Official implementation of NeurIPS 2021 paper "Contextual Similarity Aggregation with Self-attention for Visual Re-ranking"

Related tags

Deep LearningCSA
Overview

CSA: Contextual Similarity Aggregation with Self-attention for Visual Re-ranking

PyTorch training code for CSA (Contextual Similarity Aggregation). We propose a visual re-ranking method by contextual similarity aggregation with transformer, obtaining 80.3 mAP on ROxf with Medium evaluation protocols. Inference in 50 lines of PyTorch.

CSA

What it is. Unlike traditional visual reranking techniques, CSA uses the similarity between the image and the anchor image as a representation of the image, which is defined as affinity feature. It consists of a contrastive loss that forces the relevant images to have larger cosine similarity and vice versa, an MSE loss that preserves the information of the original affinity features, and a Transformer encoder architecture. Given ranking list returned by the first-round retrieval, CSA first choose the top-L images in ranking list as the anchor images and calculates the affinity features of the top-K candidates,then dynamically refine the affinity features of different candiates in parallel. Due to this parallel nature, CSA is very fast and efficient.

About the code. CSA is very simple to implement and experiment with, and we provide a Notebook showing how to do inference with CSA in only a few lines of PyTorch code. Training code follows this idea - it is not a library, but simply a train.py importing model and criterion definitions with standard training loops.

mAP performance of the proposed model

We provide results of baseline CSA and CSA trained with data augmentation. mAP is computed with Medium and Hard evaluation protocols. model will come soon. CSA

Requirements

  • Python 3
  • PyTorch tested on 1.7.1+, torchvision 0.8.2+
  • numpy
  • matplotlib

Usage - Visual Re-ranking

There are no extra compiled components in CSA and package dependencies are minimal, so the code is very simple to use. We provide instructions how to install dependencies via conda. Install PyTorch 1.7.1+ and torchvision 0.8.2+:

conda install -c pytorch pytorch torchvision

Data preparation

Before going further, please check out Filip Radenovic's great repository on image retrieval. We use his code and model to extract features for training images. If you use this code in your research, please also cite their work! link to license

Download and extract rSfm120k train and val images with annotations from http://cmp.felk.cvut.cz/cnnimageretrieval/.

Download ROxf and RPar datastes with annotations. Prepare features for testing and training images with Filip Radenovic's model and code. We expect the directory structure to be the following:

path/to/data/
  ├─ annotations # annotation pkl files
  │   ├─ retrieval-SfM-120k.pkl
  │   ├─ roxford5k
  |   |   ├─ gnd_roxford5k.mat
  |   |   └─ gnd_roxford5k.pkl
  |   └─ rparis6k
  |   |   ├─ gnd_rparis6k.mat
  |   |   └─ gnd_rparis6k.pkl
  ├─ test # test features		
  |   ├─ r1m
  |   |   ├─ gl18-tl-resnet101-gem-w.pkl
  |   |   └─ rSfM120k-tl-resnet101-gem-w.pkl
  │   ├─ roxford5k
  |   |   ├─ gl18-tl-resnet101-gem-w.pkl
  |   |   └─ rSfM120k-tl-resnet101-gem-w.pkl
  |   └─ rparis6k
  |   |   ├─ gl18-tl-resnet101-gem-w.pkl
  |   |   └─ rSfM120k-tl-resnet101-gem-w.pkl
  └─ train # train features
      ├─ gl18-tl-resnet50-gem-w.pkl
      ├─ gl18-tl-resnet101-gem-w.pkl
      └─ gl18-tl-resnet152-gem-w.pkl

Training

To train baseline CSA on a single node with 4 gpus for 100 epochs run:

sh experiment_rSfm120k.sh

A single epoch takes 10 minutes, so 100 epoch training takes around 17 hours on a single machine with 4 2080Ti cards. To ease reproduction of our results we provide results and training logs for 200 epoch schedule (34 hours on a single machine).

