d2l-en VS ScanRefer

Compare d2l-en vs ScanRefer and see what are their differences.

d2l-en

Interactive deep learning book with multi-framework code, math, and discussions. Adopted at 500 universities from 70 countries including Stanford, MIT, Harvard, and Cambridge. (by d2l-ai)
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d2l-en ScanRefer
6 1
21,628 204
3.1% -
8.7 0.0
about 1 month ago about 1 year ago
Python Python
GNU General Public License v3.0 or later GNU General Public License v3.0 or later
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
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d2l-en

Posts with mentions or reviews of d2l-en. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-04-10.

ScanRefer

Posts with mentions or reviews of ScanRefer. We have used some of these posts to build our list of alternatives and similar projects.

What are some alternatives?

When comparing d2l-en and ScanRefer you can also consider the following projects:

Pytorch-UNet - PyTorch implementation of the U-Net for image semantic segmentation with high quality images

3DDFA - The PyTorch improved version of TPAMI 2017 paper: Face Alignment in Full Pose Range: A 3D Total Solution.

DeepADoTS - Repository of the paper "A Systematic Evaluation of Deep Anomaly Detection Methods for Time Series".

AgML - AgML is a centralized framework for agricultural machine learning. AgML provides access to public agricultural datasets for common agricultural deep learning tasks, with standard benchmarks and pretrained models, as well the ability to generate synthetic data and annotations.

TF-Watcher - Monitor your ML jobs on mobile devices📱, especially for Google Colab / Kaggle

99-ML-Learning-Projects - A list of 99 machine learning projects for anyone interested to learn from coding and building projects

imbalanced-regression - [ICML 2021, Long Talk] Delving into Deep Imbalanced Regression

petastorm - Petastorm library enables single machine or distributed training and evaluation of deep learning models from datasets in Apache Parquet format. It supports ML frameworks such as Tensorflow, Pytorch, and PySpark and can be used from pure Python code.

einops - Flexible and powerful tensor operations for readable and reliable code (for pytorch, jax, TF and others)

learning-topology-synthetic-data - Tensorflow implementation of Learning Topology from Synthetic Data for Unsupervised Depth Completion (RAL 2021 & ICRA 2021)

ssd_keras - A Keras port of Single Shot MultiBox Detector

textgenrnn - Easily train your own text-generating neural network of any size and complexity on any text dataset with a few lines of code.