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detections-semantic/_docs/00_problem/input_data/data_parameters.md
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Oleksandr Bezdieniezhnykh 8e2ecf50fd Initial commit
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Semantic Detection Training Data

Source

  • Aerial imagery from reconnaissance winged UAVs at 6001000m altitude
  • ViewPro A40 camera, 1080p resolution, various zoom levels
  • Extracted from video frames and still images

Target Classes

  • Footpaths / trails (linear features on snow, mud, forest floor)
  • Fresh footpaths (distinct edges, undisturbed surroundings, recent track marks)
  • Stale footpaths (partially covered by snow/vegetation, faded edges)
  • Concealed structures: branch pile hideouts, dugout entrances, squared/circular openings
  • Tree rows (potential concealment lines)
  • Open clearings connected to paths (FPV launch points)

YOLO Primitive Classes (new)

  • Black entrances to hideouts (various sizes)
  • Piles of tree branches
  • Footpaths
  • Roads
  • Trees, tree blocks

Annotation Format

  • Managed by existing annotation tooling in separate repository
  • Expected: bounding boxes and/or segmentation masks depending on model architecture
  • Footpaths may require polyline or segmentation annotation rather than bounding boxes

Seasonal Coverage Required

  • Winter: snow-covered terrain (footpaths as dark lines on white)
  • Spring: mud season (footpaths as compressed/disturbed soil)
  • Summer: full vegetation (paths through grass/undergrowth)
  • Autumn: mixed leaf cover, partial snow

Volume

  • Target: hundreds to thousands of annotated images
  • Available effort: 1.5 months, 5 hours/day
  • Potential for annotation process automation

Reference Examples

  • semantic01.png — footpath leading to branch-pile hideout in winter forest
  • semantic02.png — footpath to FPV launch clearing, branch mass at forest edge
  • semantic03.png — footpath to squared hideout structure
  • semantic04.png — footpath terminating at tree-branch concealment