<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Docker CLI (Command Line Interface) on Digi Hunch</title><link>https://static.digihunch.com/tags/docker-cli-command-line-interface/</link><description>Recent content in Docker CLI (Command Line Interface) on Digi Hunch</description><generator>Hugo -- gohugo.io</generator><language>en-US</language><lastBuildDate>Wed, 02 Apr 2025 14:07:24 -0400</lastBuildDate><atom:link href="https://static.digihunch.com/tags/docker-cli-command-line-interface/index.xml" rel="self" type="application/rss+xml"/><item><title>Docker storage</title><link>https://static.digihunch.com/2020/11/docker-storage/</link><pubDate>Tue, 03 Nov 2020 20:22:00 -0400</pubDate><guid>https://static.digihunch.com/2020/11/docker-storage/</guid><description>&lt;p class="wp-block-paragraph"&gt;Microservices are all about stateless and ephemeral workloads, and containers are great microservices. This may suggest that that Docker is all about ephemeral storage. In fact, Docker supports both non-persistent and persistent storage, such as database, kafka, etc. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Non-persistent storage is automatically created, alongside the container and is tied to the lifecycle of the container. On Linux system, it is /var/lib/docker/ as part of container. This is referred to as local storage.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Docker has a concept of volume, which is essentially a file or a directory. Volumes are for persistent data. they are de-coupled from containers and are not tied to the lifecycle of any container. Volume allows process in docker container to bypass the default uionFS, and stores file or directory on host machine. It also allows different containers to share data. You may mount a volume to a container. even if container is deleted, volume persists.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;By default, Docker creates new volumes with the built-in local driver. Local volumes are only available to containers on the node they&amp;#8217;re created on. There are also third-party drivers as plugins that provides advanced options to integrate external storage system with Docker. (NAS, SAN, etc)&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;There are more than 25 volume plugins that you can specify with -d switch, to cover all three categories of storage&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;Block storage tends to be high performance and good for small-block random access workloads.&lt;/li&gt;&#10;&lt;li&gt;File storage is high performance, shared amongs multiple containers with NFS or SMB protocols.&lt;/li&gt;&#10;&lt;li&gt;Object storage is good for long term storage of large data blobs that do not change frequently. It is often content addressable and relatively low performance.&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Note that if you share volume with multiple containers, the application needs to worry about data collision.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;You may use docker volume create command to create volume. Note that there is no quota management within docker so the partition needs to be managed at operating system level.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Implementation of Volume&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Remember that Docker image is built on multi-layer file system. When we run a container, Docker places a read-write layer on top of the image, such that the active files in running container are all placed in this read-write layer. When container is deleted, so are the files. The file system in Docker is a pseudo file system implemented in unionFS. Volumes bypasses the uionFS and directly accesses the host file system. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;When we create a Docker volume, Docker places the volume data to /var/lib/docker/volumes and under each directory named after volume, creates a directory _data, which is attached to the corresponding container.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;You can even mount an NFS volume to container. Reference &lt;a href="https://forums.docker.com/t/nfs-mount-inside-docker-container-bypassing-the-host/77890" class="rank-math-link"&gt;here&lt;/a&gt;.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;We mentioned UnionFS a couple times so far. UnionFS is a light-weight, layered file system. It can mount the contents of multiple directories to the same directory, to form a single file system. User can use unionFS like a directory. It is the foundation of Docker image and container and enables saving of spaces.