We train CSA with SGD setting learning rate in the transformer to 0.1. The transformer is trained with dropout of 0.1, and the whole model is trained with grad clip of 1.0. To train CSA with data augmentation a single node with 4 gpus for 100 epochs run:

sh experiment_augrSfm120k.sh

Evaluation

To evaluate CSA on Roxf and Rparis with a single GPU run:

sh test.sh

and get results as below

>> Test Dataset: roxford5k *** fist-stage >>
>> gl18-tl-resnet101-gem-w: mAP Medium: 67.3, Hard: 44.24
>> gl18-tl-resnet101-gem-w: [email protected][1, 5, 10] Medium: [95.71 90.29 84.57], Hard: [87.14 69.71 59.86]

>> Test Dataset: roxford5k *** rerank-topk1024 >>
>> gl18-tl-resnet101-gem-w: mAP Medium: 77.92, Hard: 58.43
>> gl18-tl-resnet101-gem-w: [email protected][1, 5, 10] Medium: [94.29 93.14 89.71], Hard: [87.14 83.43 73.14]

>> Test Dataset: rparis6k *** fist-stage >>
>> gl18-tl-resnet101-gem-w: mAP Medium: 80.57, Hard: 61.46
>> gl18-tl-resnet101-gem-w: [email protected][1, 5, 10] Medium: [100.    98.    96.86], Hard: [97.14 93.14 90.57]

>> Test Dataset: rparis6k *** query-rerank-1024 >>
>> gl18-tl-resnet101-gem-w: mAP Medium: 87.2, Hard: 74.41
>> gl18-tl-resnet101-gem-w: [email protected][1, 5, 10] Medium: [100.    97.14  96.57], Hard: [95.71 92.86 90.14]

Qualitative examples

Selected qualitative examples of our re-ranking method. Top-10 results are shown in the figure. The figure is divided into four groups which consist of a result of initial retrieval and a result of our re-ranking method. The first two groups are the successful cases and the other two groups arethe failed cases. The images on the left with orange bounding boxes are the queries. The image with green denotes the true positives and the red bounding boxes are false positives. CSA

License

CSA is released under the MIT license. Please see the LICENSE file for more information.

Owner
Hui Wu
Department of Electronic Engineering and Information Science University of Science and Technology of China
Hui Wu
This is a project based on ConvNets used to identify whether a road is clean or dirty. We have used MobileNet as our base architecture and the weights are based on imagenet.

PROJECT TITLE: CLEAN/DIRTY ROAD DETECTION USING TRANSFER LEARNING Description: This is a project based on ConvNets used to identify whether a road is

Faizal Karim 3 Nov 06, 2022
Repo for FUZE project. I will also publish some Linux kernel LPE exploits for various real world kernel vulnerabilities here. the samples are uploaded for education purposes for red and blue teams.

Linux_kernel_exploits Some Linux kernel exploits for various real world kernel vulnerabilities here. More exploits are yet to come. This repo contains

Wei Wu 472 Dec 21, 2022
Python package for missing-data imputation with deep learning

MIDASpy Overview MIDASpy is a Python package for multiply imputing missing data using deep learning methods. The MIDASpy algorithm offers significant

MIDASverse 77 Dec 03, 2022
RE3: State Entropy Maximization with Random Encoders for Efficient Exploration

State Entropy Maximization with Random Encoders for Efficient Exploration (RE3) (ICML 2021) Code for State Entropy Maximization with Random Encoders f

Younggyo Seo 47 Nov 29, 2022
Official implementation of VQ-Diffusion

Official implementation of VQ-Diffusion: Vector Quantized Diffusion Model for Text-to-Image Synthesis

Microsoft 592 Jan 03, 2023
PyTorch implementation of Grokking: Generalization Beyond Overfitting on Small Algorithmic Datasets

Simple PyTorch Implementation of "Grokking" Implementation of Grokking: Generalization Beyond Overfitting on Small Algorithmic Datasets Usage Running

Teddy Koker 15 Sep 29, 2022
Code for paper "Do Language Models Have Beliefs? Methods for Detecting, Updating, and Visualizing Model Beliefs"

This is the codebase for the paper: Do Language Models Have Beliefs? Methods for Detecting, Updating, and Visualizing Model Beliefs Directory Structur

Peter Hase 19 Aug 21, 2022
Incomplete easy-to-use math solver and PDF generator.

