.23 |
− | | | + | | 60.42 |
− | | | ||
− | |||
− | |||
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− | |||
− | |||
− | |||
− | | | ||
− | |||
− | | | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | MD1 | | style="text-align:left;" | MD1 | ||
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| 55.59 | | 55.59 | ||
| 54.71 | | 54.71 | ||
− | | | + | | 88.00 |
− | | | + | | 88.13 |
− | | | + | | 88.20 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | YK1 | ||
+ | | 80.13 | ||
+ | | 77.03 | ||
+ | | 72.85 | ||
+ | | 61.24 | ||
+ | | 57.26 | ||
+ | | 89.42 | ||
+ | | 89.71 | ||
+ | | 89.49 | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-ensemble | | style="text-align:left;" | wu-ensemble | ||
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| 54.36 | | 54.36 | ||
| 52.58 | | 52.58 | ||
− | | | + | | 87.22 |
− | | | + | | 88.44 |
− | | | + | | 86.55 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-single | | style="text-align:left;" | wu-single | ||
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| 55.35 | | 55.35 | ||
| 53.60 | | 53.60 | ||
− | | | + | | 87.19 |
− | | | + | | 89.30 |
− | | | + | | 85.70 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | Baseline: Chordino |
− | | | + | | 74.49 |
− | | | + | | 71.99 |
− | | | + | | 69.24 |
− | | | + | | 52.40 |
− | | | + | | 49.97 |
− | | | + | | 86.66 |
− | | | + | | 85.89 |
− | | | + | | 88.28 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | Baseline: ISMIR2019 | ||
+ | | 81.49 | ||
+ | | 79.99 | ||
+ | | 78.58 | ||
+ | | 62.81 | ||
+ | | 61.61 | ||
+ | | 90.09 | ||
+ | | 87.21 | ||
+ | | 93.88 | ||
|} | |} | ||
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Below are results on datasets that may not be strictly held-out test sets. Some models might have been trained on these datasets; for specific details, please refer to the extended abstracts of each model. | Below are results on datasets that may not be strictly held-out test sets. Some models might have been trained on these datasets; for specific details, please refer to the extended abstracts of each model. | ||
− | |||
== Billboard2012 == | == Billboard2012 == | ||
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! style="vertical-align:bottom;" | OverSeg | ! style="vertical-align:bottom;" | OverSeg | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | BMACE |
− | | | + | | 58.45 |
− | | | + | | 9.13 |
− | | | + | | 9.00 |
− | | | + | | 2.91 |
− | | | + | | 2.86 |
− | | | + | | 69.55 |
− | | | + | | 92.02 |
− | | | + | | 57.41 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | MD1 | | style="text-align:left;" | MD1 | ||
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| 74.12 | | 74.12 | ||
| 73.12 | | 73.12 | ||
− | | | + | | 88.80 |
− | | | + | | 88.63 |
− | | | + | | 89.78 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | YK1 | ||
+ | | 85.90 | ||
+ | | 84.66 | ||
+ | | 81.81 | ||
+ | | 77.22 | ||
+ | | 74.45 | ||
+ | | 88.43 | ||
+ | | 87.88 | ||
+ | | 89.58 | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-ensemble | | style="text-align:left;" | wu-ensemble | ||
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| 59.99 | | 59.99 | ||
| 58.79 | | 58.79 | ||
− | | | + | | 84.42 |
− | | | + | | 87.98 |
− | | | + | | 82.57 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-single | | style="text-align:left;" | wu-single | ||
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| 60.23 | | 60.23 | ||
| 59.07 | | 59.07 | ||
− | | | + | | 84.87 |
− | | | + | | 87.19 |
− | | | + | | 84.24 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | Baseline: Chordino |
− | | | + | | 74.04 |
− | | | + | | 72.11 |
− | | | + | | 70.05 |
− | | | + | | 55.24 |
− | | | + | | 53.28 |
− | | | + | | 83.69 |
− | | | + | | 85.33 |
− | | | + | | 83.48 |
|} | |} | ||
− | |||
== RWC-Popular == | == RWC-Popular == | ||
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! style="vertical-align:bottom;" | OverSeg | ! style="vertical-align:bottom;" | OverSeg | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | BMACE |
