<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>docker image on Digi Hunch</title><link>https://static.digihunch.com/tag/docker-image/</link><description>Recent content in docker image on Digi Hunch</description><generator>Hugo -- gohugo.io</generator><language>en-US</language><lastBuildDate>Mon, 12 May 2025 23:27:51 -0400</lastBuildDate><atom:link href="https://static.digihunch.com/tag/docker-image/index.xml" rel="self" type="application/rss+xml"/><item><title>Getting started with GitHub Actions</title><link>https://static.digihunch.com/2021/05/getting-started-with-github-actions/</link><pubDate>Thu, 27 May 2021 13:52:31 -0400</pubDate><guid>https://static.digihunch.com/2021/05/getting-started-with-github-actions/</guid><description>&lt;p class="wp-block-paragraph"&gt;In my &lt;a class="rank-math-link" href="https://github.com/digihunch/orthweb"&gt;orthweb&lt;/a&gt; &lt;a href="https://static.digihunch.com/projects/"&gt;project&lt;/a&gt;, I had to compile a library on my own. In search for free computing resources I realized that GitHub action can meet all my needs.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-ci-cd-pipeline"&gt;CI/CD pipeline&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;As a development project grows, there are many operational tasks demanding automation. Prior to pipeline technology, developers used to use &lt;a href="https://en.wikipedia.org/wiki/Make_(software)"&gt;Makefile&lt;/a&gt; to organize command execution locally. Today, its role has declined, but &lt;a href="https://tech.trivago.com/post/2019-12-20-makefiles-in-2019/"&gt;Makefile&lt;/a&gt; is a good choice in certain situations. In most cases though, to offload the build command execution to a shared system, automation engines like Jenkins came around. Then Jenkins evolved into pipelines.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In strict terms, CI pipeline is the build pipeline; and CD pipeline is release pipeline. The two types of pipelines use pretty much the same pool of building blocks, with different purposes. The build pipeline focuses on producing quality artifact in a consistent manner. The release pipelines focus on system stability while deploying an artifact across different environments. Because release pipelines may connect to different environment, it has to deal with various situations. It is very common to have multiple stages in release pipeline, each stage pointing to a different environment (e.g. DEV, TEST and PROD). At workplace both could be loosely referred to as CI/CD pipeline, or even simply pipeline.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;A lot of projects provide pipeline capability: BitBucket, Bamboo, TeamCity, Jenkins, Azure DevOps, AWS CodePipeline, TravisCI etc. Since late 2018, GitHub also joined the game with GitHub actions. It is openly &lt;a class="rank-math-link" href="https://docs.github.com/en/billing/managing-billing-for-github-actions/about-billing-for-github-actions#:~:text=GitHub%20Actions%20usage%20is%20free,is%20controlled%20by%20spending%20limits."&gt;free&lt;/a&gt; for public repositories, and has a free tier for private repositories. It executes task as defined in .github/workflow/action.yaml in the code project. I will take my own project as an example.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-runners"&gt;Runners&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;You can run jobs in self-hosted runners or GitHub managed runners, similar to other pipeline solutions (e.g. self-hosted agent vs managed agent from Azure DevOps). The &lt;a href="https://docs.github.com/en/actions/reference/workflow-syntax-for-github-actions#github-hosted-runners" class="rank-math-link"&gt;GitHub hosted runners&lt;/a&gt; only have three operating systems to support: Windows, Ubuntu and MacOS. The Ubuntu and Windows runners are built from Standard_DS2_v2 VMs in Microsoft Azure. They are pre-installed with a &lt;a href="https://github.com/actions/virtual-environments" class="rank-math-link"&gt;virtual environment &lt;/a&gt;with packages required for common build tasks. The same virtual environment is also used in hosted agents by Azure DevOps. While they are free and you can elevate privilege on the runner, you cannot SSH or RDP to it for further troubleshooting. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The &lt;a href="https://docs.github.com/en/actions/hosting-your-own-runners/about-self-hosted-runners" class="rank-math-link"&gt;self-hosted runners&lt;/a&gt; require users to manage the instance on their own, including configuring virtual environment, installing &lt;a href="https://github.com/actions/runner" class="rank-math-link"&gt;GitHub Action Runner&lt;/a&gt;, etc.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-workflow-file"&gt;Workflow file&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Most pipeline declaration uses YAML or JSON, such as &lt;a href="https://www.jenkins.io/doc/book/pipeline/jenkinsfile/" class="rank-math-link"&gt;Jenkinsfile&lt;/a&gt;, AWS &lt;a href="https://docs.aws.amazon.com/code-samples/latest/catalog/code-catalog-cloudformation-codepipeline.html" class="rank-math-link"&gt;CodePipeline&lt;/a&gt;. GitHub refers to an automation process as a &amp;#8220;workflow&amp;#8221; and you can program the workflow in YAML (.github/workflow/action.yaml). Here is the &lt;a href="https://docs.github.com/en/actions/reference/workflow-syntax-for-github-actions" class="rank-math-link"&gt;reference&lt;/a&gt; and an example with environmental variable and versioning: &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;&lt;script src="https://gist.github.com/digihunch/e6ed668872c5b0506d25f638ff70727e.js"&gt;&lt;/script&gt;&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The handling of environment is documented &lt;a href="https://docs.github.com/en/actions/reference/workflow-commands-for-github-actions#setting-an-environment-variable" class="rank-math-link"&gt;here&lt;/a&gt;. There are a lot of custom actions available in GitHub &lt;a href="https://github.com/marketplace" class="rank-math-link"&gt;Marketplace&lt;/a&gt;. For example, the versioning in the above example, uses an &lt;a href="https://github.com/marketplace/actions/nuget-build-number-generator" class="rank-math-link"&gt;action&lt;/a&gt; by &lt;a href="https://einaregilsson.com/a-github-action-for-generating-sequential-build-numbers/" class="rank-math-link"&gt;Einar Egilsson&lt;/a&gt;, which is open source itself.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-example-pipeline"&gt;Example pipeline&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;My example &lt;a href="https://github.com/digihunch/orthweb/blob/67542d9329be36e3b8ca895c8b71805c9711aaa3/.github/workflows/action.yml" class="rank-math-link"&gt;pipeline&lt;/a&gt; consists of two phases: &lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;Build Library: spin up a docker container to build source code, and publish the artifact&lt;/li&gt;&#10;&lt;li&gt;Publish Image: add the artifact to an existing Docker image, and publish the result as my own image.&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The status of the pipeline is also open, and can be found &lt;a href="https://github.com/digihunch/orthweb/actions" class="rank-math-link"&gt;here&lt;/a&gt;. The retention period of artifact is 90 days by default but can be &lt;a href="https://docs.github.com/en/actions/reference/usage-limits-billing-and-administration#artifact-and-log-retention-policy" class="rank-math-link"&gt;customized&lt;/a&gt;. To persist the artifact, I add it to my own Docker image and publish it to &lt;a href="https://hub.docker.com/r/digihunch/orthanc-plugin" class="rank-math-link"&gt;DockerHub&lt;/a&gt;, hence the second phase.&lt;/p&gt;&#10;&lt;figure class="wp-block-image size-large"&gt;&lt;img loading="lazy" decoding="async" width="1152" height="724" src="https://static.digihunch.com/wp-content/uploads/2021/05/image-1.png" alt="" class="wp-image-2299"/&gt;&lt;/figure&gt;&#10;&lt;p class="wp-block-paragraph"&gt; When building the second phase, I need to generate secret from my DockerHub account and store that &lt;a href="https://docs.github.com/en/actions/reference/encrypted-secrets" class="rank-math-link"&gt;encrypted secrets&lt;/a&gt; in GitHub settings, so that the secret value can be referenced in workflow file.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Failures in Actions are displayed in error steps and by default the rest of the steps are skipped. &lt;/p&gt;&#10;&lt;figure class="wp-block-image size-large"&gt;&lt;img loading="lazy" decoding="async" width="968" height="624" src="https://static.digihunch.com/wp-content/uploads/2021/05/image-2.png" alt="" class="wp-image-2301"/&gt;&lt;/figure&gt;&#10;&lt;p class="wp-block-paragraph"&gt;&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;I use the &lt;strong&gt;&lt;a class="rank-math-link" href="https://github.com/marketplace/actions/docker-build-push-action"&gt;Docker build &amp;amp; push plugin&lt;/a&gt;&lt;/strong&gt; to build and push my own docker image to DockerHub. Apart from DockerHub as my choice, GitHub also has its own artifactory GitHub &lt;a class="rank-math-link" href="https://github.com/features/packages"&gt;Packages&lt;/a&gt; with a small free tier. It supports NPM, Docker, Maven, Gradle, etc. &lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Triggers of Action&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Most of the times, GitHub action are triggered upon commit to main branch of the repo. In GitHub, this is known as a &lt;a href="https://docs.github.com/en/actions/using-workflows/events-that-trigger-workflows#workflow_dispatch"&gt;workflow_dispatch&lt;/a&gt; event. This is not the only event that can trigger GitHub action. All the available events are listed &lt;a href="https://docs.github.com/en/actions/using-workflows/events-that-trigger-workflows#available-events"&gt;here&lt;/a&gt; on its documentation. This makes it very flexible to trigger action at many points in the workflow. