ruby/root/help.1
Pavel Valena 5cd1e59d71 Upgrade to Ruby 2.7.
created from upstream commit: 9c8f75084ec39957bca57da8c9e178855baa31ea
2020-12-08 15:11:40 +01:00

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7.7 KiB
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.TH Ruby 2.7 container image
.PP
This container image includes Ruby 2.7 as a S2I
\[la]https://github.com/openshift/source-to-image\[ra] base image for your Ruby 2.7 applications.
Users can choose between RHEL, CentOS and Fedora based builder images.
The RHEL images are available in the Red Hat Container Catalog
\[la]https://access.redhat.com/containers/\[ra],
the CentOS images are available on Docker Hub
\[la]https://hub.docker.com/r/centos/\[ra],
and the Fedora images are available in Fedora Registry
\[la]https://registry.fedoraproject.org/\[ra]\&.
The resulting image can be run using podman
\[la]https://github.com/containers/libpod\[ra]\&.
.PP
Note: while the examples in this README are calling \fB\fCpodman\fR, you can replace any such calls by \fB\fCdocker\fR with the same arguments
.SH Description
.PP
Ruby 2.7 available as container is a base platform for
building and running various Ruby 2.7 applications and frameworks.
Ruby is the interpreted scripting language for quick and easy object\-oriented programming.
It has many features to process text files and to do system management tasks (as in Perl).
It is simple, straight\-forward, and extensible.
.PP
This container image includes an npm utility, so users can use it to install JavaScript
modules for their web applications. There is no guarantee for any specific npm or nodejs
version, that is included in the image; those versions can be changed anytime and
the nodejs itself is included just to make the npm work.
.SH Usage
.PP
For this, we will assume that you are using the \fB\fCubi8/ruby\-27 image\fR, available via \fB\fCruby:2.7\fR imagestream tag in Openshift.
Building a simple ruby\-sample\-app
\[la]https://github.com/sclorg/s2i-ruby-container/tree/master/2.7/test/puma-test-app\[ra] application
in Openshift can be achieved with the following step:
.PP
.RS
.nf
```
$ oc new\-app ruby:2.7\~https://github.com/sclorg/s2i\-ruby\-container.git \-\-context\-dir=2.7/test/puma\-test\-app/
```
.fi
.RE
.PP
The same application can also be built using the standalone S2I
\[la]https://github.com/openshift/source-to-image\[ra] application on systems that have it available:
.PP
.RS
.nf
```
$ s2i build https://github.com/sclorg/s2i\-ruby\-container.git \-\-context\-dir=2.7/test/puma\-test\-app/ ubi8/ruby\-27 ruby\-sample\-app
```
.fi
.RE
.PP
\fBAccessing the application:\fP
.PP
.RS
.nf
$ curl 127.0.0.1:8080
.fi
.RE
.SH Environment variables
.PP
To set these environment variables, you can place them as a key value pair into a \fB\fC\&.s2i/environment\fR
file inside your source code repository.
.RS
.IP \(bu 2
\fBRACK\_ENV\fPThis variable specifies the environment where the Ruby application will be deployed (unless overwritten) \- \fB\fCproduction\fR, \fB\fCdevelopment\fR, \fB\fCtest\fR\&.
Each level has different behaviors in terms of logging verbosity, error pages, ruby gem installation, etc.\fBNote\fP: Application assets will be compiled only if the \fB\fCRACK\_ENV\fR is set to \fB\fCproduction\fR
.IP \(bu 2
\fBDISABLE\_ASSET\_COMPILATION\fPThis variable set to \fB\fCtrue\fR indicates that the asset compilation process will be skipped. Since this only takes place
when the application is run in the \fB\fCproduction\fR environment, it should only be used when assets are already compiled.
.IP \(bu 2
\fBPUMA\_MIN\_THREADS\fP, \fBPUMA\_MAX\_THREADS\fPThese variables indicate the minimum and maximum threads that will be available in Puma
\[la]https://github.com/puma/puma\[ra]\&'s thread pool.
.IP \(bu 2
\fBPUMA\_WORKERS\fPThis variable indicate the number of worker processes that will be launched. See documentation on Puma's clustered mode
\[la]https://github.com/puma/puma#clustered-mode\[ra]\&.
.IP \(bu 2
\fBRUBYGEM\_MIRROR\fPSet this variable to use a custom RubyGems mirror URL to download required gem packages during build process.