&lt;/p&gt;&#10;&lt;div class="wp-block-image"&gt;&#10;&lt;figure class="aligncenter size-large is-resized"&gt;&lt;img loading="lazy" decoding="async" width="1024" height="444" src="https://static.digihunch.com/wp-content/uploads/2024/07/unionfs-1024x444.png" alt="" class="wp-image-11424" style="width:526px;height:auto" srcset="https://static.digihunch.com/wp-content/uploads/2024/07/unionfs-1024x444.png 1024w, https://static.digihunch.com/wp-content/uploads/2024/07/unionfs-300x130.png 300w, https://static.digihunch.com/wp-content/uploads/2024/07/unionfs-768x333.png 768w, https://static.digihunch.com/wp-content/uploads/2024/07/unionfs.png 1380w" sizes="auto, (max-width: 1024px) 100vw, 1024px" /&gt;&lt;/figure&gt;&#10;&lt;/div&gt;&#10;&lt;p class="wp-block-paragraph"&gt;There are three common types of union FS: AUFS, DeviceMapper, and OverlayFS.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;AUFS file system&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;AUFS is the earliest driver that Docker uses for file system, most common in Ubuntu and Debian. To check if the system support AUFS, check out the documentation &lt;a href="https://docs.docker.com/storage/storagedriver/aufs-driver/" class="rank-math-link"&gt;here&lt;/a&gt;.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;AUFS is recommended in Ubuntu or Debian. For CentOS and Redhat, it needs to be installed and make sure the command above returns aufs. To configure AUFS, create file /etc/docker/daemon.json and add:&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-java" data-lang="java"&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:#e6db74"&gt;&amp;#34;storage-driver&amp;#34;&lt;/span&gt;:&lt;span style="color:#e6db74"&gt;&amp;#34;aufs&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;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Then restart docker service. Run &amp;#8220;docker info&amp;#8221; and examine the Storage Driver section, as documented &lt;a href="https://docs.docker.com/storage/storagedriver/aufs-driver/" class="rank-math-link"&gt;here&lt;/a&gt;. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;AUFS layers multiple directories on a single Linux host and presents them as a single directory. These directories are called branches in AUFS terminology, and layers in Docker terminology. The unification process is referred to as a union mount.&lt;/p&gt;&#10;&lt;div class="wp-block-image"&gt;&#10;&lt;figure class="aligncenter size-full is-resized"&gt;&lt;img loading="lazy" decoding="async" width="884" height="724" src="https://static.digihunch.com/wp-content/uploads/2024/07/ubuntu-layers.png" alt="" class="wp-image-11425" style="width:538px;height:auto" srcset="https://static.digihunch.com/wp-content/uploads/2024/07/ubuntu-layers.png 884w, https://static.digihunch.com/wp-content/uploads/2024/07/ubuntu-layers-300x246.png 300w, https://static.digihunch.com/wp-content/uploads/2024/07/ubuntu-layers-768x629.png 768w" sizes="auto, (max-width: 884px) 100vw, 884px" /&gt;&lt;figcaption class="wp-element-caption"&gt;Layers of a Ubuntu container&lt;/figcaption&gt;&lt;/figure&gt;&#10;&lt;/div&gt;&#10;&lt;p class="wp-block-paragraph"&gt; &lt;a href="https://docs.docker.com/storage/storagedriver/aufs-driver/#example-image-and-container-on-disk-constructs" class="rank-math-link"&gt;This section&lt;/a&gt; describes how the layers work and &lt;a href="https://docs.docker.com/storage/storagedriver/aufs-driver/#how-container-reads-and-writes-work-with-aufs" class="rank-math-link"&gt;this section&lt;/a&gt; describes how it reads and writes files (Copy-on-Write (CoW) strategy to maximize storage efficiency and minimize overhead). CoW characterized AUFS.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;AUFS has not been adopted in the Linux kernel mainline for lack of maintainability. So for CentOS, the recommended file system driver is devicemapper.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;Devicemapper file system&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Devicemapper is a technical framework to map physical block device to virtual block device, introduced since kernel 2.6.9. So it&amp;#8217;s essentially different from AUFS. The Logical Volume Manager (LVM) in Linux is also implemented based on devicemapper.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The three critical components in devicemapper are:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;mapped device: a virtual device that devicemapper provides to client&lt;/li&gt;&#10;&lt;li&gt;target device: the underlying physical device or a section of it.&lt;/li&gt;&#10;&lt;li&gt;map table: keeps track of the offset, range, etc between mapped and target devices.&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Devicemapper uses target driver to block, filter, and forward I/O requests (e.g. Raid, encryption, think provisioning, etc). In thin provisioning, storage driver only assigns spaces that are needed. Docker uses snapshot technology in thin provisioning. This &lt;a class="rank-math-link" href="https://docs.docker.com/storage/storagedriver/device-mapper-driver/#how-the-devicemapper-storage-driver-works"&gt;part of the documentation&lt;/a&gt; provides further details as to how device mapper works.