* test(bpmn): event subprocesses, dormant and listener-backed (#7933) Both flavours, and the three responsibilities the host has for them. The production diff is empty: the applier and binder need no event-subprocess code path, which is what #7909 measured and what this pins. A dormant catcher -- error or escalation -- rides the FaultSignal seam and the escalation signal path, and reaches the host as an ordinary StartWork for its body. A listener-backed one gets a second StartWork for its listenerBindingRef at scope start and a CancelWorkSubtree for it when the scope completes. Both already apply like any other command. The host responsibilities, each with the failure it would otherwise hide: - The listener is armed at scope start and observable in the scope's own ledger before anything fires, not inferred from a fire that worked. - A completing scope retires a still-armed listener. Pinned twice: at the root, where Elsa's own container completion would cancel the child regardless and only the scope's ledger tells the two apart, and inside a subprocess the workflow outlives, where a listener left behind is one something could still resume into. - The start-element hint reaches the body and nothing else inherits it. The body's only start event is event-defined, so a body that never received the hint faults bpmn.start.none-available rather than starting somewhere plausible; the ordinary subprocess inside it faults bpmn.start.unresolved-hint if the hint travels where it must not. The scope's invocation correlation is read back after the body has run work of its own, because the dictionary is fixed for the scope's lifetime and the hint is read from it. - A non-interrupting listener fired twice re-arms onto the slot the first fire vacated, holding one live record and one bookmark at a time. This is the case the completed-work-removed-before-the-interpreter-is-asked ordering exists for, and it is now observable; BpmnHostInvariantTests points at it. The library's declaration rules are pinned as refusals rather than gaps: a body with more than one start event, a second error-triggered event subprocess in a scope, and a non-interrupting error event subprocess are each refused when the scope builds its graph, before any work starts. The last is additionally dropped at import, with the rest of the document reading as written -- the dropped body carries an undeclared serviceTask, so an import that still succeeds is what proves the drop took its bindings with it. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> * test(bpmn): pin the catch-all escalation event subprocess refusal Two error-triggered event subprocesses per scope was pinned but its sibling rule -- at most one code-less catch-all escalation event subprocess -- had no test. Add TwoCatchAllEscalationEventSubprocesses_AreRefused, mirroring the error refusal test, and let Escalation() build a code-less definition. Also record in BpmnCommandApplier why CancelSubtreeAsync's explicit subtree cancellation is redundant on the scope-completion path (Elsa's own container-completion behaviour already covers it) while the ledger removal above it is not, so a future reader does not "simplify" the ledger removal away. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> --------- Co-authored-by: Claude Opus 5 <noreply@anthropic.com> |
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|---|---|---|
| .agents/skills | ||
| .claude/skills | ||
| .config | ||
| .github | ||
| .nuke | ||
| .specify | ||
| .vscode | ||
| announcements | ||
| build | ||
| design | ||
| doc | ||
| docker | ||
| docs | ||
| gen | ||
| scripts | ||
| specs | ||
| src | ||
| test | ||
| .editorconfig | ||
| .gitignore | ||
| AGENTS.md | ||
| build.cmd | ||
| build.ps1 | ||
| build.sh | ||
| CLAUDE.md | ||
| CONTEXT.md | ||
| CONTRIBUTING.md | ||
| Directory.Build.props | ||
| Directory.Build.targets | ||
| Directory.Packages.props | ||
| dotnet-install.sh | ||
| Elsa.sln | ||
| Elsa.sln.DotSettings | ||
| icon.png | ||
| jordi-delay-bookmark-reply.md | ||
| LICENSE | ||
| NuGet.Config | ||
| pau-delay-dispatch-response.md | ||
| README.md | ||
| ROADMAP.md | ||
| run-dsl-tests.sh | ||
| test-flowchart.txt | ||
| test-simple-flowchart.elsa | ||
Elsa Workflows
For Elsa 2, Click Here
Introduction
Elsa is a powerful workflow library that enables workflow execution within any .NET application. Elsa allows you to define workflows in various ways, including:
- Writing C# code
- Using a visual designer
- Specifying workflows in JSON
Try with Docker
To give the Elsa Studio + Elsa Server a quick spin, you can run the following command to start the Elsa Docker container:
docker pull elsaworkflows/elsa-server-and-studio-v3:latest
docker run -t -i -e ASPNETCORE_ENVIRONMENT='Development' -e HTTP_PORTS=8080 -e HTTP__BASEURL=http://localhost:13000 -p 13000:8080 elsaworkflows/elsa-server-and-studio-v3:latest
This Docker image is based on a reference ASP.NET application that hosts both the workflow server and designer and is not intended for production use.
