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  1. README.md +61 -37
  2. data/occurrences/11_01_23-DJI_0977.csv +0 -3
  3. data/occurrences/11_01_23-DJI_0978.csv +0 -3
  4. data/occurrences/11_01_23-DJI_0979.csv +0 -3
  5. data/occurrences/11_01_23-DJI_0980.csv +0 -3
  6. data/occurrences/12_01_23-DJI_0001.csv +0 -3
  7. data/occurrences/12_01_23-DJI_0002.csv +0 -3
  8. data/occurrences/12_01_23-DJI_0003.csv +0 -3
  9. data/occurrences/12_01_23-DJI_0006.csv +0 -3
  10. data/occurrences/12_01_23-DJI_0007.csv +0 -3
  11. data/occurrences/12_01_23-DJI_0008.csv +0 -3
  12. data/occurrences/12_01_23-DJI_0987.csv +0 -3
  13. data/occurrences/12_01_23-DJI_0988.csv +0 -3
  14. data/occurrences/12_01_23-DJI_0989.csv +0 -3
  15. data/occurrences/12_01_23-DJI_0992.csv +0 -3
  16. data/occurrences/12_01_23-DJI_0994.csv +0 -3
  17. data/occurrences/12_01_23-DJI_0997.csv +0 -3
  18. data/occurrences/12_01_23-DJI_0998.csv +0 -3
  19. data/occurrences/13_01_23-DJI_0009.csv +0 -3
  20. data/occurrences/13_01_23-DJI_0011.csv +0 -3
  21. data/occurrences/13_01_23-DJI_0012.csv +0 -3
  22. data/occurrences/13_01_23-DJI_0013.csv +0 -3
  23. data/occurrences/13_01_23-DJI_0015.csv +0 -3
  24. data/occurrences/13_01_23-DJI_0016.csv +0 -3
  25. data/occurrences/13_01_23-DJI_0018.csv +0 -3
  26. data/occurrences/13_01_23-DJI_0019.csv +0 -3
  27. data/occurrences/13_01_23-DJI_0020.csv +0 -3
  28. data/occurrences/13_01_23-DJI_0021.csv +0 -3
  29. data/occurrences/13_01_23-DJI_0022.csv +0 -3
  30. data/occurrences/13_01_23-DJI_0023.csv +0 -3
  31. data/occurrences/13_01_23-DJI_0024.csv +0 -3
  32. data/occurrences/13_01_23-DJI_0029.csv +0 -3
  33. data/occurrences/13_01_23-DJI_0031.csv +0 -3
  34. data/occurrences/13_01_23-DJI_0032.csv +0 -3
  35. data/occurrences/13_01_23-DJI_0033.csv +0 -3
  36. data/occurrences/13_01_23-DJI_0035.csv +0 -3
  37. data/occurrences/13_01_23-DJI_0036.csv +0 -3
  38. data/occurrences/13_01_23-DJI_0037.csv +0 -3
  39. data/occurrences/13_01_23-DJI_0038.csv +0 -3
  40. data/occurrences/13_01_23-DJI_0039.csv +0 -3
  41. data/occurrences/13_01_23-DJI_0040.csv +0 -3
  42. data/occurrences/13_01_23-DJI_0041.csv +0 -3
  43. data/occurrences/13_01_23-DJI_0042.csv +0 -3
  44. data/occurrences/13_01_23-DJI_0043.csv +0 -3
  45. data/occurrences/16_01_23_flight_1-DJI_0001.csv +0 -3
  46. data/occurrences/16_01_23_flight_1-DJI_0002.csv +0 -3
  47. data/occurrences/16_01_23_flight_1-DJI_0003.csv +0 -3
  48. data/occurrences/16_01_23_flight_2-DJI_0001.csv +0 -3
  49. data/occurrences/16_01_23_flight_2-DJI_0002.csv +0 -3
  50. data/occurrences/16_01_23_flight_2-DJI_0003.csv +0 -3
README.md CHANGED
@@ -6,6 +6,7 @@ pretty_name: KABR Behavior Telemetry - FAIR² Drone Wildlife Monitoring Dataset
6
 
7
  task_categories:
8
  - object-detection
 
9
  - video-classification
10
 
11
  tags:
@@ -20,7 +21,6 @@ tags:
20
  - giraffe
21
  - kenya
22
  - savanna
23
- - fair-drones
24
 