− | | | + | | 56.48 |
− | | | + | | 11.97 |
− | | | + | | 11.78 |
− | | | + | | 2.41 |
− | | | + | | 2.30 |
− | + | | 72.59 | |
− | | | + | | 90.92 |
− | | | + | | 61.06 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | MD1 | | style="text-align:left;" | MD1 | ||
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| 66.53 | | 66.53 | ||
| 64.83 | | 64.83 | ||
− | | | + | | 88.53 |
− | | | + | | 88.53 |
− | | | + | | 88.84 |
+ | |- style="vertical-align:bottom;" | ||
+ | | style="text-align:left;" | YK1 | ||
+ | | 88.76 | ||
+ | | 87.27 | ||
+ | | 81.14 | ||
+ | | 76.88 | ||
+ | | 70.90 | ||
+ | | 91.90 | ||
+ | | 91.55 | ||
+ | | 92.43 | ||
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-ensemble | | style="text-align:left;" | wu-ensemble | ||
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| 62.65 | | 62.65 | ||
| 60.25 | | 60.25 | ||
− | | | + | | 87.51 |
− | | | + | | 89.95 |
− | | | + | | 85.65 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
| style="text-align:left;" | wu-single | | style="text-align:left;" | wu-single | ||
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| 62.86 | | 62.86 | ||
| 60.28 | | 60.28 | ||
− | | | + | | 87.81 |
− | | | + | | 89.47 |
− | | | + | | 86.64 |
|- style="vertical-align:bottom;" | |- style="vertical-align:bottom;" | ||
− | | style="text-align:left;" | | + | | style="text-align:left;" | Baseline: Chordino |
− | | | + | | 78.97 |
− | | | + | | 77.78 |
− | | | + | | 74.13 |
− | | | + | | 63.15 |
− | | | + | | 59.72 |
− | | | + | | 88.64 |
− | | | + | | 88.07 |
− | | | + | | 89.76 |
|} | |} | ||
+ | |||
+ | |||
+ | = Task Captain's Note = | ||
+ | |||
+ | * Results on Billboard & RWC Popular are competible with previous years. | ||
+ | * Evaluation tools: https://github.com/ismir-mirex/ace-task-captain-note | ||
+ | * Model Raw outputs: https://github.com/ismir-mirex/ace-output | ||
+ | * Detailed evaluation results: https://github.com/ismir-mirex/ace-results |
Latest revision as of 07:10, 9 September 2025
Contents
Submissions
Submission | Title | Authors | |
---|---|---|---|
Baseline: Chordino | NNLS Chroma v1.1 | Link | |
Baseline: ISMIR2019 | Large-Vocabulary Chord Transcription via Chord Structure Decomposition | Link | |
MD1 | Degree-Based Automatic Chord Recognition with Enharmonic Distinction | TBA | Masayuki Doai |
wu-ensemble | wu-ensemble | TBA | Yiwei Ding, Christof Weiß |
wu-single | wu-single | TBA | Yiwei Ding, Christof Weiß |
YK1 | Semi-Supervised Audio Chord Estimator Based on Disentangled Generative Modeling | TBA | Yiming Wu, Kento Yoshida |
BMACE | A Mamba-Based Model for Automatic Chord Recognition | TBA | Chunyu Yuan, Jiyeoung Sim, Johanna Devaney |
Test Sets
Main Test Sets
The following datasets are served as pure test sets. No system is allowed to train on them.
- Billboard 2013: The held-out portion of the McGill Billboard dataset, containing mainly western pop songs from the Billboard chart.
- Yamaha_JPOP: A private dataset annotated by Yamaha Corporation. The dataset contains 200 JPOP songs.
- Yamaha_Balanced: A private dataset annotated by Yamaha Corporation. The dataset contains 241 songs. While it is still biased towards JPOP songs, the dataset covers a wider range of genres: J.Pop (10.37%), Rock (10.37%), J.Enka (10.37%), J.Kayoukyoku (10.37%), Soundtrack (10.37%), Western Pop (10.37%), Children's Song (10.37%), R&B (6.22%), Hiphop (4.56%), Jazz (2.49%), Dance (2.49%), World (2.07%), Techno (1.24%), Easy listening (1.24%), J.Minyou (1.24%), Others (5.81%).
Additional Test Sets
These are datasets that may not be strictly held-out test sets. Some models might have been trained on these datasets; for specific details, please refer to the extended abstracts of each model.
- Billboard 2012: The public portion of the McGill Billboard dataset.
- RWC Popular: 100 pop songs from the RWC (Real World Computing) Music Database. 20% songs with English lyrics and 80% songs with Japanese lyrics.
Main Results
The following datasets are served as pure test sets. No system is allowed to train on them.
