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Baseline CNN (TensorFlow)

The paper's baseline convolutional network, built with TensorFlow.

9 evaluations · 18 results

Overview

The paper's baseline convolutional network, built with TensorFlow.

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

Evaluations and results

9 evaluations · 18 results. Different protocols are not a single leaderboard.

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Applied filters: All linked evaluations

Exact evaluated configurations and original reported results
Tested configurationProtocol and datasetFindingEvidence and details
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DEMO-CODING-VS-INTERGENOMIC-SEQS-ACCURACY: demo_coding_vs_intergenomic_seqs, Accuracy
Dataset subset: demo_coding_vs_intergenomic_seqs (Genomic Benchmarks split)
89.6% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DEMO-CODING-VS-INTERGENOMIC-SEQS-ACCURACY: demo_coding_vs_intergenomic_seqs, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(demo_coding_vs_intergenomic_seqs), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DEMO-CODING-VS-INTERGENOMIC-SEQS-F1: demo_coding_vs_intergenomic_seqs, F1 score
Dataset subset: demo_coding_vs_intergenomic_seqs (Genomic Benchmarks split)
89.4% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DEMO-CODING-VS-INTERGENOMIC-SEQS-F1: demo_coding_vs_intergenomic_seqs, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(demo_coding_vs_intergenomic_seqs), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DEMO-HUMAN-OR-WORM-ACCURACY: demo_human_or_worm, Accuracy
Dataset subset: demo_human_or_worm (Genomic Benchmarks split)
94.2% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DEMO-HUMAN-OR-WORM-ACCURACY: demo_human_or_worm, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(demo_human_or_worm), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DEMO-HUMAN-OR-WORM-F1: demo_human_or_worm, F1 score
Dataset subset: demo_human_or_worm (Genomic Benchmarks split)
93.2% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DEMO-HUMAN-OR-WORM-F1: demo_human_or_worm, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(demo_human_or_worm), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DROSOPHILA-ENHANCERS-STARK-ACCURACY: drosophila_enhancers_stark, Accuracy
Dataset subset: drosophila_enhancers_stark (Genomic Benchmarks split)
52.4% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DROSOPHILA-ENHANCERS-STARK-ACCURACY: drosophila_enhancers_stark, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(drosophila_enhancers_stark), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DROSOPHILA-ENHANCERS-STARK-F1: drosophila_enhancers_stark, F1 score
Dataset subset: drosophila_enhancers_stark (Genomic Benchmarks split)
69.1% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DROSOPHILA-ENHANCERS-STARK-F1: drosophila_enhancers_stark, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(drosophila_enhancers_stark), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DUMMY-MOUSE-ENHANCERS-ENSEMBL-ACCURACY: dummy_mouse_enhancers_ensembl, Accuracy
Dataset subset: dummy_mouse_enhancers_ensembl (Genomic Benchmarks split)
50% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DUMMY-MOUSE-ENHANCERS-ENSEMBL-ACCURACY: dummy_mouse_enhancers_ensembl, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(dummy_mouse_enhancers_ensembl), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks DUMMY-MOUSE-ENHANCERS-ENSEMBL-F1: dummy_mouse_enhancers_ensembl, F1 score
Dataset subset: dummy_mouse_enhancers_ensembl (Genomic Benchmarks split)
66.9% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks DUMMY-MOUSE-ENHANCERS-ENSEMBL-F1: dummy_mouse_enhancers_ensembl, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(dummy_mouse_enhancers_ensembl), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-ENHANCERS-COHN-ACCURACY: human_enhancers_cohn, Accuracy
Dataset subset: human_enhancers_cohn (Genomic Benchmarks split)
68.9% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-ENHANCERS-COHN-ACCURACY: human_enhancers_cohn, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_enhancers_cohn), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-ENHANCERS-COHN-F1: human_enhancers_cohn, F1 score
Dataset subset: human_enhancers_cohn (Genomic Benchmarks split)
71.3% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-ENHANCERS-COHN-F1: human_enhancers_cohn, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_enhancers_cohn), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-ENHANCERS-ENSEMBL-ACCURACY: human_enhancers_ensembl, Accuracy
Dataset subset: human_enhancers_ensembl (Genomic Benchmarks split)
81.1% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-ENHANCERS-ENSEMBL-ACCURACY: human_enhancers_ensembl, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_enhancers_ensembl), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-ENHANCERS-ENSEMBL-F1: human_enhancers_ensembl, F1 score
Dataset subset: human_enhancers_ensembl (Genomic Benchmarks split)
74.6% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-ENHANCERS-ENSEMBL-F1: human_enhancers_ensembl, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_enhancers_ensembl), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-ENSEMBL-REGULATORY-ACCURACY: human_ensembl_regulatory, Accuracy
Dataset subset: human_ensembl_regulatory (Genomic Benchmarks split)
79.3% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-ENSEMBL-REGULATORY-ACCURACY: human_ensembl_regulatory, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_ensembl_regulatory), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-ENSEMBL-REGULATORY-F1: human_ensembl_regulatory, F1 score
Dataset subset: human_ensembl_regulatory (Genomic Benchmarks split)
79.3% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-ENSEMBL-REGULATORY-F1: human_ensembl_regulatory, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_ensembl_regulatory), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-NONTATA-PROMOTERS-ACCURACY: human_nontata_promoters, Accuracy
Dataset subset: human_nontata_promoters (Genomic Benchmarks split)
86.5% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-NONTATA-PROMOTERS-ACCURACY: human_nontata_promoters, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_nontata_promoters), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-NONTATA-PROMOTERS-F1: human_nontata_promoters, F1 score
Dataset subset: human_nontata_promoters (Genomic Benchmarks split)
84.4% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-NONTATA-PROMOTERS-F1: human_nontata_promoters, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_nontata_promoters), column(Baseline CNN (TensorFlow) F1 score)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-OCR-ENSEMBL-ACCURACY: human_ocr_ensembl, Accuracy
Dataset subset: human_ocr_ensembl (Genomic Benchmarks split)
68.8% accuracy
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-OCR-ENSEMBL-ACCURACY: human_ocr_ensembl, Accuracy

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_ocr_ensembl), column(Baseline CNN (TensorFlow) Accuracy)
Configuration: Baseline CNN (TensorFlow)Task: Genomic Benchmarks HUMAN-OCR-ENSEMBL-F1: human_ocr_ensembl, F1 score
Dataset subset: human_ocr_ensembl (Genomic Benchmarks split)
72% f1
percent · higher

Uncertainty: Not reported

Coverage: Not reported scored / Not reported eligible

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

Baseline CNN (TensorFlow) on Genomic Benchmarks HUMAN-OCR-ENSEMBL-F1: human_ocr_ensembl, F1 score

The paper's own three-layer convolutional baseline, trained on each dataset's training split and scored on its test split. Architecture is in Table 1.

Aggregation: Not reported

Genomic benchmarks: a collection of datasets for genomic sequence classification · Table 2, row(human_ocr_ensembl), column(Baseline CNN (TensorFlow) F1 score)

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Stable ID: genomic-benchmarks-method-baseline-cnn-tensorflow

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