chore(deps): update dependency torchvision to v0.19.0 #301
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This PR contains the following updates:
==0.18.1
->==0.19.0
Release Notes
pytorch/vision (torchvision)
v0.19.0
: Torchvision 0.19 releaseCompare Source
Highlights
Encoding / Decoding images
Torchvision is extending its encoding/decoding capabilities. For this version, we added a GIF decoder which is available as
torchvision.io.decode_gif(raw_tensor)
,torchvision.io.decode_image(raw_tensor)
, andtorchvision.io.read_image(path_to_image)
.We also added support for jpeg GPU encoding in
torchvision.io.encode_jpeg()
. This is 10X faster than the existing CPU jpeg encoder.Read more on the docs!
Stay tuned for more improvements coming in the next versions. We plan to improve jpeg GPU decoding, and add more image decoders (webp in particular).
Resizing according to the longest edge of an image
It is now possible to resize images by setting
torchvision.transforms.v2.Resize(max_size=N)
: this will resize the longest edge of the image exactly tomax_size
, making sure the image dimension don't exceed this value. Read more on the docs!Detailed changes
Bug Fixes
[datasets]
SBDataset
: Only download noval file when image_set='train_noval' (#8475)[datasets] Update the download url in class
EMNIST
(#8350)[io] Fix compilation error when there is no
libjpeg
(#8342)[reference scripts] Fix use of
cutmix_alpha
in classification training references (#8448)[utils] Allow
K=1
indraw_keypoints
(#8439)New Features
[io] Add decoder for GIF images (
decode_gif()
,decode_image()
,read_image()
) (#8406, #8419)[transforms] Add
GaussianNoise
transform (#8381)Improvements
[transforms] Allow v2
Resize
to resize longer edge exactly tomax_size
(#8459)[transforms] Add
min_area
parameter toSanitizeBoundingBox
(#7735)[transforms] Make
adjust_hue()
work withnumpy 2.0
(#8463)[transforms] Enable one-hot-encoded labels in
MixUp
andCutMix
(#8427)[transforms] Create kernel on-device for
transforms.functional.gaussian_blur
(#8426)[io] Adding GPU acceleration to
encode_jpeg
(10X faster than CPU encoder) (#8391)[io]
read_video
: acceptBytesIO
objects onpyav
backend (#8442)[io] Add compatibility with FFMPEG 7.0 (#8408)
[datasets] Add extra to install
gdown
(#8430)[datasets] Support encoded
RLE
format in forCOCO
segmentations (#8387)[datasets] Added binary cat vs dog classification target type to Oxford pet dataset (#8388)
[datasets] Return labels for
FER2013
if possible (#8452)[ops] Force use of
torch.compile
on deterministicroi_align
implementation (#8436)[utils] add float support to
utils.draw_bounding_boxes()
(#8328)[feature_extraction] Add concrete_args to feature extraction tracing. (#8393)
[Docs] Various documentation improvements (#8429, #8467, #8469, #8332, #8262, #8341, #8392, #8386, #8385, #8411).
[Tests] Various testing improvements (#8454, #8418, #8480, #8455)
[Code quality] Various code quality improvements (#8404, #8402, #8345, #8335, #8481, #8334, #8384, #8451, #8470, #8413, #8414, #8416, #8412)
Contributors
We're grateful for our community, which helps us improve torchvision by submitting issues and PRs, and providing feedback and suggestions. The following persons have contributed patches for this release:
Adam J. Stewart ahmadsharif1, AJS Payne, Andrew Lingg, Andrey Talman, Anner, Antoine Broyelle, cdzhan, deekay42, drhead, Edward Z. Yang, Emin Orhan, Fangjun Kuang, G, haarisr, Huy Do, Jack Newsom, JavaZero, Mahdi Lamb, Mantas, Nicolas Hug, Nicolas Hug , nihui, Richard Barnes , Richard Zou, Richie Bendall, Robert-André Mauchin, Ross Wightman, Siddarth Ijju, vfdev
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