The official implementation of NeMo: Neural Mesh Models of Contrastive Features for Robust 3D Pose Estimation [ICLR-2021]. https://arxiv.org/pdf/2101.12378.pdf

Overview

NeMo: Neural Mesh Models of Contrastive Features for Robust 3D Pose Estimation [ICLR-2021]

Release Notes

The offical PyTorch implementation of NeMo, published on ICLR 2021. NeMo achieves robust 3D pose estimation method by performing render-and-compare on the level of neural network features. Example figure The figure shows a dynamic example of the pose optimization process of NeMo. Top-left: the input image; Top-right: A mesh superimposed on the input image in the predicted 3D pose. Bottom-left: The occluder location as predicted by NeMo, where yellow is background, green is the non-occluded area and red is the occluded area of the object. Bottom-right: The loss landscape as a function of each camera parameter respectively. The colored vertical lines demonstrate the current prediction and the ground-truth parameter is at center of x-axis.

Installation

The code is tested with python 3.7, PyTorch 1.5 and PyTorch3D 0.2.0.

Clone the project and install requirements

git clone https://github.com/Angtian/NeMo.git
cd NeMo
pip install -r requirements.txt

Running NeMo

We provide the scripts to train NeMo and to perform inference with NeMo on Pascal3D+ and the Occluded Pascal3D+ datasets. For more details about the OccludedPascal3D+ please refer to this Github repo: OccludedPASCAL3D.

Step 1: Prepare Datasets
Set ENABLE_OCCLUDED to "true" if you need evaluate NeMo under partial occlusions. You can change the path to the datasets in the file PrepareData.sh, after downloading the data. Otherwise this script will automatically download datasets.
Then run the following commands:

chmod +x PrepareData.sh
./PrepareData.sh

Step 2: Training NeMo
Modify the settings in TrainNeMo.sh.
GPUS: set avaliable GPUs for training depending on your machine. The standard setting uses 7 gpus (6 for the backbone, 1 for the feature bank). If you have only 4 GPUs available, we suggest to turn off the "--sperate_bank" in training stage.
MESH_DIMENSIONS: "single" or "multi".
TOTAL_EPOCHS: The default setting is 800 epochs, which takes 3 to 4 days to train on an 8 GPUs machine. However, 400 training epochs could already yield good accuracy. The final performance for the raw Pascal3D+ over train epochs (SingleCuboid):

Training Epochs 200 400 600 800
Acc Pi / 6 82.4 84.4 84.8 85.5
Acc Pi / 18 57.1 59.2 59.6 60.2

Then, run these commands:

chmod +x TrainNeMo.sh
./TrainNeMo.sh

Step 2 (Alternative): Download Pretrained Model
Here we provide the pretrained NeMo Model and backbone for the "SingleCuboid" setting. Run the following commands to download the pretrained model:

wget --load-cookies /tmp/cookies.txt "https://docs.google.com/uc?export=download&confirm=$(wget --quiet --save-cookies /tmp/cookies.txt --keep-session-cookies --no-check-certificate 'https://docs.google.com/uc?export=download&id=1X1NCx22TFGJs108TqDgaPqrrKlExZGP-' -O- | sed -rn 's/.*confirm=([0-9A-Za-z_]+).*/\1\n/p')&id=1X1NCx22TFGJs108TqDgaPqrrKlExZGP-" -O NeMo_Single_799.zip
unzip NeMo_Single_799.zip

Step 3: Inference with NeMo
The inference stage includes feature extraction and pose optimization. The pose optimization conducts render-and-compare on the neural features w.r.t. the camera pose iteratively. This takes some time to run on the full dataset (3-4 hours for each occlusion level on a 8 GPU machine).
To run the inference, you need to first change the settings in InferenceNeMo.sh:
MESH_DIMENSIONS: Set to be same as the training stage.
GPUS: Our implemention could either utilize 4 or 8 GPUs for the pose optimization. We will automatically distribute workloads over available GPUs and run the optimization in parallel.
LOAD_FILE_NAME: Change this setting if you do not train 800 epochs, e.g. train NeMo for 400 -> "saved_model_%s_399.pth".

Then, run these commands to conduct NeMo inference on unoccluded Pascal3D+:

chmod +x InferenceNeMo.sh
./InferenceNeMo.sh

To conduct inference on the occluded-Pascal3D+ (Note you need enable to create OccludedPascal3D+ dataset during data preparation):

./InferenceNeMo.sh FGL1_BGL1
./InferenceNeMo.sh FGL2_BGL2
./InferenceNeMo.sh FGL3_BGL3

Citation

Please cite the following paper if you find this the code useful for your research/projects.

@inproceedings{wang2020NeMo,
title = {NeMo: Neural Mesh Models of Contrastive Features for Robust 3D Pose Estimation},
author = {Angtian, Wang and Kortylewski, Adam and Yuille, Alan},
booktitle = {Proceedings International Conference on Learning Representations (ICLR)},
year = {2021},
}
Owner
Angtian Wang
PhD student at Johns Hopkins University, my main focus includes Computer Vision and Deep Learning.
Angtian Wang
OcclusionFusion: realtime dynamic 3D reconstruction based on single-view RGB-D

OcclusionFusion (CVPR'2022) Project Page | Paper | Video Overview This repository contains the code for the CVPR 2022 paper OcclusionFusion, where we

Wenbin Lin 193 Dec 15, 2022
2 Jul 19, 2022
Official PyTorch implementation of "Edge Rewiring Goes Neural: Boosting Network Resilience via Policy Gradient".