&lt;/p&gt;&#10;&lt;div class="wp-block-image"&gt;&#10;&lt;figure class="aligncenter size-large is-resized"&gt;&lt;img loading="lazy" decoding="async" width="854" height="1024" src="https://static.digihunch.com/wp-content/uploads/2025/04/ubuntu-busybox-layer-854x1024.webp" alt="" class="wp-image-13114" style="width:539px;height:auto" srcset="https://static.digihunch.com/wp-content/uploads/2025/04/ubuntu-busybox-layer-854x1024.webp 854w, https://static.digihunch.com/wp-content/uploads/2025/04/ubuntu-busybox-layer-250x300.webp 250w, https://static.digihunch.com/wp-content/uploads/2025/04/ubuntu-busybox-layer-768x921.webp 768w, https://static.digihunch.com/wp-content/uploads/2025/04/ubuntu-busybox-layer.webp 1046w" sizes="auto, (max-width: 854px) 100vw, 854px" /&gt;&lt;figcaption class="wp-element-caption"&gt;Ubuntu and busybox image layers&lt;/figcaption&gt;&lt;/figure&gt;&#10;&lt;/div&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Devicemapper has to modes:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&#10;&lt;li&gt;loop-lvm: in dev and test environment&lt;/li&gt;&#10;&lt;li&gt;direct-lvm: recommended in production&lt;/li&gt;&#10;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Here is the performance &lt;a href="https://docs.docker.com/storage/storagedriver/device-mapper-driver/#device-mapper-and-docker-performance" class="rank-math-link"&gt;best practice&lt;/a&gt;. To configure devicemapper, create /etc/docker/daemon.json file and add:&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;{&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;storage-driver&amp;#34;:&amp;#34;devicemapper&amp;#34;&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;storage-opts&amp;#34;:[&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;dm.directlvm_device=/dev/xdf&amp;#34;,&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;dm.thinp_percent=95&amp;#34;,&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;dm.thinp_metapercent=1&amp;#34;,&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;dm.thinp_autoextend_threshold=80&amp;#34;,&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;dm.thinp_autoextend_percent=20&amp;#34;,&#10;&lt;/span&gt;&lt;/span&gt;&lt;span style="display:flex;"&gt;&lt;span&gt; &amp;#34;dm.directlvm_device_force=false&amp;#34;&#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;}&#10;&lt;/span&gt;&lt;/span&gt;&lt;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Then restart docker service. Run &amp;#8220;docker info&amp;#8221; and examine the Storage Driver section to ensure direct-lvm mode is on. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Since devicemapper uses block device to store files, it is faster than directly operate on file system. It is adopted as default driver as unionFS for a long time, ensuring stable performance under Red Hat and CentOS.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading"&gt;OverlayFS file system&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Earlier versions of OverlayFS (known as overlay driver) is not stable. Later version is known as overlay2, which is very stable and recommended in overlay2. It requires:&lt;/p&gt;&#10;&lt;ol class="wp-block-list"&gt;&#10;&lt;li&gt;Docker version higher than 17.06.02;&lt;/li&gt;&#10;&lt;li&gt;Kernel version higher than 3.10.0-514 for CentOS and RHEL; or higher than 4.0 for other distributions of Linux;&lt;/li&gt;&#10;&lt;li&gt;Using with xfs file system with d_type turned on&lt;/li&gt;&#10;&lt;/ol&gt;&#10;&lt;p class="wp-block-paragraph"&gt;In production environment, it is recommended to moutn /var/lib/docker to separate disk or partition, to prevent the directory getting full from impacting the host OS. The option pquota is recommended for mounting options in /etc/fstab.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;To configure storage driver, create file /etc/docker/daemon.json, with the following content:&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-java" data-lang="java"&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:#e6db74"&gt;&amp;#34;storage-driver&amp;#34;&lt;/span&gt;:&lt;span style="color:#e6db74"&gt;&amp;#34;overlay2&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:#e6db74"&gt;&amp;#34;storage-opts&amp;#34;&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:#e6db74"&gt;&amp;#34;overlay2.size=20G&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:#e6db74"&gt;&amp;#34;overlay2.override_kernel_check=true&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:#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;/code&gt;&lt;/pre&gt;&lt;/div&gt;&lt;p class="wp-block-paragraph"&gt;Then restart docker service. Run &amp;#8220;docker info&amp;#8221; and examine the Storage Driver section to ensure storage driver is overlay2 and d_type is true.