.RE
.SH Hot deploy
.PP
In order to dynamically pick up changes made in your application source code, you need to make following steps:
.RS
.IP \(bu 2
\fBFor Ruby on Rails applications\fPRun the built Rails image with the \fB\fCRAILS\_ENV=development\fR environment variable passed to the podman
\[la]https://github.com/containers/libpod\[ra] \fB\fC\-e\fR run flag:
.PP
.RS
.nf
$ podman run \-e RAILS\_ENV=development \-p 8080:8080 rails\-app
.fi
.RE
.IP \(bu 2
\fBFor other types of Ruby applications (Sinatra, Padrino, etc.)\fPYour application needs to be built with one of gems that reloads the server every time changes in source code are done inside the running container. Those gems are:
.RS
.IP \(bu 2
Shotgun
\[la]https://github.com/rtomayko/shotgun\[ra]
.IP \(bu 2
Rerun
\[la]https://github.com/alexch/rerun\[ra]
.IP \(bu 2
Rack\-livereload
\[la]https://github.com/johnbintz/rack-livereload\[ra]
.RE
Please note that in order to be able to run your application in development mode, you need to modify the S2I run script
\[la]https://github.com/openshift/source-to-image#anatomy-of-a-builder-image\[ra], so the web server is launched by the chosen gem, which checks for changes in the source code.After you built your application image with your version of S2I run script
\[la]https://github.com/openshift/source-to-image#anatomy-of-a-builder-image\[ra], run the image with the RACK\_ENV=development environment variable passed to the podman
\[la]https://github.com/containers/libpod\[ra] \-e run flag:
.PP
.RS
.nf
$ podman run \-e RACK\_ENV=development \-p 8080:8080 sinatra\-app
.fi
.RE
.RE
.PP
To change your source code in running container, use Podman's exec
\[la]https://github.com/containers/libpod\[ra] command:
.PP
.RS
.nf
$ podman exec \-it <CONTAINER\_ID> /bin/bash
.fi
.RE
.PP
After you podman exec
\[la]https://github.com/containers/libpod\[ra] into the running container, your current
directory is set to \fB\fC/opt/app\-root/src\fR, where the source code is located.
.SH Performance tuning
.PP
You can tune the number of threads per worker using the
\fB\fCPUMA\_MIN\_THREADS\fR and \fB\fCPUMA\_MAX\_THREADS\fR environment variables.
Additionally, the number of worker processes is determined by the number of CPU
cores that the container has available, as recommended by
Puma
\[la]https://github.com/puma/puma\[ra]\&'s documentation. This is determined using
the cgroup cpusets
\[la]https://www.kernel.org/doc/Documentation/cgroup-v1/cpusets.txt\[ra]
subsystem. You can specify the cores that the container is allowed to use by passing
the \fB\fC\-\-cpuset\-cpus\fR parameter to the podman
\[la]https://github.com/containers/libpod\[ra] run command:
.PP
.RS
.nf
$ podman run \-e PUMA\_MAX\_THREADS=32 \-\-cpuset\-cpus='0\-2,3,5' \-p 8080:8080 sinatra\-app
.fi
.RE
.PP
The number of workers is also limited by the memory limit that is enforced using
cgroups. The builder image assumes that you will need 50 MiB as a base and
another 15 MiB for every worker process plus 128 KiB for each thread. Note that
each worker has its own threads, so the total memory required for the whole
container is computed using the following formula:
.PP
.RS
.nf
50 + 15 * WORKERS + 0.125 * WORKERS * PUMA\_MAX\_THREADS
.fi
.RE
.PP
You can specify a memory limit using the \fB\fC\-\-memory\fR flag:
.PP
.RS
.nf
$ podman run \-e PUMA\_MAX\_THREADS=32 \-\-memory=300m \-p 8080:8080 sinatra\-app
.fi
.RE
.PP
If memory is more limiting then the number of available cores, the number of
workers is scaled down accordingly to fit the above formula. The number of
workers can also be set explicitly by setting \fB\fCPUMA\_WORKERS\fR\&.
.SH See also
.PP
Dockerfile and other sources are available on https://github.com/sclorg/s2i\-ruby\-container.
In that repository you also can find another versions of Ruby environment Dockerfiles.
Dockerfile for CentOS is called \fB\fCDockerfile\fR, Dockerfile for RHEL7 is called \fB\fCDockerfile.rhel7\fR,
for RHEL8 it's \fB\fCDockerfile.rhel8\fR and the Fedora Dockerfile is called Dockerfile.fedora.