25
  size_categories:
26
  - 100K<n<1M
@@ -89,20 +89,20 @@ mission:
89
 
90
  ### Dataset Description
91
 
92
- - **Curated by:** Jenna M. Kline, Elizabeth Campolongo
93
  - **Language(s):** English (metadata and documentation)
94
  - **Homepage:** [KABR Project](https://imageomics.github.io/KABR/)
95
- - **Repository:** [kabr-behavior-telemetry](https://github.com/Imageomics/fair_drones/tree/main/examples/kabr)
96
- - **Paper:** In preparation
97
 
98
- This dataset provides frame-level integration of drone telemetry (GPS position, altitude, camera settings), animal detection bounding boxes, and expert-annotated behaviors from aerial wildlife monitoring in Kenyan savannas. Collected January 11-17, 2023 at Mpala Research Centre, the dataset contains 57 videos with complete occurrence records covering Grevy's zebras (*Equus grevyi*), plains zebras (*Equus quagga*), and reticulated giraffes (*Giraffa reticulata*).
99
 
100
  The dataset was developed to analyze optimal drone flight parameters for wildlife behavior research—correlating altitude, speed, and camera settings with data quality and animal disturbance levels. It implements Darwin Core biodiversity standards with Humboldt Eco extensions for ecological inventory data, ensuring interoperability with biodiversity databases like GBIF.
101
 
102
  Key features:
103
- - **57 complete video occurrence files** with ~10,000-66,000 frames each
104
  - **68 video-level Darwin Core events** with GPS bounds and temporal coverage
105
- - **18 session-level events** aggregating mission-level metadata
106
  - **Frame-synchronized data**: GPS coordinates, camera EXIF, detection boxes, behavior labels
107
  - **Behavior ethogram**: Walking, running, grazing, vigilance, social interactions, and more
108
  - **Multi-species coverage**: Three focal species across diverse habitats
@@ -137,12 +137,12 @@ This dataset supports computer vision, ecological analysis, and autonomous syste
137
  ```
138
  kabr-behavior-telemetry/
139
  ├── data/
140
- │ ├── occurrences/ # Frame-level occurrence records (57 videos)
141
  │ │ ├── 11_01_23-DJI_0977.csv
142
  │ │ ├── 11_01_23-DJI_0978.csv
143
  │ │ └── ...
144
  │ ├── video_events.csv # Darwin Core Event records (68 videos)
145
- │ └── session_events.csv # Darwin Core Event records (18 sessions)
146
  ├── scripts/
147
  │ ├── merge_behavior_telemetry.py # Generate occurrence files
148
  │ ├── update_video_events.py # Add annotation file paths
@@ -354,6 +354,19 @@ The dataset fills a critical gap: while many drone wildlife datasets provide det
354
  - Telemetry parsing: Custom Python scripts
355
  - Data merging: `merge_behavior_telemetry.py` (this repository)
356
 
 
 
 
 
 
 
 
 
 
 
 
 
 
357
  ### Annotations
358
 
359
  #### Annotation Process
@@ -374,8 +387,11 @@ The dataset fills a critical gap: while many drone wildlife datasets provide det
374
  - Uncertain behaviors marked for expert review
375
 
376
  **Quality Control:**
377
- - Training included intensive review of species-specific behavioral definitions with video examples, technical instruction on the CVAT interface, and practice annotation sessions until achieving greater than 90\% agreement with expert annotations
378
- - Weekly calibration sessions throughout the annotation period to address interpretation drift and maintain consistency across all annotators. These included random double-annotation of 10\% of mini-scenes to monitor inter-annotator reliability (achieving $\kappa=0.88$ for primary behavioral categories), weekly calibration sessions to address any annotation drift, and final expert review by field-experienced team members for all completed annotations.
 
 
 
379
 
380
  **Annotation Coverage:**
381
  - Fully annotated: No (not all frames have animals)
@@ -386,9 +402,9 @@ The dataset fills a critical gap: while many drone wildlife datasets provide det
386
  #### Who are the annotators?
387
 
388
  **Annotator Team:**
389
- - Number of annotators: 10, including expert reviewers
390
- - Expertise: Research staff, professors, and students in ecology/computer science with wildlife identification training
391
- - Training provided: 2 hours initial training + ongoing feedback
392
  - Compensation: Academic credit and authorship
393
 
394
  **Subject Matter Experts:**
@@ -484,7 +500,7 @@ The dataset fills a critical gap: while many drone wildlife datasets provide det
484
  **Technical Limitations:**
485
 
486
  - **Image Quality:** Variable due to altitude, lighting, and atmospheric conditions
487
- - **Coverage Gaps:** 11 videos lack occurrence data due to missing/corrupted SRT files or failed processing
488
  - **Annotation Limitations:** Behavior labels are subjective; inter-observer agreement not quantified
489
  - **GPS Accuracy:** ±5-10m typical; may drift during long flights
490
 
@@ -542,9 +558,10 @@ The dataset fills a critical gap: while many drone wildlife datasets provide det
542
 
543
  **Dataset:**
544
  ```bibtex
545
- @misc{kline2024kabr_behavior_telemetry,
546
- author = {Jenna Kline and Maksim Kholiavchenko and Michelle Ramirez and Sam Stevens and Alec Sheets and Reshma Ramesh Babu and
547
- Namrata Banerji and Elizabeth Campolongo and Matthew Thompson Nina Van Tiel and Jackson Miliko and Isla Duporge and Neil Rosser and Eduardo Bessa and Charles Stewart and Tanya Berger-Wolf and Daniel Rubenstein},
 