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;The way overlay2 works is similar to AUFS, involving union mount process, with lowerdir, upperdir and merged. More details are &lt;a href="https://docs.docker.com/storage/storagedriver/overlayfs-driver/#how-the-overlay2-driver-works" class="rank-math-link"&gt;here&lt;/a&gt;, including &lt;a href="https://docs.docker.com/storage/storagedriver/overlayfs-driver/#how-the-overlay-driver-works" class="rank-math-link"&gt;how overlay2 works&lt;/a&gt; with file read and file write (e.g. CopyOnWrite).&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Today, overlay2 driver is officially recommended by Docker for its stability and performance, it should be used if all the conditions are met.&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/docker-under-the-hood/"&gt;&lt;span class="wp-post-navigation-label"&gt;Previous Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Docker components&lt;/strong&gt;&lt;/a&gt;&#10;&lt;a rel="next" href="https://static.digihunch.com/2020/11/medical-imaging-web-server-deployment-pipeline/"&gt;&lt;span class="wp-post-navigation-label"&gt;Next Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Automatic deployment of Orthanc on AWS&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><item><title>Virtualization 3 of 4 – Containers</title><link>https://static.digihunch.com/2020/08/virtualization-3-of-3-containers/</link><pubDate>Tue, 18 Aug 2020 20:44:35 -0400</pubDate><guid>https://static.digihunch.com/2020/08/virtualization-3-of-3-containers/</guid><description>&lt;p class="wp-block-paragraph"&gt;In broad terms, virtualization of computing resource is about isolation of resources at different levels. We have covered hypervisor-based virtualization in the &lt;a href="https://static.digihunch.com/2020/07/overview-of-virtualization/"&gt;other&lt;/a&gt; post. In this article, we continue to dive into OS level virtualization.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Remember again that the gist of virtualization is isolation of resource. To support OS level virtualization, the OS must have its own capability to isolate computing resource. There are many implementations of &lt;a href="https://en.wikipedia.org/wiki/OS-level_virtualization"&gt;OS level virtualization&lt;/a&gt;.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Linux Kernel provides low-level mechanisms some two kernel features(namespaces, cgroups and chroot) for building various lightweight tools that can virtualize the system environment. Docker is such framework that builds on chroot namespaces and cgroups.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-chroot"&gt;Chroot&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Traditionally, root directory (/) is the top directory shared amongst all processes in the OS. There was a chroot() system call that allows each process to have its own idea of root directory. A chroot is an operation that changes the apparent root directory(/) for the current running process and their children. A program that is run in such a modified environment cannot access files and commands outside that environmental directory tree. This modified environment is called a &lt;strong&gt;chroot jail&lt;/strong&gt;. By separating a process using chroot() we ensure security by restricting the process from accessing outside its environment (breaking the jail). This short &lt;a href="https://www.youtube.com/watch?v=2wSJREC7RV8"&gt;video&lt;/a&gt; is a great lab.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Although chroot() has a basic idea of isolation, it simply modifies pathname lookups for a process and its children (by prepending the new root path to any name starting with /). Relative paths can still refer any locations outside of the new root. So chroot() does not intend to defend against intentional tampering by privileged users.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-namespace-isolation"&gt;Namespace Isolation&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Namespaces are fundamentally the mechanisms to abstract, isolate, and limit the visibility that a group of processes has over various system entities such as process trees, network interfaces, user IDs and file system mounts. So there are several categories of namespaces:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&lt;li&gt;Mount namespaces &amp;#8211; traditionally, there is one global mount namespace seen by all processes. The mount namespaces confine the set of filesystem mount points visible within a process namespace, enabling one process group in a mount namespace to have an exclusive view of the filesystem list, compared to another process.&lt;/li&gt;&lt;li&gt;UTS namespaces &amp;#8211; allows isolation of hostname per namespace. Each namespace can have its own hostname on the network&lt;/li&gt;&lt;li&gt;User namespaces &amp;#8211; allow a process to use unique user and group IDs&lt;/li&gt;&lt;li&gt;Cgroup namespaces &amp;#8211; processes inside a &lt;a href="https://man7.org/linux/man-pages/man7/cgroup_namespaces.7.html"&gt;cgroup namespace&lt;/a&gt; are only able to view paths relative to their namespace root.