โ PrimeQA: The Prime Repository for State-of-the-Art Multilingual Question Answering Research and Development
๐ฅ Github: https://github.com/primeqa/primeqa
๐ฅ Notebooks: https://github.com/primeqa/primeqa/tree/main/notebooks
โ ๏ธ Paper: https://arxiv.org/abs/2301.09715v2
โญ๏ธ Dataset: https://paperswithcode.com/dataset/wikitablequestions
โ๏ธ Docs: https://primeqa.github.io/primeqa/installation.html
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๐ฅ Github: https://github.com/primeqa/primeqa
๐ฅ Notebooks: https://github.com/primeqa/primeqa/tree/main/notebooks
โ ๏ธ Paper: https://arxiv.org/abs/2301.09715v2
โญ๏ธ Dataset: https://paperswithcode.com/dataset/wikitablequestions
โ๏ธ Docs: https://primeqa.github.io/primeqa/installation.html
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๐ฅ Applied Deep Learning Course
๐ฅ Github: https://github.com/maziarraissi/Applied-Deep-Learning
โฉ Paper: https://arxiv.org/pdf/2301.11316.pdf
โก๏ธVideos: https://www.youtube.com/playlist?list=PLoEMreTa9CNmuxQeIKWaz7AVFd_ZeAcy4
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๐ฅ Github: https://github.com/maziarraissi/Applied-Deep-Learning
โฉ Paper: https://arxiv.org/pdf/2301.11316.pdf
โก๏ธVideos: https://www.youtube.com/playlist?list=PLoEMreTa9CNmuxQeIKWaz7AVFd_ZeAcy4
@Machine_learn
2301.11696.pdf
871.9 KB
SLCNN: Sentence-Level Convolutional Neural Network for Text Classification
Ali Jarrahi, Leila Safari , Ramin Mousa
abstract: Text classification is a fundamental task in natural language processing (NLP). Several recent studies show the success of deep learning on text processing. Convolutional neural network (CNN), as a popular deep learning model, has shown remarkable success in the task of text classification. In this paper, new baseline models have been studied for text classification using CNN. In these models, documents are fed to the network as a three-dimensional tensor representation to provide sentence-level analysis. Applying such a method enables the models to take advantage of the positional information of the sentences in the text. Besides, analysing adjacent sentences allows extracting additional features. The proposed models have been compared with the state-of-the-art models using several datasets.
Author: @Raminmousa
@Machine_learn
Ali Jarrahi, Leila Safari , Ramin Mousa
abstract: Text classification is a fundamental task in natural language processing (NLP). Several recent studies show the success of deep learning on text processing. Convolutional neural network (CNN), as a popular deep learning model, has shown remarkable success in the task of text classification. In this paper, new baseline models have been studied for text classification using CNN. In these models, documents are fed to the network as a three-dimensional tensor representation to provide sentence-level analysis. Applying such a method enables the models to take advantage of the positional information of the sentences in the text. Besides, analysing adjacent sentences allows extracting additional features. The proposed models have been compared with the state-of-the-art models using several datasets.
