Color, texture and statistical classification
White balance and color-chart calibration → Lab/Delta E 2000 → LBP/GLCM/Gabor features → SVM or random forest
JIVISION offers project development and technical assessment for Vehicle Type, Color, Body Attribute and Lane Association. Scope: Vehicle type/color/body attributes, lane, direction and confidence.
Vehicle type/color/body attributes, lane, direction and confidence
Define type granularity and color classes; reduce confidence or reject colors distorted by night lighting.
These are candidate implementation paths. Establish a baseline on real samples, then select or combine methods for imaging, speed and deployment constraints. Model names do not imply measured project results.
White balance and color-chart calibration → Lab/Delta E 2000 → LBP/GLCM/Gabor features → SVM or random forest
RT-DETR, RTMDet, YOLOX, PP-YOLOE or rotated-box detection → non-maximum suppression and confidence thresholds → task rules
Object detection → ByteTrack, OC-SORT, BoT-SORT or Norfair association → Kalman filtering and track management
Provide camera layouts, authorized video, target sizes, day/night samples, region/event definitions, concurrent streams, alert-review workflows and retention periods.
Result schema, algorithm or processing configuration, example outputs and evaluation records for: Vehicle type/color/body attributes, lane, direction and confidence. Software format and source-code scope are agreed in the contract.
Specify input formats, output fields, coordinates/units, error states, versions and invocation methods. Define review and failure handling. The statement of work determines the exact scope of source code, executables, model files or analysis reports.
Attribute macro-F1; lane association; unknown-class rejection
Evaluate events rather than only frames: misses, false alerts per hour, duration error, alert latency and recovery after occlusion. Include empty scenes and hard negatives.
These are measures to agree and test, not achieved-performance claims. Freeze samples, reference truth, thresholds and hardware/software versions before acceptance; report subgroup results and failures, identifying under-sampled conditions as uncovered.
Agree targets, stations, inputs and responsibilities in a statement of work, separating required and excluded conditions.
Use representative samples to test critical risks, document feasibility/failures and scope the next-stage estimate.
Implement agreed functions and interfaces with configuration/change records; use offline replay before authorized device or site integration.
Retest against individual measures and hand over contracted artifacts with known limits; manage maintenance, expansion and changeovers as subsequent work packages.
Use data minimization, anonymization and access controls as needed. Do not infer sensitive traits, emotions or medical status from appearance; review alerts and retain existing safety measures.
Candidate technologies are not license clearance. Check code, model weights, training data and dependency versions separately. Replace, license or exclude components unsuitable for the intended commercial delivery. Customer data is not used for public training by default.
Vehicle type/color/body attributes, lane, direction and confidence. Deliverables: Result schema, algorithm or processing configuration, example outputs and evaluation records for: Vehicle type/color/body attributes, lane, direction and confidence. Software format and source-code scope are agreed in the contract.
Define type granularity and color classes; reduce confidence or reject colors distorted by night lighting.
Task-specific measures: Attribute macro-F1; lane association; unknown-class rejection. Evaluate events rather than only frames: misses, false alerts per hour, duration error, alert latency and recovery after occlusion. Include empty scenes and hard negatives.
After reviewing samples for vehicle type/color/body attributes, lane, direction and confidence, equipment conditions and interfaces, scope validation, development, deployment and acceptance separately. Data coverage, site changes and delivery rights affect the estimate; no fixed performance or schedule is promised before assessment.
Service ID: E47 · Vehicle Type, Color, Body Attribute and Lane Association
Describe available samples, equipment and target measures. Agree confidentiality and permissions before transferring sensitive or personal data through an approved channel.
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