&lt;/li&gt;&lt;li&gt;IPC namespaces &amp;#8211; isolates the System V inter-process communication between namespaces, as well as POSIX message queues within each namespace. POSIX message queue allow process to exchange data in the form of messsages.&lt;/li&gt;&lt;li&gt;PID namespaces &amp;#8211; traditionally, *nix kernels spawn the init process with PID 1 during system boot, which in turn starts other user-mode process and is considered the root of the process tree (all the other processes start below this process in the tree). The PID namespace allows a process to spin off a new tree of processes under it with its own root process (PID=1). PID namespaces isolate process ID numbers, and allow duplication of PID numbers across different PID namespaces. The process IDs only needs to be unique within a PID namespace, and are assigned sequentially starting with PID 1. PID namespaces are used in containers.&lt;/li&gt;&lt;li&gt;Network namespaces &amp;#8211; traditionally, all processes in the entire OS share a single set of network interfaces and routing table entries. The routing table entries can be modified at operating system level. With network namespace, this assumption is no longer valid. Network namespace provides abstraction and virtualization of network protocol and interfaces. Each network namespace will have its own network device instances that can be configured with individual network addresses. Other network services, such as routing table, port number, are isolated as well.&lt;/li&gt;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Namespaces are created with the &amp;#8220;&lt;em&gt;unshare&lt;/em&gt;&amp;#8221; command or syscall, or as new flags in a &lt;em&gt;&lt;a href="https://man7.org/linux/man-pages/man2/clone.2.html"&gt;clone&lt;/a&gt;()&lt;/em&gt; syscall. The flags are listed here in the &lt;a href="https://man7.org/linux/man-pages/man7/namespaces.7.html"&gt;man&lt;/a&gt; page for namespace. Note that the &lt;em&gt;clone()&lt;/em&gt; syscall is a more generic implementation of &lt;em&gt;fork()&lt;/em&gt; syscall.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-cgroup"&gt;Cgroup&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;cgroups is a Linux kernel feature that limits, accounts for, and isolates the resource usage (CPU, memory, disk I/O, network, etc) of a collection of processes (not to be confused with process group, which has its own meaning). Cgroup has two versions. The control groups functionality (version 1) was merged into Linux kernel mainline in version 2.6.24, released in 2008, and version 2 in kernel 4.5 (March 2016), with significant changes to the interface and internal functionality.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Using cgroups, you can allocate resources such as CPU time, network and memory. Similiar to the process model in Linux, where each process is a child to a parent and relatively descends from the init process thus forming a single-tree like structure, cgroups are hierarchical, where child cgroups inherit the attributes of the parent, but what makes it different is that multiple cgroup hierarchies can exist within a single system, with each having distinct resource prerogatives.&lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Applying cgroups on namespaces results in isolation of processes into containers within a system, where resources are managed distinctly. Each container is a lightweight virtual machine, all of which run as individual entities and are oblivious of other entities within the same system.&lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-container-implementation"&gt;Container Implementation&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Above we covered some kernel features that enables container technology. There are many ways to use these technologies to implement the isolation. We call them container runtime. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;&lt;a href="https://en.wikipedia.org/wiki/LXC"&gt;LXC&lt;/a&gt; is a user space interface for those Linux kernel containment features. It allows for running isolated containers on a control host using a single kernel. Users can launch a system init for each containers, also referred to as virtual environment (as opposed to virtual machines). The author of this &lt;a href="https://www.upguard.com/blog/docker-vs-lxc"&gt;article&lt;/a&gt; regard LXC as a suprcharged chroot on Linux. LXC has rest API tool called LXD. LXC was targeting sysadmin&amp;#8217;s use cases (not developer) to isolate users&amp;#8217; own private workloads from one another. In early days Docker was built on LXC. &lt;/p&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Docker&amp;#8217;s target market is developers, and it moved beyond LXC with its own execution environment called &lt;em&gt;&lt;strong&gt;libcontainer&lt;/strong&gt;&lt;/em&gt;. With the