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GlycanAA

GlycanAA hierarchical relational graph baseline with atom and monosaccharide nodes, trained and evaluated on the same GlycanML task splits; exact trained checkpoint unreported.

20 evaluations · 20 metric rows

Overview

GlycanAA hierarchical relational graph baseline with atom and monosaccharide nodes, trained and evaluated on the same GlycanML task splits; exact trained checkpoint unreported.

Consult the linked sources for architecture or protocol details. Missing evidence is not evidence of a missing capability.

Evaluations and results

20 evaluations · 20 metric rows. Different protocols are not a single leaderboard.

Filter evaluations

Applied filters: All linked evaluations

Exact evaluated configurations and original reported results
Tested configurationProtocol and datasetFindingEvidence and details
Configuration: GlycanAAProtocol: GlycanML class Accuracy: GlycanGT study: class Accuracy
Dataset subset: SugarBase taxonomy class; GlycanML official motif split (GlycanML split)
0.74646666666666595 ± 0.0136313364470742 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.0136313364470742

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML class Accuracy: GlycanGT study: class Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A24:E24 (mean D24, SD E24)
Configuration: GlycanAAProtocol: GlycanML class Macro-F1: GlycanGT study: class Macro-F1
Dataset subset: SugarBase taxonomy class; GlycanML official motif split (GlycanML split)
0.41666666666666602 ± 0.0177798575172393 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.0177798575172393

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML class Macro-F1: GlycanGT study: class Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A25:E25 (mean D25, SD E25)
Configuration: GlycanAAProtocol: GlycanML domain Accuracy: GlycanGT study: domain Accuracy
Dataset subset: SugarBase taxonomy domain; GlycanML official motif split (GlycanML split)
0.93473333333333297 ± 0.0117457793838184 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.0117457793838184

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML domain Accuracy: GlycanGT study: domain Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A34:E34 (mean D34, SD E34)
Configuration: GlycanAAProtocol: GlycanML domain Macro-F1: GlycanGT study: domain Macro-F1
Dataset subset: SugarBase taxonomy domain; GlycanML official motif split (GlycanML split)
0.62916666666666599 ± 0.011393126582871499 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.011393126582871499

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML domain Macro-F1: GlycanGT study: domain Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A35:E35 (mean D35, SD E35)
Configuration: GlycanAAProtocol: GlycanML family Accuracy: GlycanGT study: family Accuracy
Dataset subset: SugarBase taxonomy family; GlycanML official motif split (GlycanML split)
0.43126666666666602 ± 0.086080911550315997 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.086080911550315997

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML family Accuracy: GlycanGT study: family Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A26:E26 (mean D26, SD E26)
Configuration: GlycanAAProtocol: GlycanML family Macro-F1: GlycanGT study: family Macro-F1
Dataset subset: SugarBase taxonomy family; GlycanML official motif split (GlycanML split)
0.212166666666666 ± 0.015383215961993499 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.015383215961993499

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML family Macro-F1: GlycanGT study: family Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A27:E27 (mean D27, SD E27)
Configuration: GlycanAAProtocol: GlycanML genus Accuracy: GlycanGT study: genus Accuracy
Dataset subset: SugarBase taxonomy genus; GlycanML official motif split (GlycanML split)
0.38300000000000001 ± 0.0324371700368574 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.0324371700368574

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML genus Accuracy: GlycanGT study: genus Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A36:E36 (mean D36, SD E36)
Configuration: GlycanAAProtocol: GlycanML genus Macro-F1: GlycanGT study: genus Macro-F1
Dataset subset: SugarBase taxonomy genus; GlycanML official motif split (GlycanML split)
0.18640000000000001 ± 0.0119478031453485 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.0119478031453485

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML genus Macro-F1: GlycanGT study: genus Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A37:E37 (mean D37, SD E37)
Configuration: GlycanAAProtocol: GlycanML glycosylation Accuracy: GlycanGT study: glycosylation Accuracy
Dataset subset: GlyConnect glycosylation; GlycanML official motif split (GlycanML split)
0.96950000000000003 ± 0 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML glycosylation Accuracy: GlycanGT study: glycosylation Accuracy

Glycosylation: 1,683 glycans total; N-linked/O-linked/free. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A38:E38 (mean D38, SD E38)
Configuration: GlycanAAProtocol: GlycanML glycosylation Macro-F1: GlycanGT study: glycosylation Macro-F1
Dataset subset: GlyConnect glycosylation; GlycanML official motif split (GlycanML split)
0.95226666666666604 ± 0.0018475208614067899 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.0018475208614067899

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML glycosylation Macro-F1: GlycanGT study: glycosylation Macro-F1

Glycosylation: 1,683 glycans total; N-linked/O-linked/free. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A39:E39 (mean D39, SD E39)
Configuration: GlycanAAProtocol: GlycanML immunogenicity Accuracy: GlycanGT study: immunogenicity Accuracy
Dataset subset: SugarBase immunogenicity; GlycanML official motif split (GlycanML split)
0.86209999999999998 ± 0 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML immunogenicity Accuracy: GlycanGT study: immunogenicity Accuracy