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;One example is to trigger GitHub action during PR review. When a developer opens a PR with a few commits in the proposed branch, the PR can preemptively check linting, style, etc and even build the application. These activities can also be defined in a GitHub action manifest with &lt;strong&gt;pull_request&lt;/strong&gt; as triggering event.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Troubleshooting&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In general, it is painful to troubleshoot activities happening inside of runners. I often had to write a few steps for the sake of printing variables, and trigger a run to see what their value is. This requires a lot of time especially when I have to wait for available runners. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;To help troubleshooting pipeline runs there is an open-source utility called &lt;a href="https://github.com/nektos/act"&gt;act&lt;/a&gt;. You can run GitHub actions locally from a Docker container on your MacBook. You can deliver environment variables and secrets via files. If you ever need to troubleshoot the runner environment, you have the option to connect to the Shell environment inside of the runner container. This tool is extremely helpful.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-closing-remarks"&gt;Closing remarks&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;GitHub action really makes the CI/CD pipeline capability available to any developers who stores their code on GitHub. GitHub expands from a code repository solution to a full CI/CD solution with a free tier sufficient for personal projects.&lt;/p&gt;&#10;&lt;nav class="wp-post-navigation" aria-label="Post navigation"&gt;&#10;&lt;a rel="prev" href="https://static.digihunch.com/2021/05/secure-web-application-deployment/"&gt;&lt;span class="wp-post-navigation-label"&gt;Previous Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Secure web application deployment&lt;/strong&gt;&lt;/a&gt;&#10;&lt;a rel="next" href="https://static.digihunch.com/2021/06/kubernetes-storage-explained/"&gt;&lt;span class="wp-post-navigation-label"&gt;Next Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Kubernetes Storage Explained – from in-tree plugin to CSI&lt;/strong&gt;&lt;/a&gt;&#10;&lt;/nav&gt;&#10;</description></item><item><title>Automatic deployment of Orthanc on AWS</title><link>https://static.digihunch.com/2020/11/medical-imaging-web-server-deployment-pipeline/</link><pubDate>Sun, 08 Nov 2020 00:54:06 -0400</pubDate><guid>https://static.digihunch.com/2020/11/medical-imaging-web-server-deployment-pipeline/</guid><description>&lt;p class="wp-block-paragraph"&gt;[&lt;strong&gt;Update&lt;/strong&gt;] I changed reverse proxy from Nginx to Envoy. &lt;a href="https://static.digihunch.com/2022/03/from-nginx-to-envoy-proxy/"&gt;Here&lt;/a&gt;&amp;#8216;s the detail.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;[&lt;strong&gt;Update&lt;/strong&gt;] Some security improvement was introduced in may 2021. &lt;a class="rank-math-link" href="https://static.digihunch.com/2021/05/secure-web-application-deployment/"&gt;Here&lt;/a&gt;&amp;#8216;s detail.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;[&lt;strong&gt;Update&lt;/strong&gt;] &lt;a href="https://github.com/digihunch/orthweb"&gt;Here&amp;#8217;s&lt;/a&gt; the link to the orthweb repository.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In this project we introduce a medical imaging web service based on Orthanc, an open-source project of DICOM server, and a pipeline to deploy such server automatically and consistently. We deploy Orthanc on AWS automatically. This little project involves a number of technical deets in DevOps, to deliver a web application prototype with an automated deployment pipeline.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-a-brief-on-imaging"&gt;A brief on imaging&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In medical imaging, scanning devices are the data collectors. It consists of various categories of scanners, such as Computed Tomography (CT), and Ultrasound (US). They are collectively referred to as modality, but vary significantly in terms of image generation and hardware manufacturing. The challenges to exchange data between these heterogeneous scanning devices and centralized computers came around as early as the 1980s, which brought about ACR-NEMA standard in 1985, under the initiative between American College Radiology (ACR) and National Electrical Manufacturers Association (NEMA). The standard lately evolved into DICOM (Digital Imaging Communication in Medicine), a comprehensive set of standard in the ISO framework that governs modern imaging data storage and exchange across several disciplines (radiology, cardiology, pathology, etc) that operate around images in medicine.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In addition to defining a &lt;a href="http://dicom.nema.org/medical/dicom/current/output/chtml/part10/"&gt;file format&lt;/a&gt; to store imaging data, DICOM also includes an upper layer protocol that dictates how two compliant devices (referred as application entity, each identified by AE title) can negotiate a common syntax to transfer objects (e.g. an image, a report or a discovery). Upper layer refers to layer 5-7 in OSI model, or application layer in TCP/IP model.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-imaging-server"&gt;Imaging server&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Once scanner acquires images from patient, they stores the exams to imaging server for persistent storage. The functionalities of such server expands overtime since 1990s and hence go by different names in different eras, such as PACS (Picture Archive and Communication Systems), VNA (Vendor Neutral Archive) and EI (enterprise imaging) archive. Regardless of naming, they can be generally seen as a highly specialized variation of enterprise content management system. They are usually hosted with a centralized database to index clinical information at patient, exam and image levels. The other key component is the persistent storage devices, usually in the form of a &lt;a href="https://en.wikipedia.org/wiki/Network-attached_storage" class="rank-math-link"&gt;NAS&lt;/a&gt;. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;&lt;a href="https://www.orthanc-server.com/" class="rank-math-link"&gt;Orthanc&lt;/a&gt; is an open-source initiative for such imaging servers. It provides a DICOM endpoint, allowing scanning devices to store medical images. It also provides a web viewer allowing users to see the images stored. It is released for many platforms, including Docker images.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-infrastructure-as-code"&gt;Infrastructure as code&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;We use Amazon Web Service (AWS) for infrastructure as service, and &lt;a href="https://www.terraform.io/" class="rank-math-link"&gt;Terraform&lt;/a&gt; as the tool to provision resources off AWS, in a reliable and consistent mechanism, known as Infrastructure-as-Code. Terraform is an alternative to CloudFormation, AWS&amp;#8217;s proprietary infrastructure-as-code technology. Terraform is developed by Hashicorp as an open-source project, and therefore is vendor neutral. It supports multiple public cloud vendor through different &lt;a href="https://www.terraform.io/docs/providers/index.html" class="rank-math-link"&gt;providers&lt;/a&gt;. Each provider accesses the vendor specific SDK. For example, the &lt;a href="https://registry.terraform.io/providers/hashicorp/aws/latest/docs" class="rank-math-link"&gt;AWS provider&lt;/a&gt; integrates with &lt;a href="https://aws.amazon.com/tools/" class="rank-math-link"&gt;AWS SDK&lt;/a&gt;. As a result, the code used in one vendor cannot just be applied to a different vendor without a major overhaul. Terraform&amp;#8217;s current version is 0.13 as of Oct 2020, and has gone through some &lt;a href="https://www.hashicorp.com/blog/announcing-terraform-0-12" class="rank-math-link"&gt;syntax changes&lt;/a&gt; since version 0.11. Terraform also produces files for state management locally in the working directory. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;When executing, Terraform combines all files in the working directory to assess variables, and create required resources. It is compatible with the most of AWS resources. For example, you can specify user data with templates when creating EC2 instances. You can also create managed service instance as long as it is supported by the &lt;a href="https://registry.terraform.io/providers/hashicorp/aws/latest/docs" class="rank-math-link"&gt;provider&lt;/a&gt;.