548
  title = {KABR Behavior Telemetry: Frame-Level Drone Wildlife Monitoring Dataset},
549
  year = {2024},
550
  publisher = {Hugging Face},
@@ -595,20 +612,6 @@ Namrata Banerji (The Ohio State University) - ORCID: 0000-0001-6813-0010
595
  Elizabeth Campolongo (Imageomics Institute, The Ohio State University) - ORCID: 0000-0003-0846-2413
596
  Matthew Thompson (Imageomics Institute, The Ohio State University) - ORCID: 0000-0003-0583-8585
597
  Nina Van Tiel (Eidgenössische Technische Hochschule Zürich) - ORCID: 0000-0001-6393-5629
598
- Daniel Rubenstein (Princeton University) - ORCID: 0000-0002-8285-1233
599
- - **Data Collection Team:**
600
- Jenna M. Kline (The Ohio State University)
601
- Michelle Ramirez (The Ohio State University)
602
- Sam Stevens (The Ohio State University)
603
- Reshma Ramesh Babu (The Ohio State University) - ORCID: 0000-0002-2517-5347
604
- Isla Duporge (The Ohio State University) - ORCID: 0000-0002-9873-1233
605
- Neil Rosser (The Ohio State University) - ORCID: 0000-0002
606
- - **Project Oversight and Guidance:**
607
- Elizabeth Campolongo (Imageomics Institute, The Ohio State University) - ORCID: 0000-0003-0846-2413
608
- Matthew Thompson (Imageomics Institute, The Ohio State University) - ORCID: 0000-0003-0583-858
609
- Tanya Berger-Wolf (Imageomics Institute, The Ohio State University) - ORCID: 0000-0002-1236-4153
610
- Charles Stewart (Rensselaer Polytechnic Institute) - ORCID: 0000-0002-5204-1862
611
- Daniel Rubenstein (Princeton University) - ORCID: 0000-0002-8285-1233
612
 
613
 
614
  **Conservation Partners:**
@@ -616,8 +619,9 @@ Daniel Rubenstein (Princeton University) - ORCID: 0000-0002-8285-1233
616
  - Grevy's Zebra Trust
617
 
618
  **Data Collection Permits:**
619
- The data was gathered at the Mpala Research Centre in Kenya, in accordance with Research License No. NACOSTI/P/22/18214.
620
- The data collection protocol adhered strictly to the guidelines set forth by the Institutional Animal Care and Use Committee under permission No. IACUC 1835F.
 
621
 
622
  ## Validation and Quality Metrics
623
 
@@ -633,7 +637,7 @@ The data collection protocol adhered strictly to the guidelines set forth by the
633
  **🌿 Darwin Core Validation:**
634
 
635
  - [x] Event records complete and valid
636
- - [x] Occurrence records complete and valid (57/68 videos)
637
  - [x] Scientific names validated against GBIF backbone
638
  - [x] Coordinates in WGS84
639
  - [x] Sampling protocol documented
@@ -641,7 +645,7 @@ The data collection protocol adhered strictly to the guidelines set forth by the
641
 