initial success of Docker, a large community (Docker, CoreOS, Google, etc) emerged around the idea of using containers as the standard unit of software delivery. They started the Open Container Initiative (OCI) to define industry standards around container runtime (runtime spec) and image format (image spec). Docker &lt;a href="https://opencontainers.org/faq/#what-has-docker-done-to-help-create-this-foundation"&gt;donated&lt;/a&gt; the &lt;a href="https://github.com/docker-archive/libcontainer"&gt;libcontainer&lt;/a&gt; codebase to run independently under OCI, as &lt;a href="https://github.com/opencontainers/runc"&gt;runc&lt;/a&gt;. Docker implements isolation using the following technologies:&lt;/p&gt;&#10;&lt;ul class="wp-block-list"&gt;&lt;li&gt;Namespace: to isolate process ID, networking, mount points, IPC, host and domain name;&lt;/li&gt;&lt;li&gt;Cgroups: to isolate the usage of CPU and memory between containers&lt;/li&gt;&lt;li&gt;UnionFS: isolate file system&lt;/li&gt;&lt;/ul&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Another container runtime technology is &lt;a href="https://en.wikipedia.org/wiki/OpenVZ"&gt;OpenVZ&lt;/a&gt;, which includes an extension of the Linux kernel. It uses container for entire operating systems (not just application and processes). All OpenVZ containers have to share the same Linux kernel version as host. The &lt;a href="https://wiki.aquasec.com/display/containers/Docker+Alternatives+-+Rkt%2C+LXD%2C+OpenVZ%2C+Linux+VServer%2C+Windows+Containers"&gt;adoption&lt;/a&gt; of OpenVZ is not high.&lt;/p&gt;&#10;&lt;figure class="wp-block-table is-style-stripes"&gt;&lt;table class="has-background" style="background-color:#e9fbe5"&gt;&lt;tbody&gt;&lt;tr&gt;&lt;td&gt;Framework&lt;/td&gt;&lt;td&gt;Runtime implementation&lt;/td&gt;&lt;td&gt;Management tool&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;LXC&lt;/td&gt;&lt;td&gt;libvert&lt;br&gt;LXC&lt;/td&gt;&lt;td&gt;LXD (rest API)&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;OCI&lt;/td&gt;&lt;td&gt;Docker&amp;#8217;s runc&lt;br&gt;CoreOS&amp;#8217;s rtk&lt;/td&gt;&lt;td&gt;docker engine (daemon and cli)&lt;br&gt;rtk cli&lt;/td&gt;&lt;/tr&gt;&lt;/tbody&gt;&lt;/table&gt;&lt;figcaption&gt;container runtimes&lt;/figcaption&gt;&lt;/figure&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Docker is now widely adopted for application hosting in production environment. &lt;/p&gt;&#10;&lt;h3 class="wp-block-heading" id="h-container-and-cloud"&gt;Container and Cloud&lt;/h3&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Public cloud vendors also has &lt;a href="https://logz.io/blog/aws-eks-vs-ecs-vs-fargate-understand-differences/"&gt;managed services&lt;/a&gt; around Docker. Here are some examples:&lt;/p&gt;&#10;&lt;figure class="wp-block-table is-style-stripes"&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;Managed Container&lt;/strong&gt;&lt;/td&gt;&lt;td&gt;&lt;strong&gt;Image Registry&lt;/strong&gt;&lt;/td&gt;&lt;td&gt;&lt;strong&gt;Managed Orchestration&lt;/strong&gt;&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;AWS&lt;/td&gt;&lt;td&gt;Elastic Container Service&lt;/td&gt;&lt;td&gt;Elastic Container Registry&lt;/td&gt;&lt;td&gt;Elastic Kubernetes Services&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;Azure&lt;/td&gt;&lt;td&gt;Container Instances&lt;/td&gt;&lt;td&gt;Container Registry&lt;/td&gt;&lt;td&gt;Azure Kubernetes Service&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;GCP&lt;/td&gt;&lt;td&gt;CloudRun&lt;/td&gt;&lt;td&gt;Container Registry&lt;/td&gt;&lt;td&gt;Google Kubernetes Engine&lt;/td&gt;&lt;/tr&gt;&lt;tr&gt;&lt;td&gt;Digital Ocean&lt;/td&gt;&lt;td&gt;N/A&lt;/td&gt;&lt;td&gt;Container Registry&lt;/td&gt;&lt;td&gt;Kubernetes&lt;/td&gt;&lt;/tr&gt;&lt;/tbody&gt;&lt;/table&gt;&lt;figcaption&gt;Container services from public cloud&lt;/figcaption&gt;&lt;/figure&gt;&#10;&lt;p class="wp-block-paragraph"&gt;Cloud service was originally developed with VM as a unit of computing resource to service. OS level virtualization allows container to be a unit of computing resource. All these new technologies breed the serverless architecture and cloud-native deployment model. This has significant impact on the creation and delivery of software services. The &lt;a href="https://landscape.cncf.io/"&gt;cloud native landscape&lt;/a&gt; page illustrates more tools around containers.&lt;br&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/2020/08/cloud-storage-overview/"&gt;&lt;span class="wp-post-navigation-label"&gt;Previous Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Cloud storage overview&lt;/strong&gt;&lt;/a&gt;&#10;&lt;a rel="next" href="https://static.digihunch.com/2020/08/virtualization-4-of-4-networking/"&gt;&lt;span class="wp-post-navigation-label"&gt;Next Post&lt;/span&gt;&lt;strong class="wp-post-navigation-title"&gt;Virtualization 4 of 4 – Networking&lt;/strong&gt;&lt;/a&gt;&#10;&lt;/nav&gt;&#10;</description></item></channel></rss>