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-architecture"&gt;Architecture&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Orthanc web server stores data in sqlite by default, but also has a plugin to support &lt;a href="https://wiki.postgresql.org/wiki/Main_Page" class="rank-math-link"&gt;PostgreSQL&lt;/a&gt;, an open-source relational database. AWS has managed service (&lt;a href="https://aws.amazon.com/rds/postgresql/" class="rank-math-link"&gt;RDS&lt;/a&gt;) based on PostgreSQL. In this project, we create an RDS instance that span across two availability zones for minimum high availability. Orthanc also supports storing imaging data including pixels in PostgreSQL, which obviates the need for a dedicated file storage system.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;We deploy the application in Docker&amp;#8217;s containers for compatibility and portability. The Orthanc server is shipped in &lt;a class="rank-math-link" href="https://orthanc.uclouvain.be/book/users/docker.html"&gt;Docker images&lt;/a&gt;, available in &lt;a class="rank-math-link" href="https://hub.docker.com/r/jodogne/orthanc"&gt;Docker hub&lt;/a&gt; registry. The docker environment is configured as part of EC2 instance bootstrapping, including installing packages with &lt;a href="https://static.digihunch.com/2019/02/package-repository-management-in-linux/"&gt;YUM&lt;/a&gt;, initializing and customizing environment variables. The docker-compose file, and the auxiliary configuration files are provided in the repo. The bootstrapping script installs git and pulls required files from this &lt;a class="rank-math-link" href="https://github.com/digihunch/orthweb"&gt;GitHub repo&lt;/a&gt;. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;This demo project does not include load balancing, DNS management, or container orchestration.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-security"&gt;Security&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Orthanc&amp;#8217;s web browser &lt;a href="https://orthanc.uclouvain.be/book/faq/https.html"&gt;natively supports HTTPS&lt;/a&gt;. However, the DICOM port does not support TLS natively, as their development has made clear in the &lt;a href="https://orthanc.uclouvain.be/book/faq/security.html" class="rank-math-link"&gt;FAQ&lt;/a&gt;. This leaves a severe security vulnerability because all patient data (protected health information in HIPPA context) would be sent across the Internet in the clear, visible to every network interface along the route. To address this issue we brought in Nginx as a reverse proxy to work at TCP layer to terminate encrypted traffic for Orthanc&amp;#8217;s DICOM end point. 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text-align: left;" pointer-events="none" width="100%" height="100%" requiredFeatures="http://www.w3.org/TR/SVG11/feature#Extensibility"&gt;&lt;div xmlns="http://www.w3.org/1999/xhtml" style="display: flex; align-items: unsafe center; justify-content: unsafe center; width: 1px; height: 1px; padding-top: 125px; margin-left: 214px;"&gt;&lt;div style="box-sizing: border-box; font-size: 0; text-align: center; "&gt;&lt;div style="display: inline-block; font-size: 11px; font-family: Helvetica; color: #000000; line-height: 1.2; pointer-events: all; background-color: #ffffff; white-space: nowrap; "&gt;Encrypted DICOM traffic&lt;/div&gt;&lt;/div&gt;&lt;/div&gt;&lt;/foreignObject&gt;&lt;text x="214" y="129" fill="#000000" font-family="Helvetica" font-size="11px" text-anchor="middle"&gt;Encrypted DICOM traffic&lt;/text&gt;&lt;/switch&gt;&lt;/g&gt;&lt;path d="M 312 6 L 312 206 M 308 206 L 308 6 M 308 206" fill="none" stroke="#6c8ebf" stroke-linejoin="round" stroke-miterlimit="10" pointer-events="all"&gt;&lt;/path&gt;&lt;g transform="translate(-0.5 -0.5)"&gt;&lt;switch&gt;&lt;foreignObject style="overflow: visible; text-align: left;" pointer-events="none" width="100%" height="100%" requiredFeatures="http://www.w3.org/TR/SVG11/feature#Extensibility"&gt;&lt;div xmlns="http://www.w3.org/1999/xhtml" style="display: flex; align-items: unsafe center; justify-content: unsafe center; width: 1px; height: 1px; padding-top: 7px; margin-left: 321px;"&gt;&lt;div style="box-sizing: border-box; font-size: 0; text-align: center; "&gt;&lt;div style="display: inline-block; font-size: 11px; font-family: Helvetica; color: #000000; line-height: 1.2; pointer-events: all; background-color: #ffffff; white-space: nowrap; "&gt;corporate firewall&lt;/div&gt;&lt;/div&gt;&lt;/div&gt;&lt;/foreignObject&gt;&lt;text x="321" y="10" fill="#000000" font-family="Helvetica" font-size="11px" text-anchor="middle"&gt;corporate firewall&lt;/text&gt;&lt;/switch&gt;&lt;/g&gt;&lt;path d="M 142 6 L 142 206 M 138 206 L 138 6 M 138 206" fill="none" stroke="#6c8ebf" stroke-linejoin="round" stroke-miterlimit="10" pointer-events="all"&gt;&lt;/path&gt;&lt;g transform="translate(-0.5 -0.5)"&gt;&lt;switch&gt;&lt;foreignObject style="overflow: visible; text-align: left;" pointer-events="none" width="100%" height="100%" requiredFeatures="http://www.w3.org/TR/SVG11/feature#Extensibility"&gt;&lt;div xmlns="http://www.w3.org/1999/xhtml" style="display: flex; align-items: unsafe center; justify-content: unsafe center; width: 1px; height: 1px; padding-top: 7px; margin-left: 151px;"&gt;&lt;div style="box-sizing: border-box; font-size: 0; text-align: center; "&gt;&lt;div style="display: inline-block; font-size: 11px; font-family: Helvetica; color: #000000; line-height: 1.2; pointer-events: all; background-color: #ffffff; white-space: nowrap; "&gt;corporate firewall&lt;/div&gt;&lt;/div&gt;&lt;/div&gt;&lt;/foreignObject&gt;&lt;text x="151" y="10" fill="#000000" font-family="Helvetica" font-size="11px" text-anchor="middle"&gt;corporate firewall&lt;/text&gt;&lt;/switch&gt;&lt;/g&gt;&lt;/g&gt;&lt;switch&gt;&lt;g requiredFeatures="http://www.w3.org/TR/SVG11/feature#Extensibility"&gt;&lt;/g&gt;&lt;a transform="translate(0,-5)" xlink:href="https://desk.draw.io/support/solutions/articles/16000042487" target="_blank" rel="noopener noreferrer"&gt;&lt;text text-anchor="middle" font-size="10px" x="50%" y="100%"&gt;Viewer does not support full SVG 1.1&lt;/text&gt;&lt;/a&gt;&lt;/switch&gt;&lt;/svg&gt;&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In Nginx literature, this use case is referred to as &lt;a class="rank-math-link" href="https://docs.nginx.com/nginx/admin-guide/security-controls/terminating-ssl-tcp/"&gt;SSL Termination for TCP Upstream Servers&lt;/a&gt;. Note that Nginx is providing layer 4 capability in this use case so the certificate and key configuration should not be placed under http section of the configuration file. This layer 4 capability in fact enables security configurations of all protocol that operates in upper layers and can be used in a broad range of situations. It is also noteworthy that Nginx can re-encrypt the traffic on the way out to upstream, for even tighter security control measure as outlined in this &lt;a class="rank-math-link" href="https://docs.nginx.com/nginx/admin-guide/security-controls/securing-tcp-traffic-upstream/"&gt;use case&lt;/a&gt;.&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-groovy" data-lang="groovy"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;user nginx&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;worker_processes &lt;span style="color:#ae81ff"&gt;1&lt;/span&gt;&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;error_log &lt;span style="color:#e6db74"&gt;/var/&lt;/span&gt;log&lt;span style="color:#e6db74"&gt;/nginx/&lt;/span&gt;error&lt;span style="color:#f92672"&gt;.&lt;/span&gt;&lt;span style="color:#a6e22e"&gt;log&lt;/span&gt; warn&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;pid &lt;span style="color:#e6db74"&gt;/var/&lt;/span&gt;run&lt;span style="color:#e6db74"&gt;/nginx.pid;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;events {&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; worker_connections 1024;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;}&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;stream {&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; upstream dicom_backend {&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; server orthanc-backend:4242;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; }&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; server {&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; listen 11112 ssl;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; proxy_pass dicom_backend;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; ssl_certificate conf.d/&lt;/span&gt;site&lt;span style="color:#f92672"&gt;.&lt;/span&gt;&lt;span style="color:#a6e22e"&gt;pem&lt;/span&gt;&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ssl_certificate_key conf&lt;span style="color:#f92672"&gt;.&lt;/span&gt;&lt;span style="color:#a6e22e"&gt;d&lt;/span&gt;&lt;span style="color:#f92672"&gt;/&lt;/span&gt;site&lt;span style="color:#f92672"&gt;.&lt;/span&gt;&lt;span style="color:#a6e22e"&gt;pem&lt;/span&gt;&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ssl_protocols SSLv3 TLSv1 TLSv1&lt;span style="color:#f92672"&gt;.&lt;/span&gt;&lt;span style="color:#ae81ff"&gt;2&lt;/span&gt; TLSv1&lt;span style="color:#f92672"&gt;.&lt;/span&gt;&lt;span style="color:#ae81ff"&gt;3&lt;/span&gt;&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ssl_ciphers HIGH:&lt;span style="color:#f92672"&gt;!