Edge Rewiring Goes Neural: Boosting Network Resilience via Policy Gradient This repository is the official PyTorch implementation of "Edge Rewiring Go

Shanchao Yang 4 Dec 12, 2022
A library for answering questions using data you cannot see

A library for computing on data you do not own and cannot see PySyft is a Python library for secure and private Deep Learning. PySyft decouples privat

OpenMined 8.5k Jan 02, 2023
This is an official implementation for "SimMIM: A Simple Framework for Masked Image Modeling".

Project This repo has been populated by an initial template to help get you started. Please make sure to update the content to build a great experienc

Microsoft 674 Dec 26, 2022
The source code and dataset for the RecGURU paper (WSDM 2022)

RecGURU About The Project Source code and baselines for the RecGURU paper "RecGURU: Adversarial Learning of Generalized User Representations for Cross

Chenglin Li 17 Jan 07, 2023
Message Passing on Cell Complexes

CW Networks This repository contains the code used for the papers Weisfeiler and Lehman Go Cellular: CW Networks (Under review) and Weisfeiler and Leh

Twitter Research 108 Jan 05, 2023
Self-supervised spatio-spectro-temporal represenation learning for EEG analysis

EEG-Oriented Self-Supervised Learning and Cluster-Aware Adaptation This repository provides a tensorflow implementation of a submitted paper: EEG-Orie

Wonjun Ko 4 Jun 09, 2022
πŸ… The Most Comprehensive List of Kaggle Solutions and Ideas πŸ…

πŸ… Collection of Kaggle Solutions and Ideas πŸ…

Farid Rashidi 2.3k Jan 08, 2023
DeepOBS: A Deep Learning Optimizer Benchmark Suite

DeepOBS - A Deep Learning Optimizer Benchmark Suite DeepOBS is a benchmarking suite that drastically simplifies, automates and improves the evaluation

Aaron Bahde 7 May 12, 2020
Repository for XLM-T, a framework for evaluating multilingual language models on Twitter data

This is the XLM-T repository, which includes data, code and pre-trained multilingual language models for Twitter. XLM-T - A Multilingual Language Mode

Cardiff NLP 112 Dec 27, 2022
Customer-Transaction-Analysis - This analysis is based on a synthesised transaction dataset containing 3 months worth of transactions for 100 hypothetical customers.

Customer-Transaction-Analysis - This analysis is based on a synthesised transaction dataset containing 3 months worth of transactions for 100 hypothetical customers. It contains purchases, recurring

Ayodeji Yekeen 1 Jan 01, 2022
Official implementation of EfficientPose

EfficientPose This is the official implementation of EfficientPose. We based our work on the Keras EfficientDet implementation xuannianz/EfficientDet

2 May 17, 2022
PyTorch implementation for our AAAI 2022 Paper "Graph-wise Common Latent Factor Extraction for Unsupervised Graph Representation Learning"

deepGCFX PyTorch implementation for our AAAI 2022 Paper "Graph-wise Common Latent Factor Extraction for Unsupervised Graph Representation Learning" Pr

Thilini Cooray 4 Aug 11, 2022
repro_eval is a collection of measures to evaluate the reproducibility/replicability of system-oriented IR experiments

repro_eval repro_eval is a collection of measures to evaluate the reproducibility/replicability of system-oriented IR experiments. The measures were d

IR Group at Technische Hochschule KΓΆln 9 May 25, 2022
Semi-supervised Implicit Scene Completion from Sparse LiDAR

Semi-supervised Implicit Scene Completion from Sparse LiDAR Paper Created by Pengfei Li, Yongliang Shi, Tianyu Liu, Hao Zhao, Guyue Zhou and YA-QIN ZH

114 Nov 30, 2022
Experiments with Fourier layers on simulation data.

Factorized Fourier Neural Operators This repository contains the code to reproduce the results in our NeurIPS 2021 ML4PS workshop paper, Factorized Fo

Alasdair Tran 57 Dec 25, 2022
The coda and data for "Measuring Fine-Grained Domain Relevance of Terms: A Hierarchical Core-Fringe Approach" (ACL '21)

We propose a hierarchical core-fringe learning framework to measure fine-grained domain relevance of terms – the degree that a term is relevant to a broad (e.g., computer science) or narrow (e.g., de

Jie Huang 14 Oct 21, 2022
MiniHack the Planet: A Sandbox for Open-Ended Reinforcement Learning Research

MiniHack the Planet: A Sandbox for Open-Ended Reinforcement Learning Research

Facebook Research 338 Dec 29, 2022
Distributed Asynchronous Hyperparameter Optimization better than HyperOpt.

UltraOpt : Distributed Asynchronous Hyperparameter Optimization better than HyperOpt. UltraOpt is a simple and efficient library to minimize expensive

98 Aug 16, 2022