Heedless Backbones

ConvNeXt Family

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Results
Parameters (M)
Images / Second
Publication Date
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Object Detection
Instance Segmentation
Classification
Semantic Segmentation
Panoptic Segmentation
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COCO (val)
COCO (test)
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mAP
AP50
AP75
mAPs
mAPm
mAPl
GFLOPs
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Mask R-CNN
Cascade Mask R-CNN
RetinaNet
DINO
HTC++
HTC
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Results
Parameters (M)
Images / Second
GFLOPs
Publication Date
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JFT-3B
ImageNet-1k
ImageNet-22k
JFT-300M
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Supervised
FCMAE
MAE
CL
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Family
Pretrain Dataset
Pretrain Method
Instance Head
Instance Training Epochs
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Family
Pretrain Method
Instance Head
Instance Training Epochs
modelparams (m)pretrainheadtrainGFLOPsmAP
ConvNeXt-L198.0IN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 361354.054.8
ConvNeXt-B89.0IN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36964.052.7
ConvNeXt-B89.0IN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 36964.054.0
ConvNeXt-S50.0IN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36827.051.9
ConvNeXt-T29.0IN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36741.050.4
ConvNeXt-T29.0IN-1k : Sup. : 300Mask R-CNNCOCO (train) : 36262.046.2
ConvNeXt-XL350.0IN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 361898.055.2
modelparams (m)pretrainfinetunegflopsIN-1kIN-V2IN-SketchIN-C↓IN-AIN-C-bar↓IN-R
ConvNeXt-L198.0IN-1k : Sup. : 300— : — : —34.484.3/—74.0/——/——/——/——/——/—
ConvNeXt-L198.0IN-1k : Sup. : 300IN-1k : 30 : 384101.085.5/—75.3/——/——/——/——/——/—
ConvNeXt-L198.0IN-22k : Sup. : 90IN-1k : 30 : 22434.486.6/—76.6/——/——/——/——/——/—
ConvNeXt-L198.0IN-22k : Sup. : 90IN-1k : 30 : 384101.087.5/—77.7/—52.8/—40.2/—65.5/—29.9/—66.7/—
ConvNeXt-B89.0IN-1k : Sup. : 300— : — : —15.483.8/—73.4/—38.2/—46.8/—36.7/—34.4/—51.3/—
ConvNeXt-B89.0IN-1k : Sup. : 300IN-1k : 30 : 38445.085.1/—74.7/——/——/——/——/——/—
ConvNeXt-B89.0IN-22k : Sup. : 90IN-1k : 30 : 22415.485.8/—75.6/——/——/——/——/——/—
ConvNeXt-B89.0IN-22k : Sup. : 90IN-1k : 30 : 38445.186.8/—76.6/—51.6/—43.1/—62.3/—30.7/—64.9/—
ConvNeXt-S50.0IN-1k : Sup. : 300— : — : —8.783.1/——/——/——/——/——/——/—
ConvNeXt-S50.0IN-22k : Sup. : 90IN-1k : 30 : 2248.784.6/——/——/——/——/——/——/—
ConvNeXt-S50.0IN-22k : Sup. : 90IN-1k : 30 : 38425.585.8/——/——/——/——/——/——/—
ConvNeXt-T29.0IN-1k : Sup. : 300— : — : —4.582.1/——/—33.8/—53.2/—24.2/—40.0/—47.2/—
ConvNeXt-T29.0IN-22k : Sup. : 90IN-1k : 30 : 2244.582.9/——/——/——/——/——/——/—
ConvNeXt-T29.0IN-22k : Sup. : 90IN-1k : 30 : 38413.184.1/——/——/——/——/——/——/—
ConvNeXt-XL350.0IN-22k : Sup. : 90IN-1k : 30 : 22460.987.0/—77.0/——/——/——/——/——/—
ConvNeXt-XL350.0IN-22k : Sup. : 90IN-1k : 30 : 384179.087.8/—77.7/—55.0/—38.8/—69.3/—27.1/—68.2/—

COCO (val)

modelpretrainheadtraingflopsmAPbAPb50APb75mAPbsmAPbmmAPbl
ConvNeXt-LIN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 361354.054.873.859.8
ConvNeXt-BIN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36964.052.771.357.2
ConvNeXt-BIN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 36964.054.073.158.8
ConvNeXt-SIN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36827.051.970.856.5
ConvNeXt-TIN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36741.050.469.154.8
ConvNeXt-TIN-1k : Sup. : 300Mask R-CNNCOCO (train) : 36262.046.267.950.8
ConvNeXt-XLIN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 361898.055.274.259.9

COCO (val)

modelpretrainheadtraingflopsmAPmAPm50APm75mAPmsmAPmmmAPml
ConvNeXt-LIN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 361354.047.671.351.7
ConvNeXt-BIN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36964.045.668.949.5
ConvNeXt-BIN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 36964.046.970.651.3
ConvNeXt-SIN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36827.045.068.449.1
ConvNeXt-TIN-1k : Sup. : 300Cascade Mask R-CNNCOCO (train) : 36741.043.766.547.3
ConvNeXt-TIN-1k : Sup. : 300Mask R-CNNCOCO (train) : 36262.041.765.044.9
ConvNeXt-XLIN-22k : Sup. : 90Cascade Mask R-CNNCOCO (train) : 361898.047.771.652.2

ADE20K (val)

modelpretrainheadtraingflopsmIoUmspAccmsmAccmsmIoUsspAccssmAccss
ConvNeXt-LIN-22k : Sup. : 90UPerNetADE20K (train) : 128 : 6402458.053.753.2
ConvNeXt-BIN-1k : Sup. : 300UPerNetADE20K (train) : 128 : 5121170.049.949.1
ConvNeXt-BIN-22k : Sup. : 90UPerNetADE20K (train) : 128 : 6401828.053.152.6
ConvNeXt-SIN-1k : Sup. : 300UPerNetADE20K (train) : 128 : 5121027.049.648.7
ConvNeXt-TIN-1k : Sup. : 300UPerNetADE20K (train) : 128 : 512939.046.746.0
ConvNeXt-XLIN-22k : Sup. : 90UPerNetADE20K (train) : 128 : 6403335.054.053.6