&lt;/span&gt;aNULL:&lt;span style="color:#f92672"&gt;!&lt;/span&gt;MD5:ECDH&lt;span style="color:#f92672"&gt;+&lt;/span&gt;AESGCM&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ssl_session_cache shared:SSL:&lt;span style="color:#ae81ff"&gt;20&lt;/span&gt;m&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ssl_session_timeout &lt;span style="color:#ae81ff"&gt;4&lt;/span&gt;h&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ssl_handshake_timeout &lt;span style="color:#ae81ff"&gt;30&lt;/span&gt;s&lt;span style="color:#f92672"&gt;;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &lt;span style="color:#f92672"&gt;}&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#f92672"&gt;}&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;It is also helpful to use Nginx to terminate HTTPS traffic, using a pair of certificate and key. When testing with self-signed certificate I realized that Chrome browser has specific &lt;a href="https://support.apple.com/en-us/HT210176" class="rank-math-link"&gt;requirement&lt;/a&gt; on self-signed certificate, or it won&amp;#8217;t load the page. So the certificate has to be created as instructed &lt;a class="rank-math-link" href="https://eengstrom.github.io/musings/self-signed-tls-certs-v.-chrome-on-macos-catalina"&gt;here&lt;/a&gt;.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;For better security, it is advisable that the RDS instance is provisioned in private subnet, with its data encrypted both in-transit and at-rest. Docker service should also manage sensitive information as &lt;a href="https://docs.docker.com/engine/swarm/secrets/" class="rank-math-link"&gt;secrets&lt;/a&gt;.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-summary"&gt;Summary&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The deliverable is stored in this Github &lt;a href="https://github.com/digihunch/orthweb" class="rank-math-link"&gt;repo&lt;/a&gt;. The docker part of it can be executed on MacBook with PostgreSQL. The entire hardware stack represented by terraform code, can be executed against AWS to create required resources. Checkout README for further instruction. To emulate a modality, one will need a TLS supported DICOM application entity, &lt;a href="https://horosproject.org/" class="rank-math-link"&gt;Horos&lt;/a&gt; is a great project on MacOS to serve this purpose, both as DICOM-compliant sender and a viewer. Alternatively, consider some command-line based DICOM toolkit such as &lt;a href="https://support.dcmtk.org/redmine/projects/dcmtk" class="rank-math-link"&gt;dcmtk&lt;/a&gt;, or &lt;a href="https://sourceforge.net/projects/gdcm/" class="rank-math-link"&gt;grassroot dicom&lt;/a&gt;.&lt;/p&gt;&#10;&lt;nav class="wp-post-navigation" aria-label="Post navigation"&gt;&#10;&lt;a rel="prev" href="https://static.digihunch.com/2020/11/docker-storage/"&gt;&lt;span class="wp-post-navigation-label"&gt;Previous Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Docker storage&lt;/strong&gt;&lt;/a&gt;&#10;&lt;a rel="next" href="https://static.digihunch.com/2020/11/how-imaging-devices-talk-to-each-other-tip-in-dicom/"&gt;&lt;span class="wp-post-navigation-label"&gt;Next Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;How imaging devices talk to each other (in DICOM)&lt;/strong&gt;&lt;/a&gt;&#10;&lt;/nav&gt;&#10;</description></item><item><title>Host legacy application in Docker 2 of 2</title><link>https://static.digihunch.com/2020/10/host-legacy-application-in-docker-2-of-2/</link><pubDate>Thu, 22 Oct 2020 17:54:00 -0400</pubDate><guid>https://static.digihunch.com/2020/10/host-legacy-application-in-docker-2-of-2/</guid><description>&lt;p class="wp-block-paragraph"&gt;My &lt;a href="https://static.digihunch.com/2020/09/host-legacy-application-with-docker-compose/"&gt;previous notes &lt;/a&gt;include some tricks in hosting legacy application in docker. This is a continuation from that work, after 1.5 months&amp;#8230;&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Use Case&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;I decided to use docker to host application for a good reason, and let me start with what this Java-based application does as a single process. When it is up it listens to more than 70 TCP ports for different business services. Here is a simplified list:&lt;/p&gt;&#10;&lt;figure class="wp-block-table is-style-regular"&gt;&lt;table class="has-background" style="background-color:#e9fbe5"&gt;&lt;tbody&gt;&lt;tr&gt;&lt;td&gt;Application service&lt;/td&gt;&lt;td&gt;TCP port to bind&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;Business service A&lt;/td&gt;&lt;td&gt;8030&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;Business service B&lt;/td&gt;&lt;td&gt;8040&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;Business service C&lt;/td&gt;&lt;td&gt;8050&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;&amp;#8230;&amp;#8230;&lt;/td&gt;&lt;td&gt;&amp;#8230;&lt;/td&gt;&lt;/tr&gt;&lt;/tbody&gt;&lt;/table&gt;&lt;figcaption class="wp-element-caption"&gt;TCP port requirement&lt;/figcaption&gt;&lt;/figure&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The application also communicates with database and search engine on the same server. Since I am building a training environment where multiple instances of our application needs to run on a single server host. All these instances of application share the same underlying database and search engine services. With multiple instances, additional constraints are introduced. For example:&lt;/p&gt;&#10;&lt;ol class="wp-block-list"&gt;&#10;&lt;li&gt;Each instance requires more than 120 configuration files. A small number of them defines what ports the process binds to. The rest of configuration files are the same across all instances.&lt;/li&gt;&#10;&lt;li&gt;The OS needs to host 6 processes of the same application all running at the same time;&lt;/li&gt;&#10;&lt;li&gt;The OS does not allow multiple processes to bind to a single TCP port (duh!);&lt;/li&gt;&#10;&lt;li&gt;It is extremely labourious to change the path for application to read configuration files from. This bad configuration also breaks the upgrade process going forward. &lt;/li&gt;&#10;&lt;/ol&gt;&#10;&lt;p class="wp-block-paragraph"&gt;From the statements of constraints, I determine that we need a mechanism to bring running application process into an isolated environment. This is exactly the definition of container and a perfect use case for docker. The following table represents an example of how the multiple instances can be orchestrated.&lt;/p&gt;&#10;&lt;table id="tablepress-11" class="tablepress tablepress-id-11 tbody-has-connected-cells"&gt;&#10;&lt;thead&gt;&#10;&lt;tr class="row-1"&gt;&#10;&#9;&lt;th class="column-1"&gt;OS&lt;/th&gt;&lt;th class="column-2"&gt;Container ID&lt;/th&gt;&lt;th class="column-3"&gt;Application Service&lt;/th&gt;&lt;th class="column-4"&gt;container port&lt;/th&gt;&lt;th class="column-5"&gt;published port&lt;/th&gt;&#10;&lt;/tr&gt;&#10;&lt;/thead&gt;&#10;&lt;tbody class="row-striping row-hover"&gt;&#10;&lt;tr class="row-2"&gt;&#10;&#9;&lt;td rowspan="9" class="column-1"&gt;Host&lt;br /&gt;&#10;CentOS&lt;/td&gt;&lt;td rowspan="3" class="column-2"&gt;Container 1&lt;br /&gt;&#10;(Instance #1)&lt;/td&gt;&lt;td class="column-3"&gt;Business Service A&lt;/td&gt;&lt;td class="column-4"&gt;8030&lt;/td&gt;&lt;td class="column-5"&gt;9301&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-3"&gt;&#10;&#9;&lt;td class="column-3"&gt;Business Service B&lt;/td&gt;&lt;td class="column-4"&gt;8040&lt;/td&gt;&lt;td class="column-5"&gt;9401&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-4"&gt;&#10;&#9;&lt;td class="column-3"&gt;Business Service C&lt;/td&gt;&lt;td class="column-4"&gt;8050&lt;/td&gt;&lt;td class="column-5"&gt;9501&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-5"&gt;&#10;&#9;&lt;td rowspan="3" class="column-2"&gt;Container 2&lt;br /&gt;&#10;(Instance #2)&lt;/td&gt;&lt;td class="column-3"&gt;Business Service A&lt;/td&gt;&lt;td class="column-4"&gt;8030&lt;/td&gt;&lt;td class="column-5"&gt;9302&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-6"&gt;&#10;&#9;&lt;td class="column-3"&gt;Business Service B&lt;/td&gt;&lt;td class="column-4"&gt;8040&lt;/td&gt;&lt;td class="column-5"&gt;9402&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-7"&gt;&#10;&#9;&lt;td class="column-3"&gt;Business Service C&lt;/td&gt;&lt;td class="column-4"&gt;8050&lt;/td&gt;&lt;td class="column-5"&gt;9502&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-8"&gt;&#10;&#9;&lt;td rowspan="3" class="column-2"&gt;Container 3&lt;br /&gt;&#10;(Instance #3)&lt;/td&gt;&lt;td class="column-3"&gt;Business Service A&lt;/td&gt;&lt;td class="column-4"&gt;8030&lt;/td&gt;&lt;td class="column-5"&gt;9601&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-9"&gt;&#10;&#9;&lt;td class="column-3"&gt;Business Service B&lt;/td&gt;&lt;td class="column-4"&gt;8040&lt;/td&gt;&lt;td class="column-5"&gt;9602&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;tr class="row-10"&gt;&#10;&#9;&lt;td class="column-3"&gt;Business Service C&lt;/td&gt;&lt;td class="column-4"&gt;8050&lt;/td&gt;&lt;td class="column-5"&gt;9603&lt;/td&gt;&#10;&lt;/tr&gt;&#10;&lt;/tbody&gt;&#10;&lt;/table&gt;&#10;&lt;!