brakes_bounding_boxes Computer Vision Model
How to use the brakes_bounding_boxes Detection API
Try This Model
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Model type: YOLO-NAS Object Detection (Accurate)
Dataset: brakes_bounding_boxes/2 (130 images)
Checkpoint: coco/14
Oct 3, 2024
Code Snippets
from inference_sdk import InferenceHTTPClient
CLIENT = InferenceHTTPClient(
api_url="https://serverless.roboflow.com",
api_key="API_KEY"
)
result = CLIENT.infer("YOUR_IMAGE.jpg", model_id="brakes_bounding_boxes/2")Give your agent everything it needs
Or, Use Free Tire, -brakes-tires-axle-suspension- and Axle Detection API
Powered by general detection model
Code
pip install inference-sdk# 1. Import the library
from inference_sdk import InferenceHTTPClient
# 2. Connect to your workspace
client = InferenceHTTPClient(
api_url="https://serverless.roboflow.com",
api_key="API_KEY"
)
# 3. Run your workflow on an image
result = client.run_workflow(
workspace_name="<YOUR_WORKSPACE>",
workflow_id="<YOUR_WORKFLOW_ID>",
images={
"image": "YOUR_IMAGE.jpg" # Path to your image file
},
parameters={
"classes": "tire, -brakes-tires-axle-suspension-, axle, brake, suspension"
},
use_cache=True # cache workflow definition for 15 minutes
)
# 4. Get your results
print(result)Run on custom image
Drop an image here or click to upload
Detecting classes:
Or try a test image
About brakes_bounding_boxes Model
A description for this project has not been published yet.
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Cite This Project
LicenseCC BY 4.0If you use this dataset in a research paper, please cite it using the following BibTeX:
@misc{ brakes_bounding_boxes_dataset,
title = { brakes_bounding_boxes Dataset },
type = { Open Source Dataset },
author = { Aether Counting },
howpublished = { \url{ https://universe.roboflow.com/aether-counting/brakes_bounding_boxes } },
url = { https://universe.roboflow.com/aether-counting/brakes_bounding_boxes },
journal = { Roboflow Universe },
publisher = { Roboflow },
year = { 2024 },
month = { oct },
note = { visited on 2026-07-29 },
}