Immunogenicity: 1,320 glycans total; binary immune activity. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A42:E42 (mean D42, SD E42)
Configuration: GlycanAAProtocol: GlycanML immunogenicity AUPRC: GlycanGT study: immunogenicity AUPRC
Dataset subset: SugarBase immunogenicity; GlycanML official motif split (GlycanML split)
0.70573333333333299 ± 0.069754736995657304 auprc
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.069754736995657304

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML immunogenicity AUPRC: GlycanGT study: immunogenicity AUPRC

Immunogenicity: 1,320 glycans total; binary immune activity. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A43:E43 (mean D43, SD E43)
Configuration: GlycanAAProtocol: GlycanML kingdom Accuracy: GlycanGT study: kingdom Accuracy
Dataset subset: SugarBase taxonomy kingdom; GlycanML official motif split (GlycanML split)
0.92420000000000002 ± 0.015649920127591699 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.015649920127591699

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML kingdom Accuracy: GlycanGT study: kingdom Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A28:E28 (mean D28, SD E28)
Configuration: GlycanAAProtocol: GlycanML kingdom Macro-F1: GlycanGT study: kingdom Macro-F1
Dataset subset: SugarBase taxonomy kingdom; GlycanML official motif split (GlycanML split)
0.59389999999999998 ± 0.095006157695172497 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.095006157695172497

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML kingdom Macro-F1: GlycanGT study: kingdom Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A29:E29 (mean D29, SD E29)
Configuration: GlycanAAProtocol: GlycanML order Accuracy: GlycanGT study: order Accuracy
Dataset subset: SugarBase taxonomy order; GlycanML official motif split (GlycanML split)
0.49836666666666601 ± 0.0066335008354060998 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.0066335008354060998

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML order Accuracy: GlycanGT study: order Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A30:E30 (mean D30, SD E30)
Configuration: GlycanAAProtocol: GlycanML order Macro-F1: GlycanGT study: order Macro-F1
Dataset subset: SugarBase taxonomy order; GlycanML official motif split (GlycanML split)
0.2727 ± 0.0137720731917892 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.0137720731917892

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML order Macro-F1: GlycanGT study: order Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A31:E31 (mean D31, SD E31)
Configuration: GlycanAAProtocol: GlycanML phylum Accuracy: GlycanGT study: phylum Accuracy
Dataset subset: SugarBase taxonomy phylum; GlycanML official motif split (GlycanML split)
0.86686666666666601 ± 0.0142043420591498 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.0142043420591498

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML phylum Accuracy: GlycanGT study: phylum Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A40:E40 (mean D40, SD E40)
Configuration: GlycanAAProtocol: GlycanML phylum Macro-F1: GlycanGT study: phylum Macro-F1
Dataset subset: SugarBase taxonomy phylum; GlycanML official motif split (GlycanML split)
0.440066666666666 ± 0.0041428653530296202 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.0041428653530296202

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML phylum Macro-F1: GlycanGT study: phylum Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A41:E41 (mean D41, SD E41)
Configuration: GlycanAAProtocol: GlycanML species Accuracy: GlycanGT study: species Accuracy
Dataset subset: SugarBase taxonomy species; GlycanML official motif split (GlycanML split)
0.40549999999999897 ± 0.0054836119483420804 accuracy
fraction · higher

Uncertainty: type: standard_deviation; value: 0.0054836119483420804

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML species Accuracy: GlycanGT study: species Accuracy

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A32:E32 (mean D32, SD E32)
Configuration: GlycanAAProtocol: GlycanML species Macro-F1: GlycanGT study: species Macro-F1
Dataset subset: SugarBase taxonomy species; GlycanML official motif split (GlycanML split)
0.15840000000000001 ± 0.012304064369142401 macro_f1
dimensionless · higher

Uncertainty: type: standard_deviation; value: 0.012304064369142401

Coverage: Not reported scored / Not reported eligible

Author-reported evaluation · source checked
Methods, coverage and source

GlycanAA on GlycanML species Macro-F1: GlycanGT study: species Macro-F1

Taxonomy: 13,209 glycans total across eight levels, 4–1,737 classes per level. Official fixed GlycanML motif-based train/validation/test splits (8:1:1). Section 2.5 reports class-balanced classifiers, train ∪ validation hyperparameter selection by randomized search with 3-fold cross-validation, followed by one evaluation on the held-out test set; complete procedure repeated with three random seeds, reporting mean and standard deviation. GlycanGT large model pretrained with 35% masking provides [Graph] embeddings to SVM/LightGBM; the selected classifier for each S4 row is not identified. Section 2.6 states that all four graph baselines were trained and evaluated on the same datasets/splits; it does not establish that each baseline used the GlycanGT downstream classifier search. SVM search: 10 iterations, RBF/linear, C logU(1e-3,1e2), gamma logU(1e-4,1e-1); LightGBM: 15 randomized iterations. Do not combine with separate original GlycanML-paper protocols.

Aggregation: Not reported

GlycanGT published supplementary archive, Table S4; glycangt: Journal full-text XML · btag147_supplementary_data.zip / Table_S4.xlsx / Sheet1!A33:E33 (mean D33, SD E33)

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Stable ID: glycangt-2026-table-s4-method-glycanaa

areas
glycans
source locator
GlycanGT primary article Sections 2.1, 2.5, 2.6 and 3.1–3.2 (PMC13105845), Supplementary Table S4; column B GlycanAA
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