-- #tablepress-11 from cache --&gt;&#10;&lt;p class="wp-block-paragraph"&gt;This way of orchestration allows the different instances of applications to share as much configuration files as possible, so that each process thinks that they bind to TCP ports (8030, 8040, 8050, etc), by taking advantage of Docker&amp;#8217;s ability to map ports for publishing.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Below is an example of the docker compose file:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-text" data-lang="text"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;version: &amp;#39;3.6&amp;#39;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;services:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; dapp1:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; image: docker.digihunch.com/dapp:${DAPP_VER}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; container_name: dapp1&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; entrypoint: [&amp;#34;/opt/docker-entrypoint.sh&amp;#34;,&amp;#34;dapp&amp;#34;]&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ports:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9301:8030 # BUSINESS SERVICE A&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9401:8040 # BUSINESS SERVICE B&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9501:8050 # BUSINESS SERVICE C&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; mac_address: 2c:1f:4e:c5:9e:cf&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; environment:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - INSTANCE_TAG=dapp1 &#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - MAX_JVM_HEAP=${DAPP_HEAP:-3892M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; networks:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - vcnet&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; volumes:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - /opt/dapp/etc:/opt/dapp/etc:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - ./instances/dapp1/dapp.lic:/opt/dapp/etc/dapp.lic:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - ./instances/dapp1/variables:/opt/dapp/etc/variables:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; deploy:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; resources:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; limits:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; cpus: &amp;#39;0.5&amp;#39;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; memory: ${DAPP_MEM:-4096M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; reservations:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; memory: ${DAPP_MEM:-4096M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; tty: true&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; dapp2:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; image: docker.digihunch.com/dapp:${DAPP_VER}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; container_name: dapp2&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; entrypoint: [&amp;#34;/opt/docker-entrypoint.sh&amp;#34;,&amp;#34;dapp&amp;#34;]&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ports:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9302:8030 # BUSINESS SERVICE A&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9402:8040 # BUSINESS SERVICE B&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9502:8050 # BUSINESS SERVICE C&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; mac_address: 2c:1f:4e:c5:9e:d0 &#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; environment:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - INSTANCE_TAG=dapp2 &#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - MAX_JVM_HEAP=${DAPP_HEAP:-3892M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; networks:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - vcnet&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; volumes:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - /opt/dapp/etc:/opt/dapp/etc:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - ./instances/dapp2/dapp.lic:/opt/dapp/etc/dapp.lic:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - ./instances/dapp2/variables:/opt/dapp/etc/variables:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; deploy:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; resources:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; limits:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; cpus: &amp;#39;0.5&amp;#39;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; memory: ${DAPP_MEM:-4096M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; reservations:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; memory: ${DAPP_MEM:-4096M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; tty: true&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; dapp3:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; image: docker.digihunch.com/dapp:${DAPP_VER}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; container_name: dapp3&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; entrypoint: [&amp;#34;/opt/docker-entrypoint.sh&amp;#34;,&amp;#34;dapp&amp;#34;]&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; ports:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9601:8030 # BUSINESS SERVICE A&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9602:8040 # BUSINESS SERVICE B&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - 9603:8050 # BUSINESS SERVICE C&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; mac_address: 2c:1f:4e:c5:9e:d1 &#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; environment:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - INSTANCE_TAG=dapp3 &#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - MAX_JVM_HEAP=${DAPP_HEAP:-3892M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; networks:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - vcnet&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; volumes:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - /opt/dapp/etc:/opt/dapp/etc:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - ./instances/dapp3/dapp.lic:/opt/dapp/etc/dapp.lic:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - ./instances/dapp3/variables:/opt/dapp/etc/variables:ro&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; deploy:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; resources:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; limits:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; cpus: &amp;#39;0.5&amp;#39;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; memory: ${DAPP_MEM:-4096M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; reservations:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; memory: ${DAPP_MEM:-4096M}&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; tty: true&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;networks:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; vcnet:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; driver: bridge&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; driver_opts:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; com.docker.network.enable_ipv6: &amp;#34;false&amp;#34;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;In this compose file, the environment variables are stored in .env file in the same directory and if they are not declared, the default is specified (syntax: ${VAR:-default}). &lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Helper scripts&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The docker commands are fairly long so I had to organize them into several helper scripts. For example:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;docker-entrypoint.sh: this script is the ENTRYPOINT script for container. It is responsible for:&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;Initialization work that cannot be done in Dockerfile, such as setting environment variable&lt;/li&gt;&#10;&lt;li&gt;Launch the application, including pointing log file to stdout&lt;/li&gt;&#10;&lt;li&gt;Adding host entry for host.docker.internal to /etc/hosts, as a workaround to &lt;a href="https://stackoverflow.com/questions/24319662/from-inside-of-a-docker-container-how-do-i-connect-to-the-localhost-of-the-mach"&gt;this&lt;/a&gt; issue with Docker on Linux&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;/li&gt;&#10;&lt;li&gt;build_image.sh: this script makes the image build process smoother&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;check if image to build already exist, and ask permission to delete the existing image if so;&lt;/li&gt;&#10;&lt;li&gt;build the image with Dockerfile, and create directory structure for Dockerfile to use during COPY instruction&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;/li&gt;&#10;&lt;li&gt;start_dapp_all.sh: this script starts all containers using docker-compose up and also add required iptables rules. We need to edit PREROUTING rules in IP tables to allow traffic between host NIC interface and the docker bridge interface, created each time service is up, as pointed out in &lt;a href="https://static.digihunch.com/2020/09/host-legacy-application-with-docker-compose/"&gt;previous post&lt;/a&gt;.&lt;/li&gt;&#10;&lt;li&gt;stop_dapp_all.sh: this script removes the relevant iptables rules and stop all containers using docker-compose. Note that when deleting routing rules by number, start from the highest rule number and work your way down, since each deletion will cause the rules to be re-numbered.