Author: @Raminmousa
@Machine_learn
ุฅููููุง ููููููฐูู ููุฅููููุง ุฅููููููู ุฑูุงุฌูุนูููู
๐ค
@Machine_learn
๐ค
@Machine_learn
STEPS: Joint Self-supervised Nighttime Image Enhancement and Depth Estimation (ICRA 2023)
๐ฅ Github: https://github.com/ucaszyp/steps
โฉ Paper: https://arxiv.org/abs/2302.01334v1
โก๏ธ Dataset: https://paperswithcode.com/dataset/nuscenes
@Machine_learn
๐ฅ Github: https://github.com/ucaszyp/steps
โฉ Paper: https://arxiv.org/abs/2302.01334v1
โก๏ธ Dataset: https://paperswithcode.com/dataset/nuscenes
@Machine_learn
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๐ Audio-Visual Segmentation (AVS)
๐ฅ Github: https://github.com/OpenNLPLab/AVSBench
โ ๏ธ Paper: https://arxiv.org/pdf/2301.13190.pdf
โญ๏ธ Project: https://opennlplab.github.io/AVSBench/
โ ๏ธ Dataset: http://www.avlbench.opennlplab.cn/download
๐น Benchmark: http://www.avlbench.opennlplab.cn/
@Machine_learn
๐ฅ Github: https://github.com/OpenNLPLab/AVSBench
โ ๏ธ Paper: https://arxiv.org/pdf/2301.13190.pdf
โญ๏ธ Project: https://opennlplab.github.io/AVSBench/
โ ๏ธ Dataset: http://www.avlbench.opennlplab.cn/download
๐น Benchmark: http://www.avlbench.opennlplab.cn/
@Machine_learn
OReilly.Fundamentals.of.Deep.Learning.pdf
15.9 MB
Fundamentals of Deep Learning
Designing Next-Generation Machine Intelligence Algorithms
#Book #DL
@Machine_learn
Designing Next-Generation Machine Intelligence Algorithms
#Book #DL
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๐ Slapo: A Schedule Language for Large Model Training
Slapo is a schedule language for progressive optimization of large deep learning model training.
๐ฅ Github: https://github.com/awslabs/slapo
โญ๏ธPaper: https://arxiv.org/abs/2302.08005v1
๐ป Docs: https://awslabs.github.io/slapo/
@Machine_learn
Slapo is a schedule language for progressive optimization of large deep learning model training.
pip3 install slapo
๐ฅ Github: https://github.com/awslabs/slapo
โญ๏ธPaper: https://arxiv.org/abs/2302.08005v1
๐ป Docs: https://awslabs.github.io/slapo/
@Machine_learn
Core.ML.Survival.Guide.pdf
6.9 MB
Core ML Survival Guide: More than you ever wanted to know about mlmodel files and the Core ML and Vision APIs (2020)
#Book #ML
@Machine_leaen
#Book #ML
@Machine_leaen
Deploying TensorFlow Vision Models in Hugging Face with TF Serving
https://huggingface.co/blog/tf-serving-vision
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https://huggingface.co/blog/tf-serving-vision
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๐ก Learning Visual Representations via Language-Guided Sampling
New approach deviates from image-text contrastive learning by relying on pre-trained language models to guide the learning rather than minimize a cross-modal similarity.
๐ฅ Github: https://github.com/mbanani/lgssl
โญ๏ธPaper: https://arxiv.org/abs/2302.12248v1
โฉPre-trained Checkpoints: https://www.dropbox.com/sh/me6nyiewlux1yh8/AAAPrD2G0_q_ZwExsVOS_jHQa?dl=0
๐ป Dataset : https://paperswithcode.com/dataset/redcaps
@Machine_learn
New approach deviates from image-text contrastive learning by relying on pre-trained language models to guide the learning rather than minimize a cross-modal similarity.
๐ฅ Github: https://github.com/mbanani/lgssl
โญ๏ธPaper: https://arxiv.org/abs/2302.12248v1
โฉPre-trained Checkpoints: https://www.dropbox.com/sh/me6nyiewlux1yh8/AAAPrD2G0_q_ZwExsVOS_jHQa?dl=0
๐ป Dataset : https://paperswithcode.com/dataset/redcaps
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๐ฅ pyribs: A Bare-Bones Python Library for Quality Diversity Optimization
A bare-bones Python library for quality diversity optimization.
๐ฅ Github: https://github.com/icaros-usc/pyribs
โฉ Paper: https://arxiv.org/abs/2303.00191v1
โญ๏ธ Dataset: https://paperswithcode.com/dataset/quality-diversity-benchmark-suite
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A bare-bones Python library for quality diversity optimization.
๐ฅ Github: https://github.com/icaros-usc/pyribs
โฉ Paper: https://arxiv.org/abs/2303.00191v1
โญ๏ธ Dataset: https://paperswithcode.com/dataset/quality-diversity-benchmark-suite
@Machine_learn