MSCOCO

E899057

MSCOCO is a large-scale benchmark dataset of everyday images with rich object annotations and human-written captions, widely used for training and evaluating computer vision and image captioning models.

All labels observed (2)

Label Occurrences
MSCOCO canonical 2
MS COCO dataset 1

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Statements (51)

Predicate Object
instanceOf benchmark dataset
computer vision dataset
image captioning dataset
image dataset
abbreviation COCO
developedBy Microsoft
Microsoft Research
domain computer vision
evaluationMetric BLEU
CIDEr
METEOR
ROUGE-L
SPICE
mAP@[.5:.95]
mean Average Precision
fullName Microsoft Common Objects in Context
hasAnnotationType human-written captions
image-level labels
keypoints
object bounding boxes
object categories
object segmentation masks
hasModality natural images
hasProperty context-rich images
everyday scenes
large-scale
multiple objects per image
rich annotations
hasSplit test set
training set
validation set
hasTask COCO Captioning Challenge
COCO Detection Challenge
COCO Keypoints Challenge
COCO Segmentation Challenge
isWidelyUsedIn academic research
benchmarking vision models
license non-commercial research license
releasedBy Microsoft COCO Consortium
usedFor deep learning research
human pose estimation
image captioning
instance segmentation
keypoint detection
model evaluation
object detection
object recognition
semantic segmentation
supervised learning
visual question answering
website https://cocodataset.org

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Referenced by (3)

Full triples — surface form annotated when it differs from this entity's canonical label.

CIDEr evaluatedOn MS COCO dataset
linked to: MSCOCO