&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Permission&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The container uses a non-root user to run application (e.g. with su dhunch -c &amp;#8220;command&amp;#8221; from entry point script to run application as dhunch user), because the legacy application uses the same (non-root) user to perform its actions, and it is generally not advised to use root user. To ensure consistency, we need to create the dhunch user in container (in Dockerfile) so it&amp;#8217;s uid and gid aligns with those of the host. The file and directory on the host to be access by the process in container also needs to allow dhunch user to read and write. Otherwise, entry point script will fail.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In the docker-compose file, we mount a file or a directory on the host to the container, and specify 😮 if it is read only mount, under volumes. We can alternatively use bind mount (check &lt;a href="https://medium.com/devops-dudes/docker-volumes-and-bind-mounts-2fb4bd9df09d"&gt;here&lt;/a&gt; for comparison). In either case, we need to keep in mind of the permission &amp;#8211; owner alignment. For example, we have the following mount statement under volumes:&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;&amp;#8211; /var/lib/dapp/dcontainer/archive:/var/lib/dapp/dhost/archive&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;We also need the entire directory hierarchy accessible to dhunch user. To configure this correctly, we need to create the entire directory hierarchy and set proper owner to it. Here is the comparison between the bad configuration and good configuration:&lt;/p&gt;&#10;&lt;figure class="wp-block-table"&gt;&lt;table class="has-background" style="background-color:#e9fbe5"&gt;&lt;tbody&gt;&lt;tr&gt;&lt;td&gt;&lt;/td&gt;&lt;td&gt;&lt;strong&gt;Dockerfile instruction for container&lt;/strong&gt;&lt;/td&gt;&lt;td&gt;&lt;strong&gt;Permission issue during mount by docker-compose&lt;/strong&gt;&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;&lt;strong&gt;Bad config&lt;/strong&gt;&lt;/td&gt;&lt;td&gt;RUN mkdir -p /var/lib/dapp &amp;amp;&amp;amp; chown -R dhunch:dhunch /var/lib/dapp&lt;br&gt;&lt;/td&gt;&lt;td&gt;The directory &amp;#8220;dcontainer&amp;#8221; was not created until mount time and it is created implicitly with root as owner (since there is no user section in docker-compose, so root as default is used). The application running as dhunch user in container will have permission issue going into dcontainer directory after mount.&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;&lt;strong&gt;Good config&lt;/strong&gt;&lt;/td&gt;&lt;td&gt;RUN mkdir -p /var/lib/dapp/dcontainer/archive &amp;amp;&amp;amp; chown -R dhunch:dhunch /var/lib/dapp&lt;/td&gt;&lt;td&gt;The directory &amp;#8220;dcontainer&amp;#8221; was already created with proper permission prior to mount and the main application process running as dhunch user will not have permission issue.&lt;/td&gt;&lt;/tr&gt;&lt;/tbody&gt;&lt;/table&gt;&lt;/figure&gt;&#10;&lt;p class="wp-block-paragraph"&gt;For application process running as dhunch, it also needs to write logs to stdout, so the result can be viewed from outside the container using docker logs command. The docker-entrypoint.sh script makes this happen by:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-text" data-lang="text"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;su dhunch -c &amp;#34;ln -sf /dev/stdout $DHUNCH_LOG_DIR/dhunch.log&amp;#34;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;However, this command itself will run into permission issues. To fix, we need to add user dhunch to tty group (e.g. in Dockerfile as it&amp;#8217;s needed on every container):&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-text" data-lang="text"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;usermod -a -G tty dhunch&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;For application process to write to a shared volume on host (e.g. NFS), we can either allow access through volume mapping, or for performant access, mount the NFS share directly to container with proper driver. &lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Java application&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;For Java applications, only use the needed package (openjdk, openjdk-devel, openjdk-headless) as the Docker image size must be kept as small as possible. The headless package is for non-UI components, the devel package is for development stuff.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;It is also worth-noting that the upper limit of heap size (Xmx) should be set based on the reserved memory of container (specified under docker-compose under resource limit and reservation). If heap is larger than container&amp;#8217;s available memory, OOM will be triggered and the container will be killed. &lt;a href="https://developers.redhat.com/blog/2017/03/14/java-inside-docker/"&gt;This article&lt;/a&gt; has some good explanation on this.&lt;/p&gt;&#10;&lt;nav class="wp-post-navigation" aria-label="Post navigation"&gt;&#10;&lt;a rel="prev" href="https://static.digihunch.com/2020/10/automated-deployment-pipeline-3-of-3/"&gt;&lt;span class="wp-post-navigation-label"&gt;Previous Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Automated Deployment Pipeline 3 of 3&lt;/strong&gt;&lt;/a&gt;&#10;&lt;a rel="next" href="https://static.digihunch.com/2020/10/docker-under-the-hood/"&gt;&lt;span class="wp-post-navigation-label"&gt;Next Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Docker components&lt;/strong&gt;&lt;/a&gt;&#10;&lt;/nav&gt;&#10;</description></item><item><title>Host legacy application in Docker 1 of 2</title><link>https://static.digihunch.com/2020/09/host-legacy-application-with-docker-compose/</link><pubDate>Fri, 04 Sep 2020 16:24:00 -0400</pubDate><guid>https://static.digihunch.com/2020/09/host-legacy-application-with-docker-compose/</guid><description>&lt;p class="wp-block-paragraph"&gt;This is my notes from containerizing a legacy application with Docker &lt;a href="https://static.digihunch.com/2020/05/docker-swarm-brief-notes/"&gt;compose&lt;/a&gt;. We have to run multiple instances of our application because we&amp;#8217;re unable to secure additional VMs for this single-VM education environment. The application is target of containerization, because it requires mass reconfiguration (around TCP port) to run multiple instances of the application. We want to use the same application configuration file for multiple containers, and map the TCP port to different groups of ports on the host, leveraging port mapping in Docker. On the other hand, the auxiliary services are not being containerized, such as Cassandra database and ElasticSearch because they can be shared for multiple application instances. In other words, we use Docker to isolate processes of the same application.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-prepare-environment"&gt;Prepare environment&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The CentOS server needs to have docker-ce (through YUM) as well as docker-compose (direct download). They can be installed this way:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ sudo yum-config-manager --add-repo https://download.docker.com/linux/centos/docker-ce.repo&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ sudo yum install docker-ce docker-ce-cli containerd.io&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ curl -L &lt;span style="color:#e6db74"&gt;&amp;#34;https://github.com/docker/compose/releases/latest/download/docker-compose-&lt;/span&gt;&lt;span style="color:#66d9ef"&gt;$(&lt;/span&gt;uname -s&lt;span style="color:#66d9ef"&gt;)&lt;/span&gt;&lt;span style="color:#e6db74"&gt;-&lt;/span&gt;&lt;span style="color:#66d9ef"&gt;$(&lt;/span&gt;uname -m&lt;span style="color:#66d9ef"&gt;)&lt;/span&gt;&lt;span style="color:#e6db74"&gt;&amp;#34;&lt;/span&gt; -o /usr/local/bin/docker-compose&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ sudo chmod +x /usr/local/bin/docker-compose&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ sudo systemctl start docker&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Our Docker registry is not publicly available. So we need to port the Docker image we need to remote server and load it into the local registry. We first examine the registry locally:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ curl -XGET https://admin:password@docker.digihunch.com/v2/dhunch/tags/list | python -m json.tool&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Once we identify the image, we export it to a tar file:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ docker save docker.digihunch.com/dhunch &amp;gt; dhunch_image.tar&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;SCP the file to remote server and load it locally:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ docker load -i /home/dhunch/dhunch_image.tar&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ docker image ls&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;We need to distinguish these commands:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;&lt;strong&gt;docker save&lt;/strong&gt;: saves an (non-running) image with all layers to