Math Expert Let me do your work Preview preview.mp4 Introduction Math Expert is our (@salastro, @younis-tarek, @marawn-mogeb) math high school graduat

SalahDin Ahmed 22 Jul 11, 2022
Trustworthy AI related projects

Trustworthy AI This repository aims to include trustworthy AI related projects from Huawei Noah's Ark Lab. Current projects include: Causal Structure

HUAWEI Noah's Ark Lab 589 Dec 30, 2022
License Plate Detection Application

LicensePlate_Project 🚗 🚙 [Project] 2021.02 ~ 2021.09 License Plate Detection Application Overview 1. 데이터 수집 및 라벨링 차량 번호판 이미지를 직접 수집하여 각 이미지에 대해 '번호판

4 Oct 10, 2022
The official implementation of NeurIPS 2021 paper: Finding Optimal Tangent Points for Reducing Distortions of Hard-label Attacks

Introduction This repository includes the source code for "Finding Optimal Tangent Points for Reducing Distortions of Hard-label Attacks", which is pu

machen 11 Nov 27, 2022
pytorch, hand(object) detect ,yolo v5,手检测

YOLO V5 物体检测,包括手部检测。 项目介绍 手部检测 手部检测示例如下 : 视频示例: 项目配置 作者开发环境: Python 3.7 PyTorch = 1.5.1 数据集 手部检测数据集 该项目数据集采用 TV-Hand 和 COCO-Hand (COCO-Hand-Big 部分) 进

Eric.Lee 11 Dec 20, 2022
This project intends to use SVM supervised learning to determine whether or not an individual is diabetic given certain attributes.

Diabetes Prediction Using SVM I explore a diabetes prediction algorithm using a Diabetes dataset. Using a Support Vector Machine for my prediction alg

Jeff Shen 1 Jan 14, 2022
You Only Hypothesize Once: Point Cloud Registration with Rotation-equivariant Descriptors

You Only Hypothesize Once: Point Cloud Registration with Rotation-equivariant Descriptors In this paper, we propose a novel local descriptor-based fra

Haiping Wang 80 Dec 15, 2022
PyTorch implementation for the Neuro-Symbolic Sudoku Solver leveraging the power of Neural Logic Machines (NLM)

Neuro-Symbolic Sudoku Solver PyTorch implementation for the Neuro-Symbolic Sudoku Solver leveraging the power of Neural Logic Machines (NLM). Please n

Ashutosh Hathidara 60 Dec 10, 2022
DvD-TD3: Diversity via Determinants for TD3 version

DvD-TD3: Diversity via Determinants for TD3 version The implementation of paper Effective Diversity in Population Based Reinforcement Learning. Instal

3 Feb 11, 2022
Investigating automatic navigation towards standard US views integrating MARL with the virtual US environment developed in CT2US simulation

AutomaticUSnavigation Investigating automatic navigation towards standard US views integrating MARL with the virtual US environment developed in CT2US

Cesare Magnetti 6 Dec 05, 2022
Source code release of the paper: Knowledge-Guided Deep Fractal Neural Networks for Human Pose Estimation.

GNet-pose Project Page: http://guanghan.info/projects/guided-fractal/ UPDATE 9/27/2018: Prototxts and model that achieved 93.9Pck on LSP dataset. http

Guanghan Ning 83 Nov 21, 2022
PyTorch implementation of Deformable Convolution

PyTorch implementation of Deformable Convolution !!!Warning: There is some issues in this implementation and this repo is not maintained any more, ple

Wei Ouyang 893 Dec 18, 2022
Mini-hmc-jax - A simple implementation of Hamiltonian Monte Carlo in JAX

mini-hmc-jax This is a simple implementation of Hamiltonian Monte Carlo in JAX t

Martin Marek 6 Mar 03, 2022