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id
uint32
0
10.6k
right_eye
large listlengths
2
2
right_earbase
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2
2
right_earend
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2
right_antler_base
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2
2
right_antler_end
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2
2
left_antler_base
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2
2
left_antler_end
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2
2
left_earbase
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2
2
left_earend
large listlengths
2
2
left_eye
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2
2
nose
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2
2
upper_jaw
large listlengths
2
2
lower_jaw
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2
2
mouth_end_right
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2
2
throat_base
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2
2
neck_base
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2
2
neck_end
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2
2
back_base
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2
2
back_middle
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2
2
back_end
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2
2
tail_base
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2
2
body_middle_right
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2
2
bbox
large listlengths
4
4
mouth_end_left
large listlengths
2
2
throat_end
large listlengths
2
2
tail_end
large listlengths
2
2
front_left_thai
large listlengths
2
2
front_left_knee
large listlengths
2
2
front_left_paw
large listlengths
2
2
front_right_thai
large listlengths
2
2
front_right_paw
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2
2
front_right_knee
large listlengths
2
2
back_left_knee
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2
2
back_left_paw
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2
2
back_left_thai
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2
2
back_right_thai
large listlengths
2
2
back_right_paw
large listlengths
2
2
back_right_knee
large listlengths
2
2
belly_bottom
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2
2
body_middle_left
large listlengths
2
2
name_file
large_stringlengths
8
21
name_class
large_stringclasses
34 values
image_base64s
large_stringlengths
8.44k
684k
image_width
int64
150
1.92k
image_height
int64
138
1.92k
image_license
large_stringlengths
295
13.1k
7,279
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[ 136.12334801762114, 61.731277533039645, 499, 332 ]
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polar+bear_10166
polar+bear
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+--------------------------------------+ | Flickr Photo Metadata | | Created by Bulkr on Apr 22, 2016 | | http://clipyourphotos.com/bulkr | +--------------------------------------+ +--------+ | INFO | +--------+ Photographer : jeffedoe Photo URL : https://www.flickr.com/photos/jeffedoe/1468266423/ License : Creative Commons (http://creativecommons.org/licenses) Taken Date : Mon Oct 1 06:13:30 GMT+0200 2007 Upload Date : Mon Oct 1 19:06:23 GMT+0200 2007 Views : 39 Comments : 0 +---------+ | TITLE | +---------+ DSC_0146.JPG +---------------+ | DESCRIPTION | +---------------+ (no description) +--------+ | TAGS | +--------+ singapore zoo
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End of preview. Expand in Data Studio

Dataset Summary

AwA Pose, a quadrupedal keypoint detection dataset that offers richer annotations and greater species diversity than existing datasets. The data supports efficiency, advances in research on generalized keypoint detection in animals.

The dataset was explored, filtered, and stored in a pyarrow type. See : AwA2_dataset_analysis

Original Kaggle dataset: AwA2_dataset

The original data comes from two sources and is described in:

The dataset contains:

  • Lite version of keypoints dataset
  • Full version of keypoints dataset

All version contains:

  • train dataset: 90%
  • validation dataset: 5%
  • test dataset: 5%

Description of data in the dataset

Class names:

  • antelope
  • bobcat
  • buffalo
  • chihuahua
  • collie
  • cow
  • dalmatian
  • deer
  • elephant
  • fox
  • german+shepherd
  • giant+panda
  • giraffe
  • grizzly+bear
  • hippopotamus
  • horse
  • leopard
  • lion
  • moose
  • otter
  • ox
  • persian+cat
  • pig
  • polar+bear
  • rabbit
  • raccoon
  • rhinoceros
  • sheep
  • siamese+cat
  • squirrel
  • tiger
  • weasel
  • wolf
  • zebra

Columns description

name column description of column
id id number of records
right_eye keypoint values [x,y]
right_earbase keypoint values [x,y]
right_earend keypoint values [x,y]
right_antler_base keypoint values [x,y]
right_antler_end keypoint values [x,y]
left_antler_base keypoint values [x,y]
left_antler_end keypoint values [x,y]
left_earbase keypoint values [x,y]
left_earend keypoint values [x,y]
left_eye keypoint values [x,y]
nose keypoint values [x,y]
upper_jaw keypoint values [x,y]
lower_jaw keypoint values [x,y]
mouth_end_right keypoint values [x,y]
throat_base keypoint values [x,y]
neck_base keypoint values [x,y]
neck_end keypoint values [x,y]
back_base keypoint values [x,y]
back_middle keypoint values [x,y]
back_end keypoint values [x,y]
tail_base keypoint values [x,y]
body_middle_right keypoint values [x,y]
bbox bounding box dimension [x1, y1, x2, y2]
mouth_end_left keypoint values [x,y]
throat_end keypoint values [x,y]
tail_end keypoint values [x,y]
front_left_thai keypoint values [x,y]
front_left_knee keypoint values [x,y]
front_left_paw keypoint values [x,y]
front_right_thai keypoint values [x,y]
front_right_paw keypoint values [x,y]
front_right_knee keypoint values [x,y]
back_left_knee keypoint values [x,y]
back_left_paw keypoint values [x,y]
back_left_thai keypoint values [x,y]
back_right_thai keypoint values [x,y]
back_right_paw keypoint values [x,y]
back_right_knee keypoint values [x,y]
belly_bottom keypoint values [x,y]
body_middle_left keypoint values [x,y]
name_file name of file as string
name_class name of class as string
image_base64s image as string Base64
image_width value of with of image
image_height value of height of image
image_license text of licence of image

Notes on data

If a keypoints contains [-1.0, -1.0], it means that the point is not visible in the image. These points must be masked when training the model.

Images are stored as a Base64 string. They can be transformed using the function:

import base64
import io
from PIL import Image

def base64_to_img(base64_str):
    img_bytes = base64.b64decode(base64_str)
    img_buffer = io.BytesIO(img_bytes)
    img = Image.open(img_buffer)
    
    return img

Find out more in AwA2_dataset_analysis

Licensing Information

Data for keypoints is licensed according to GitHub: prinik/AwA-Pose, this license is MIT.

The license for the images is according to Animals with Attributes 2, see data column image_license .

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