Unverified Commit b2d4d8a2 authored by Vasilis Vryniotis's avatar Vasilis Vryniotis Committed by GitHub
Browse files

Fixing SSD and SSDlite docs (#3896)

parent 3f556e20
......@@ -388,6 +388,7 @@ architectures for detection:
- `Mask R-CNN <https://arxiv.org/abs/1703.06870>`_
- `RetinaNet <https://arxiv.org/abs/1708.02002>`_
- `SSD <https://arxiv.org/abs/1512.02325>`_
- `SSDlite <https://arxiv.org/abs/1801.04381>`_
The pre-trained models for detection, instance segmentation and
keypoint detection are initialized with the classification models
......@@ -475,9 +476,9 @@ Runtime characteristics
The implementations of the models for object detection, instance segmentation
and keypoint detection are efficient.
In the following table, we use 8 V100 GPUs, with CUDA 10.0 and CUDNN 7.4 to
report the results. During training, we use a batch size of 2 per GPU, and
during testing a batch size of 1 is used.
In the following table, we use 8 GPUs to report the results. During training,
we use a batch size of 2 per GPU for all models except SSD which uses 4
and SSDlite which uses 24. During testing a batch size of 1 is used.
For test time, we report the time for the model evaluation and postprocessing
(including mask pasting in image), but not the time for computing the
......
......@@ -10,7 +10,6 @@ visualizing images, bounding boxes, and segmentation masks.
import torch
import numpy as np
import scipy.misc
import matplotlib.pyplot as plt
import torchvision.transforms.functional as F
......@@ -68,7 +67,9 @@ show(result)
# models. Here is demo with a Faster R-CNN model loaded from
# :func:`~torchvision.models.detection.fasterrcnn_resnet50_fpn`
# model. You can also try using a RetinaNet with
# :func:`~torchvision.models.detection.retinanet_resnet50_fpn`. For more details
# :func:`~torchvision.models.detection.retinanet_resnet50_fpn`, an SSDlite with
# :func:`~torchvision.models.detection.ssdlite320_mobilenet_v3_large` or an SSD with
# :func:`~torchvision.models.detection.ssd300_vgg16`. For more details
# on the output of such models, you may refer to :ref:`instance_seg_output`.
from torchvision.models.detection import fasterrcnn_resnet50_fpn
......
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