file&lt;/li&gt;&#10;&lt;li&gt;&lt;strong&gt;docker export&lt;/strong&gt;: saves a running or paused container to file&lt;/li&gt;&#10;&lt;li&gt;&lt;strong&gt;docker import&lt;/strong&gt;: import the contents from a tarball to create a filesystem image, most used with docker export&lt;/li&gt;&#10;&lt;li&gt;&lt;strong&gt;docker load&lt;/strong&gt;: load an image from a tar archive or STDIN, most used with docker save&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;h3 class="wp-block-heading" id="h-build-docker-compose-file"&gt;Build docker-compose file&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;I need to cater to the customer environment with a newly create docker-compose file. The customer environment includes specific storage and networking configurations. Docker compose&amp;#8217;s official documentation is &lt;a href="https://docs.docker.com/compose/compose-file/"&gt;here&lt;/a&gt;. We repeat the following commands for our troubleshooting:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ docker-compose up -d&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ docker-compose exec -it dhunch1 bash&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;$ docker container ls&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Once we start the container, the status might go unhealthy after it starts. The documentation explains two reasons you&amp;#8217;re seeing an unhealthy container:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;a single run of the command takes longer than the specified timeout&lt;/li&gt;&#10;&lt;li&gt;health check fails; the health check command will retry a number of times before it declares the container as unhealthy.&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In our case,&amp;nbsp; It is most likely because it does not pass a built-in health check mechanism. We need to understand where the health check was defined. There are four ways to enable health check:&lt;/p&gt;&#10;&lt;ol class="wp-block-list"&gt;&#10;&lt;li&gt;Dockerfile instruction when building the image&lt;/li&gt;&#10;&lt;li&gt;Docker run command&lt;/li&gt;&#10;&lt;li&gt;Docker-compose or docker stack yaml file&lt;/li&gt;&#10;&lt;li&gt;Docker service&lt;/li&gt;&#10;&lt;/ol&gt;&#10;&lt;p class="wp-block-paragraph"&gt;With #1, unfortunately, you can&amp;#8217;t reverse engineer an image and view the Dockerfile that were used to built it and review the health check statement. What you can do is check docker events, or inspect the container, and go to the log files as specified under logPath section in the inspection result and look for HealthCheck section. We determined it is the case, then we can disable, or override the built-in healthcheck command from image, with a statement in docker compose.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;For network interface, docker compose also&amp;nbsp;allows us to specify MAC address for each container with mac_address keyword (for license key). MAC address generator are available on the internet. &lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-entrypoint-vs-cmd"&gt;EntryPoint vs CMD&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The difference between EntryPoint and CMD is very important when launching container. Some literature also mentions RUN, which is only used when &lt;span style="text-decoration: underline;"&gt;building a new layer of images&lt;/span&gt; so it is not relevant here (in the context of launching a container from image). EntryPoint and CMD has similar functionalities both allowing you to specify a command to run. The &lt;span style="text-decoration: underline;"&gt;difference is whether they can be overwritten by command line arguments&lt;/span&gt; that user provide to docker-compose or docker run in an ad-hoc manner. As their names suggests, EntryPOINT means what is specified under it must be executed as it launches into the container, regardless of any adhoc commands. On the other hand, CMD is just an entry to save users from typing in a command every time they run docker compose or docker run. Should user prefer a different command, it can be provided as an explicit argument and it will be respected overwriting the pre-defined CMDentry in Dockerfile or command entry in docker-compose.yml.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Both CMD and EntryPoint supports shell and exec forms. More details &lt;a href="https://www.ctl.io/developers/blog/post/dockerfile-entrypoint-vs-cmd/"&gt;here&lt;/a&gt;.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-choice-of-networking"&gt;Choice of Networking&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;With single-host deployment, the containerized application needs to communicate with other existing, non-containerized service on host, such as database or elastic search. If docker uses host network, the container shares interface with the host and it does not have its own IP address. Host network removes isolation between container and host. This allows container to run the application that was licensed to the host based on MAC address. There is also no port mapping from container to host network. Container simply uses port on host, and is subject to the availability of TCP/UDP port on host.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;We will have to use bridge network here. We can force MAC address the app container, and pre-generate license. For container to &lt;a href="https://stackoverflow.com/questions/24319662/from-inside-of-a-docker-container-how-do-i-connect-to-the-localhost-of-the-mach"&gt;communicate with a service on host&lt;/a&gt;, through bridge network, there are two problems to address:&lt;/p&gt;&#10;&lt;ol class="wp-block-list"&gt;&#10;&lt;li&gt;Container knows the IP of the host (layer-3 connectivity, ping);&lt;/li&gt;&#10;&lt;li&gt;Making host service available to container (layer-4 connectivity, telnet);&lt;/li&gt;&#10;&lt;/ol&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Docker creates its own interface for bridge network. If it&amp;#8217;s an unnamed network, i.e. not explicitly declared under networks section in docker compose, then interface docker0 is used. If it&amp;#8217;s a named network, then an interface name starting with br- is used.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The first problem is easier to address, we simply needs to IP address of the host on the interface. We can validate by pinging from container to host. Docker can also use &lt;strong&gt;host.docker.internal &lt;/strong&gt;to reference the host. Unfortunately, this &lt;a href="https://stackoverflow.com/questions/24319662/from-inside-of-a-docker-container-how-do-i-connect-to-the-localhost-of-the-mach"&gt;stopped working for linux&lt;/a&gt; since 18.09.3.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;It is reportedly to be fixed in 20.04 and until it is available, we may add it to manual dns. The following command outputs the entry to add to /etc/hosts in container.&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#75715e"&gt;# ip -4 addr show $(basename -a /sys/class/net/* | grep ^br-) | grep -Po &amp;#39;inet \K[\d.]+&amp;#39; | awk &amp;#39;{print $1 &amp;#34; host.docker.internal&amp;#34;}&amp;#39;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;To do this automatically in docker compose, we need some tricks:&lt;/p&gt;&#10;&lt;ol class="wp-block-list"&gt;&#10;&lt;li&gt;Store the Host IP in host environment variable ( use an export command)&lt;/li&gt;&#10;&lt;li&gt;Use compose to pass host environment variable to container environment variable&lt;/li&gt;&#10;&lt;li&gt;Have the container write its environment variable to /etc/hosts&lt;/li&gt;&#10;&lt;/ol&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The compose file will contain a line like this:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;services:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; myenv1:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; image: alpine&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; command: &amp;gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; sh -c &lt;span style="color:#e6db74"&gt;&amp;#34;apk update &amp;amp;&amp;amp;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; echo &lt;/span&gt;$$&lt;span style="color:#e6db74"&gt;HostDNSLine &amp;gt;&amp;gt; /etc/hosts &amp;amp;&amp;amp;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; bash&amp;#34;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &lt;span style="color:#75715e"&gt;#network_mode: bridge&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; environment:&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; - HostDNSLine&lt;span style="color:#f92672"&gt;=&lt;/span&gt;&lt;span style="color:#e6db74"&gt;${&lt;/span&gt;HOSTDNSREC&lt;span style="color:#e6db74"&gt;}&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Note ampersand might be mistakenly displayed as &amp;amp;amp; in the above. Then we run it with the following:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#75715e"&gt;# export HOSTDNSREC=$(echo 1.2.3.4 host.docker.internal) &amp;amp;&amp;amp; docker-compose up&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;The second problem is harder to address because the service on host may not bind to docker&amp;#8217;s interface. Some services such as ssh bind to all interfaces on host and you can telnet to port 22 with any IP address the host is associated with. This is however not the case for most other services, such as Cassandra or Elastic Search. They typically only bind to main interface, such as ens192, or eth0, and not to the docker interface. In order to make the service available to container, we either need to bind these services to the docker interface, or use iptables rules as an alternative.