segformer-b0-finetuned-segments-sidewalk-2
This model is a fine-tuned version of nvidia/mit-b0 on the segments/sidewalk-semantic dataset. It achieves the following results on the evaluation set:
- eval_loss: 0.5277
- eval_mean_iou: 0.3177
- eval_mean_accuracy: 0.3837
- eval_overall_accuracy: 0.8556
- eval_accuracy_unlabeled: nan
- eval_accuracy_flat-road: 0.9247
- eval_accuracy_flat-sidewalk: 0.9046
- eval_accuracy_flat-crosswalk: 0.9004
- eval_accuracy_flat-cyclinglane: 0.9024
- eval_accuracy_flat-parkingdriveway: 0.5583
- eval_accuracy_flat-railtrack: nan
- eval_accuracy_flat-curb: 0.5870
- eval_accuracy_human-person: 0.7960
- eval_accuracy_human-rider: 0.0
- eval_accuracy_vehicle-car: 0.9470
- eval_accuracy_vehicle-truck: 0.0
- eval_accuracy_vehicle-bus: 0.0
- eval_accuracy_vehicle-tramtrain: 0.0
- eval_accuracy_vehicle-motorcycle: 0.0
- eval_accuracy_vehicle-bicycle: 0.6493
- eval_accuracy_vehicle-caravan: 0.0
- eval_accuracy_vehicle-cartrailer: 0.0
- eval_accuracy_construction-building: 0.8838
- eval_accuracy_construction-door: 0.0
- eval_accuracy_construction-wall: 0.4337
- eval_accuracy_construction-fenceguardrail: 0.3946
- eval_accuracy_construction-bridge: 0.0
- eval_accuracy_construction-tunnel: nan
- eval_accuracy_construction-stairs: 0.0
- eval_accuracy_object-pole: 0.2846
- eval_accuracy_object-trafficsign: 0.0
- eval_accuracy_object-trafficlight: 0.0
- eval_accuracy_nature-vegetation: 0.9430
- eval_accuracy_nature-terrain: 0.8979
- eval_accuracy_sky: 0.9559
- eval_accuracy_void-ground: 0.0
- eval_accuracy_void-dynamic: 0.0
- eval_accuracy_void-static: 0.3145
- eval_accuracy_void-unclear: 0.0
- eval_iou_unlabeled: nan
- eval_iou_flat-road: 0.7544
- eval_iou_flat-sidewalk: 0.8653
- eval_iou_flat-crosswalk: 0.6874
- eval_iou_flat-cyclinglane: 0.8249
- eval_iou_flat-parkingdriveway: 0.3996
- eval_iou_flat-railtrack: nan
- eval_iou_flat-curb: 0.4591
- eval_iou_human-person: 0.4778
- eval_iou_human-rider: 0.0
- eval_iou_vehicle-car: 0.8108
- eval_iou_vehicle-truck: 0.0
- eval_iou_vehicle-bus: 0.0
- eval_iou_vehicle-tramtrain: 0.0
- eval_iou_vehicle-motorcycle: 0.0
- eval_iou_vehicle-bicycle: 0.5337
- eval_iou_vehicle-caravan: 0.0
- eval_iou_vehicle-cartrailer: 0.0
- eval_iou_construction-building: 0.7103
- eval_iou_construction-door: 0.0
- eval_iou_construction-wall: 0.3464
- eval_iou_construction-fenceguardrail: 0.3532
- eval_iou_construction-bridge: 0.0
- eval_iou_construction-tunnel: nan
- eval_iou_construction-stairs: 0.0
- eval_iou_object-pole: 0.2448
- eval_iou_object-trafficsign: 0.0
- eval_iou_object-trafficlight: 0.0
- eval_iou_nature-vegetation: 0.8543
- eval_iou_nature-terrain: 0.7232
- eval_iou_sky: 0.9191
- eval_iou_void-ground: 0.0
- eval_iou_void-dynamic: 0.0
- eval_iou_void-static: 0.2024
- eval_iou_void-unclear: 0.0
- eval_runtime: 33.3831
- eval_samples_per_second: 5.991
- eval_steps_per_second: 1.498
- epoch: 11.3
- step: 2260
Model description
More information needed
Intended uses & limitations
More information needed
Training and evaluation data
More information needed
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
- learning_rate: 6e-05
- train_batch_size: 4
- eval_batch_size: 4
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 50
Framework versions
- Transformers 4.37.2
- Pytorch 2.1.0+cu121
- Datasets 2.17.1
- Tokenizers 0.15.2
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Base model
nvidia/mit-b0