642
  **⚠️ FAIR² Compliance Checklist:**
643
 
644
- - [x] **Findable:** DOI assigned
645
  - [x] **Accessible:** Open access via GitHub/Hugging Face
646
  - [x] **Interoperable:** Darwin Core, Humboldt Eco, CSV/JSON formats
647
  - [x] **Reusable:** CC0 license, full provenance documented
@@ -670,6 +674,26 @@ detections = occurrences.dropna(subset=['xtl', 'ytl', 'xbr', 'ybr'])
670
  behavior_counts = detections.groupby('behaviour').size()
671
  ```
672
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
673
  **Processing Scripts:**
674
 
675
  See `scripts/` directory for:
@@ -694,7 +718,7 @@ See `scripts/` directory for:
694
 
695
  ## Dataset Card Authors
696
 
697
- Jenna M. Kline
698
 
699
  ## Dataset Card Contact
700
 
 
6
 
7
  task_categories:
8
  - object-detection
9
+ - object-tracking
10
  - video-classification
11
 
12
  tags:
 
21
  - giraffe
22
  - kenya
23
  - savanna
 
24
 
25
  size_categories:
26
  - 100K<n<1M
 
89
 
90
  ### Dataset Description
91
 
92
+ - **Curated by:** Jenna M. Kline, Elizabeth Campolongo, Matt Thompson, Maksim Kholiavchenko, Otto Brookes
93
  - **Language(s):** English (metadata and documentation)
94
  - **Homepage:** [KABR Project](https://imageomics.github.io/KABR/)
95
+ - **Repository:** [kabr-behavior-telemetry](https://github.com/Imageomics/kabr-behavior-telemetry)
96
+ - **Paper:** [Integrating Biological Data into Autonomous Remote Sensing Systems](https://arxiv.org/abs/2407.16864)
97
 
98
+ This dataset provides frame-level integration of drone telemetry (GPS position, altitude, camera settings), animal detection bounding boxes, and expert-annotated behaviors from aerial wildlife monitoring in Kenyan savannas. Collected January 11-17, 2023 at Mpala Research Centre, the dataset contains 47 videos with complete occurrence records covering Grevy's zebras (*Equus grevyi*), plains zebras (*Equus quagga*), and reticulated giraffes (*Giraffa reticulata*).
99
 
100
  The dataset was developed to analyze optimal drone flight parameters for wildlife behavior research—correlating altitude, speed, and camera settings with data quality and animal disturbance levels. It implements Darwin Core biodiversity standards with Humboldt Eco extensions for ecological inventory data, ensuring interoperability with biodiversity databases like GBIF.
101
 
102
  Key features:
103
+ - **47 complete video occurrence files** with ~10,000-66,000 frames each
104
  - **68 video-level Darwin Core events** with GPS bounds and temporal coverage
105
+ - **17 session-level events** aggregating mission-level metadata
106
  - **Frame-synchronized data**: GPS coordinates, camera EXIF, detection boxes, behavior labels
107
  - **Behavior ethogram**: Walking, running, grazing, vigilance, social interactions, and more
108
  - **Multi-species coverage**: Three focal species across diverse habitats
 
137
  ```
138
  kabr-behavior-telemetry/
139
  ├── data/
140
+ │ ├── occurrences/ # Frame-level occurrence records (47 videos)
141
  │ │ ├── 11_01_23-DJI_0977.csv
142
  │ │ ├── 11_01_23-DJI_0978.csv
143
  │ │ └── ...
144
  │ ├── video_events.csv # Darwin Core Event records (68 videos)
145
+ │ └── session_events.csv # Darwin Core Event records (17 sessions)
146
  ├── scripts/
147
  │ ├── merge_behavior_telemetry.py # Generate occurrence files
148
  │ ├── update_video_events.py # Add annotation file paths
 
354
  - Telemetry parsing: Custom Python scripts
355
  - Data merging: `merge_behavior_telemetry.py` (this repository)
356
 
357
+ #### Who are the source data producers?
358
+
359
+ **Field Team:**
360
+ - Jenna M. Kline (Ohio State University) - Drone operations, field coordination
361
+ - Elizabeth Campolongo (Rensselaer Polytechnic Institute) - Drone operations, data collection
362
+ - Matt Thompson (Ohio State University) - Drone operations, field support
363
+ - Local field assistants from Mpala Research Centre
364
+
365
+ **Local Collaboration:**
366
+ - Mpala Research Centre provided logistical support and site access
367
+ - Kenya Wildlife Service granted research permits
368
+ - Local communities consulted on flight operations
369
+
370
  ### Annotations
371
 
372
  #### Annotation Process
 
387
  - Uncertain behaviors marked for expert review
388
 
389
  **Quality Control:**
390
+ - Annotator training: 4 hours on example videos with expert feedback
391
+ - Inter-annotator agreement: Not formally quantified (small expert team)
392
+ - Review process: Senior ecologist (Kline) reviewed 100% of behavior labels
393
+ - Difficult cases: Discussed in team meetings, consensus labels applied
394
+ - Annotation confidence: Not explicitly scored
395
 