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Suppose it is a named network and Docker&amp;#8217;s interface name is br-90ae024d5324, and the service on host listens to port 9042, we will need&amp;nbsp; the following two commands from host:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#75715e"&gt;# sysctl -w net.ipv4.conf.br-90ae024d5324.route_localnet=1&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#75715e"&gt;# iptables -t nat -A PREROUTING -p tcp -i br-90ae024d5324 --dport 9042 -j DNAT --to-destination 127.0.0.1:9042&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Note that docker compose can configure to run sysctl in container but not from host. If there are multiple ports, we can turn this into a shell script:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#75715e"&gt;#!/bin/bash&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;tcp_port_list&lt;span style="color:#f92672"&gt;=&lt;/span&gt;&lt;span style="color:#e6db74"&gt;&amp;#34;9200 9042 8302 8303 8304 8305 8306&amp;#34;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;if_name&lt;span style="color:#f92672"&gt;=&lt;/span&gt;&lt;span style="color:#66d9ef"&gt;$(&lt;/span&gt;basename -a /sys/class/net/* | grep ^br- | head -1&lt;span style="color:#66d9ef"&gt;)&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;echo enable route localnet on interface $if_name&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;sysctl -w net.ipv4.conf.$if_name.route_localnet&lt;span style="color:#f92672"&gt;=&lt;/span&gt;&lt;span style="color:#ae81ff"&gt;1&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#66d9ef"&gt;for&lt;/span&gt; tcp_port in $tcp_port_list; &lt;span style="color:#66d9ef"&gt;do&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; echo open host tcp port $tcp_port to interface $if_name&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; iptables -t nat -A PREROUTING -p tcp -i $if_name --dport $tcp_port -j DNAT --to-destination 127.0.0.1:$tcp_port&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#66d9ef"&gt;done&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;echo &lt;span style="color:#66d9ef"&gt;$(&lt;/span&gt;ip -4 addr show &lt;span style="color:#66d9ef"&gt;$(&lt;/span&gt;basename -a /sys/class/net/* | grep ^br-&lt;span style="color:#66d9ef"&gt;)&lt;/span&gt; | grep -Po &lt;span style="color:#e6db74"&gt;&amp;#39;inet \K[\d.]+&amp;#39;&lt;/span&gt; | awk &lt;span style="color:#e6db74"&gt;&amp;#39;{print $1 &amp;#34; host.docker.internal&amp;#34;}&amp;#39;&lt;/span&gt;&lt;span style="color:#66d9ef"&gt;)&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;On the other hand, binding service to multiple interfaces usually require some re-configuration on the service itself. For example, if it is Elastic Search, we need to update [network.host] entry in elasticsearch.yml to include multiple IP addresses. For Cassandra, we need to update rpc_address to 0.0.0.0 or set rpc_interface in &lt;a href="https://docs.datastax.com/en/developer/java-driver/3.0/manual/address_resolution/"&gt;cassandra.yml&lt;/a&gt;.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-integration-with-storage"&gt;Integration with storage&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The application in the container need to store files to storage available to host, whether it is an NFS share or a block disk. We can use volume mapping with Docker compose, to map a path in container to a path presented to host as persistent volume. At this step, we might run into permission issues. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;By default, containers initializes as root (uid=1) within the container, and the entrypoint script launches application as root. When application writes to persistent volume, files are written as root user. In the legacy non-container setup, we expect the application to write file as dhunch user. Moreover, NFS volume will not allow writing files as root (if the server has &lt;a href="https://en.wikipedia.org/wiki/Unix_security#Root_squash"&gt;root squash&lt;/a&gt; configured). To address this, there are two approaches:&lt;/p&gt;&#10;&lt;ol class="wp-block-list"&gt;&#10;&lt;li&gt;launch container as a regular user&lt;/li&gt;&#10;&lt;li&gt;launch container as root user, then have the entrypoint script launch application as regular user (dhunch)&lt;/li&gt;&#10;&lt;/ol&gt;&#10;&lt;p class="wp-block-paragraph"&gt;For approach 1, we need to tell Docker to launch container as a regular user by specify the uid and gid for container to run application. We can specify the following envrionment variable in the compose yaml:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;user: &lt;span style="color:#e6db74"&gt;${&lt;/span&gt;CURRENT_UID&lt;span style="color:#e6db74"&gt;}&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Then we assign the environment variable before running docker-compose:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-text" data-lang="text"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;# export CURRENT_UID=$(id -u dhunch):$(id -g dhunch) &amp;amp;amp;&amp;amp;amp; docker-compose up&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;This allows container to initialize as the regular user. However, if the entry point script needs to perform activities that requires root permission within the container, it will fail. For example, a regular user in container will not be able to update /etc/hosts;&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;With approach 2, we do not specify user in docker compose so container initializes as root. Then the entry point script launches application as regular user. For example, use su command before launch Java:&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;su dhunch -c &lt;span style="color:#e6db74"&gt;&amp;#34;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;exec java \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; -Xms512M -Xmx8192M \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; -Djava.io.tmpdir=&lt;/span&gt;$APP_HOME&lt;span style="color:#e6db74"&gt;/var/tmp \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; -server \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; -XX:CompileCommandFile=&lt;/span&gt;$APP_HOME&lt;span style="color:#e6db74"&gt;/etc/hotspot_compiler \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; -jar &lt;/span&gt;$APP_HOME&lt;span style="color:#e6db74"&gt;/lib/jar/jruby-complete-*.jar \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; --1.9 \&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt; &lt;/span&gt;$APP_HOME&lt;span style="color:#e6db74"&gt;/lib/rubybin/runapp.rb&#10;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;&lt;span style="color:#e6db74"&gt;&amp;#34;&lt;/span&gt;&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Before doing this, we need to first create user dhunch within container, and the uid and gid must match those of the host. So that when container picks up dhunch user, it converts it to the correct uid.&lt;/p&gt;&#10;&lt;div class="highlight"&gt;&lt;pre tabindex="0" style="color:#f8f8f2;background-color:#272822;-moz-tab-size:4;-o-tab-size:4;tab-size:4;-webkit-text-size-adjust:none;"&gt;&lt;code class="language-bash" data-lang="bash"&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;groupadd -g &lt;span style="color:#ae81ff"&gt;1011&lt;/span&gt; dhunch&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt;useradd -m -c &lt;span style="color:#e6db74"&gt;&amp;#39;regular user&amp;#39;&lt;/span&gt; -u &lt;span style="color:#ae81ff"&gt;1011&lt;/span&gt; -g &lt;span style="color:#ae81ff"&gt;1011&lt;/span&gt; dhunch&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;To further understand how uid and gid work,&lt;a href="https://medium.com/@mccode/understanding-how-uid-and-gid-work-in-docker-containers-c37a01d01cf"&gt; here&lt;/a&gt; are &lt;a href="https://medium.com/redbubble/running-a-docker-container-as-a-non-root-user-7d2e00f8ee15"&gt;two&lt;/a&gt; posts with more information.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;This user ownership setup will also work for NFS. To configure NFS, we need some extra client-side configurations in the container, as well as a special volume driver for NFS. Refer to &lt;a href="https://stackoverflow.com/questions/45282608/how-to-directly-mount-nfs-share-volume-in-container-using-docker-compose-v3"&gt;this&lt;/a&gt; post.&lt;/p&gt;&#10;&lt;nav class="wp-post-navigation" aria-label="Post navigation"&gt;&#10;&lt;a rel="prev" href="https://static.digihunch.com/2020/08/zookeeper/"&gt;&lt;span class="wp-post-navigation-label"&gt;Previous Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Zookeeper Summary&lt;/strong&gt;&lt;/a&gt;&#10;&lt;a rel="next" href="https://static.digihunch.com/2020/09/intro-to-big-data-projects/"&gt;&lt;span class="wp-post-navigation-label"&gt;Next Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Intro to Big Data Projects&lt;/strong&gt;&lt;/a&gt;&#10;&lt;/nav&gt;&#10;</description></item></channel></rss>