Billboard2013
Group | MirexRoot | MirexMajMin | MirexMajMinBass | MirexSevenths | MirexSeventhsBass | MeanSeg | UnderSeg | OverSeg |
---|---|---|---|---|---|---|---|---|
BMACE | 55.72 | 8.88 | 8.70 | 2.52 | 2.45 | 68.16 | 90.86 | 56.60 |
MD1 | 81.35 | 79.15 | 77.91 | 66.40 | 65.33 | 86.17 | 85.50 | 88.89 |
YK1 | 81.01 | 78.10 | 75.41 | 64.53 | 62.05 | 85.50 | 85.08 | 87.49 |
wu-ensemble | 74.64 | 71.97 | 70.72 | 55.06 | 53.96 | 83.19 | 86.29 | 82.20 |
wu-single | 75.77 | 73.14 | 71.74 | 55.41 | 54.15 | 83.16 | 85.44 | 83.08 |
Baseline: Chordino | 71.06 | 67.18 | 65.09 | 48.88 | 47.06 | 81.60 | 83.14 | 82.71 |
Baseline: ISMIR2019 | 78.61 | 76.39 | 74.72 | 64.15 | 62.65 | 83.39 | 78.57 | 92.78 |
YAMAHA_Balanced
Group | MirexRoot | MirexMajMin | MirexMajMinBass | MirexSevenths | MirexSeventhsBass | MeanSeg | UnderSeg | OverSeg |
---|---|---|---|---|---|---|---|---|
BMACE | 58.92 | 12.59 | 12.29 | 4.52 | 4.34 | 71.62 | 91.05 | 60.47 |
MD1 | 81.83 | 80.22 | 78.87 | 64.13 | 63.14 | 88.09 | 88.67 | 88.47 |
YK1 | 82.53 | 79.71 | 75.60 | 66.02 | 62.31 | 88.94 | 89.78 | 89.33 |
wu-ensemble | 82.54 | 81.29 | 78.99 | 62.84 | 60.84 | 87.48 | 88.68 | 87.43 |
wu-single | 81.37 | 79.69 | 77.61 | 61.60 | 59.84 | 87.03 | 89.81 | 85.89 |
Baseline: Chordino | 77.57 | 74.64 | 71.59 | 56.38 | 53.90 | 86.51 | 87.25 | 87.48 |
Baseline: ISMIR2019 | 82.00 | 81.16 | 79.69 | 66.97 | 65.77 | 89.04 | 86.43 | 93.49 |
YAMAHA_JPop
Group | MirexRoot | MirexMajMin | MirexMajMinBass | MirexSevenths | MirexSeventhsBass | MeanSeg | UnderSeg | OverSeg |
---|---|---|---|---|---|---|---|---|
BMACE | 52.38 | 11.90 | 11.65 | 2.37 | 2.23 | 71.98 | 90.23 | 60.42 |
MD1 | 79.34 | 77.10 | 76.07 | 55.59 | 54.71 | 88.00 | 88.13 | 88.20 |
YK1 | 80.13 | 77.03 | 72.85 | 61.24 | 57.26 | 89.42 | 89.71 | 89.49 |
wu-ensemble | 79.58 | 77.58 | 75.57 | 54.36 | 52.58 | 87.22 | 88.44 | 86.55 |
wu-single | 78.87 | 76.56 | 74.66 | 55.35 | 53.60 | 87.19 | 89.30 | 85.70 |
Baseline: Chordino | 74.49 | 71.99 | 69.24 | 52.40 | 49.97 | 86.66 | 85.89 | 88.28 |
Baseline: ISMIR2019 | 81.49 | 79.99 | 78.58 | 62.81 | 61.61 | 90.09 | 87.21 | 93.88 |
Additional Results
Below are results on datasets that may not be strictly held-out test sets. Some models might have been trained on these datasets; for specific details, please refer to the extended abstracts of each model.
Billboard2012
Group | MirexRoot | MirexMajMin | MirexMajMinBass | MirexSevenths | MirexSeventhsBass | MeanSeg | UnderSeg | OverSeg |
---|---|---|---|---|---|---|---|---|
BMACE | 58.45 | 9.13 | 9.00 | 2.91 | 2.86 | 69.55 | 92.02 | 57.41 |
MD1 | 85.11 | 83.98 | 82.76 | 74.12 | 73.12 | 88.80 | 88.63 | 89.78 |
YK1 | 85.90 | 84.66 | 81.81 | 77.22 | 74.45 | 88.43 | 87.88 | 89.58 |
wu-ensemble | 78.26 | 77.15 | 75.58 | 59.99 | 58.79 | 84.42 | 87.98 | 82.57 |
wu-single | 79.23 | 78.21 | 76.76 | 60.23 | 59.07 | 84.87 | 87.19 | 84.24 |
Baseline: Chordino | 74.04 | 72.11 | 70.05 | 55.24 | 53.28 | 83.69 | 85.33 | 83.48 |
RWC-Popular
Group | MirexRoot | MirexMajMin | MirexMajMinBass | MirexSevenths | MirexSeventhsBass | MeanSeg | UnderSeg | OverSeg |
---|---|---|---|---|---|---|---|---|
BMACE | 56.48 | 11.97 | 11.78 | 2.41 | 2.30 | 72.59 | 90.92 | 61.06 |
MD1 | 83.98 | 81.18 | 79.42 | 66.53 | 64.83 | 88.53 | 88.53 | 88.84 |
YK1 | 88.76 | 87.27 | 81.14 | 76.88 | 70.90 | 91.90 | 91.55 | 92.43 |
wu-ensemble | 81.87 | 80.30 | 77.58 | 62.65 | 60.25 | 87.51 | 89.95 | 85.65 |
wu-single | 82.48 | 81.35 | 78.48 | 62.86 | 60.28 | 87.81 | 89.47 | 86.64 |
Baseline: Chordino | 78.97 | 77.78 | 74.13 | 63.15 | 59.72 | 88.64 | 88.07 | 89.76 |
Task Captain's Note
- Results on Billboard & RWC Popular are competible with previous years.
- Evaluation tools: https://github.com/ismir-mirex/ace-task-captain-note
- Model Raw outputs: https://github.com/ismir-mirex/ace-output
- Detailed evaluation results: https://github.com/ismir-mirex/ace-results