396
  **Annotation Coverage:**
397
  - Fully annotated: No (not all frames have animals)
 
402
  #### Who are the annotators?
403
 
404
  **Annotator Team:**
405
+ - Number of annotators: 3 primary, 2 reviewers
406
+ - Expertise: Graduate students in ecology/computer science with wildlife identification training
407
+ - Training provided: 4 hours initial training + ongoing feedback
408
  - Compensation: Academic credit and authorship
409
 
410
  **Subject Matter Experts:**
 
500
  **Technical Limitations:**
501
 
502
  - **Image Quality:** Variable due to altitude, lighting, and atmospheric conditions
503
+ - **Coverage Gaps:** 21 videos lack occurrence data due to missing/corrupted SRT files or failed processing
504
  - **Annotation Limitations:** Behavior labels are subjective; inter-observer agreement not quantified
505
  - **GPS Accuracy:** ±5-10m typical; may drift during long flights
506
 
 
558
 
559
  **Dataset:**
560
  ```bibtex
561
+ @misc{kline2024kabr_telemetry,
562
+ author = {Kline, Jenna M. and Campolongo, Elizabeth and Thompson, Matt and
563
+ Kholiavchenko, Maksim and Brookes, Otto and Berger-Wolf, Tanya and
564
+ Stewart, Charles V. and Stewart, Christopher},
565
  title = {KABR Behavior Telemetry: Frame-Level Drone Wildlife Monitoring Dataset},
566
  year = {2024},
567
  publisher = {Hugging Face},
 
612
  Elizabeth Campolongo (Imageomics Institute, The Ohio State University) - ORCID: 0000-0003-0846-2413
613
  Matthew Thompson (Imageomics Institute, The Ohio State University) - ORCID: 0000-0003-0583-8585
614
  Nina Van Tiel (Eidgenössische Technische Hochschule Zürich) - ORCID: 0000-0001-6393-5629
 
 
 
 
 
 
 
 
 
 
 
 
 
 
615
 
616
 
617
  **Conservation Partners:**
 
619
  - Grevy's Zebra Trust
620
 
621
  **Data Collection Permits:**
622
+ - Kenya Wildlife Service research permit
623
+ - Kenya Civil Aviation Authority drone operations clearance
624
+ - Nacosti research license
625
 
626
  ## Validation and Quality Metrics
627
 
 
637
  **🌿 Darwin Core Validation:**
638
 
639
  - [x] Event records complete and valid
640
+ - [x] Occurrence records complete and valid (47/68 videos)
641
  - [x] Scientific names validated against GBIF backbone
642
  - [x] Coordinates in WGS84
643
  - [x] Sampling protocol documented
 
645
 
646
  **⚠️ FAIR² Compliance Checklist:**
647
 
648
+ - [ ] **Findable:** DOI to be assigned
649
  - [x] **Accessible:** Open access via GitHub/Hugging Face
650
  - [x] **Interoperable:** Darwin Core, Humboldt Eco, CSV/JSON formats
651
  - [x] **Reusable:** CC0 license, full provenance documented
 
674
  behavior_counts = detections.groupby('behaviour').size()
675
  ```
676
 
677
+ **Visualization Example:**
678
+
679
+ ```python
680
+ import matplotlib.pyplot as plt
681
+ import geopandas as gpd
682
+ from shapely.wkt import loads
683
+
684
+ # Plot session footprints
685
+ sessions_with_gps = sessions.dropna(subset=['footprintWKT'])
686
+ geometries = [loads(wkt) for wkt in sessions_with_gps['footprintWKT']]
687
+ gdf = gpd.GeoDataFrame(sessions_with_gps, geometry=geometries, crs='EPSG:4326')
688
+
689
+ fig, ax = plt.subplots(figsize=(10, 10))
690
+ gdf.plot(ax=ax, alpha=0.5, edgecolor='black')
691
+ plt.title('Session Geographic Coverage')
692
+ plt.xlabel('Longitude')
693
+ plt.ylabel('Latitude')
694
+ plt.show()
695
+ ```
696
+
697
  **Processing Scripts:**
698
 
699
  See `scripts/` directory for:
 
718
 
719
  ## Dataset Card Authors
720
 
721
+ Jenna M. Kline, Elizabeth Campolongo, Matt Thompson
722
 
723
  ## Dataset Card Contact
724
 
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