For any non-development deployment, inject a secure random JWT signing key through environment variables or a secrets manager instead of using committed appsettings values. For code-first hosts such as Elsa.Server.Web, set Identity__Tokens__SigningKey. For shell-based hosts, set the shell feature key, for example CShells__Shells__Default__Features__Identity__SigningKey.
By default, you can access http://localhost:13000 and log in with:
Username: admin
Password: password
TLS and custom certificate authorities
All Elsa Docker images now ship with the operating system's certificate authority bundle baked in at build time. This means you can call public HTTPS endpoints such as https://example.com without any additional configuration.
If you need to trust a private or corporate CA, mount the certificate bundle into the container and reference it via EXTRA_CA_CERT:
docker run \
-v /path/to/company-ca.crt:/certs/company-ca.crt:ro \
-e EXTRA_CA_CERT=/certs/company-ca.crt \
elsaworkflows/elsa-server-and-studio-v3:latest
On startup, the container copies the certificate into /usr/local/share/ca-certificates and runs update-ca-certificates, making the trust available to .NET, OpenSSL, curl, and other system components. Multiple certificates can be provided by pointing EXTRA_CA_CERT at a directory containing .crt or .pem files.
In highly restricted environments where you cannot modify the system trust store, you can instead rely on the standard SSL_CERT_FILE or SSL_CERT_DIR environment variables:
docker run \
-v /path/to/company-ca-bundle.pem:/certs/custom.pem:ro \
-e SSL_CERT_FILE=/certs/custom.pem \
elsaworkflows/elsa-server-and-studio-v3:latest
ℹ️ Installing the CA bundle adds roughly 300KB to the Debian-based images. No package managers run at container startup; all trust updates happen immutably at build time or via the mounted certificates shown above.
Table of Contents
- Documentation
- Known Issues and Limitations
- Features
- Roadmap
- Use Cases
- Coding Workflows
- Designed Workflows
- Contributing
- Support
Documentation
Known Issues and Limitations
Elsa is continually evolving, and while it offers powerful capabilities, there are some known limitations and ongoing work:
- Documentation is still a work in progress.
- Input/Output is not yet implemented in the Workflow Instance Viewer.
- Starting workflows from the designer is currently supported only for workflows that do not require input and do not start with a trigger; this is planned for a future release.
- The designer currently only supports Flowchart activities. Support for Sequence and StateMachine activities is planned for a future release.
- UI input validation is not yet implemented.
Features
Elsa offers a wide range of features for building and executing workflows, including:
- Execution of workflows in any .NET application with support for .NET 6 and beyond.
- Support for both short-running and long-running workflows.
- A programming model loosely inspired by Windows Workflow Foundation.
- A web-based drag & drop designer with support for custom activities.
- Native support for activity composition, including activities like
Sequence,Flowchart, andForEach. - Parallel execution of activities.
- Built-in activities for common scenarios, such as sending emails, making HTTP calls, scheduling tasks, sending and receiving messages, and more.
- Workflow versioning and migration via API.
- Easy integration with external applications via HTTP, message queues, and more.
- Actor model for increased workflow throughput.
- Dynamic expressions with support for C#, JavaScript, Python, and Liquid.
- Persistence agnostic, with support for Entity Framework Core, MongoDB, and Dapper out of the box.
- Elsa Studio: a modular Blazor dashboard app for managing and designing workflows.
Roadmap
See ROADMAP.md for the current roadmap and #3232 for historical roadmap discussion.
Use Cases
Elsa can be used in a variety of scenarios, including:
- Long-running workflows such as order fulfillment and product approval.
- Short-running workflows such as sending emails and generating PDFs.
- Scheduled workflows such as sending daily reports.
- Event-driven workflows such as sending welcome emails when a user signs up.
Coding Workflows
Elsa allows you to define workflows in code using C#. The following example shows how to receive HTTP requests and send an email in response:
public class SendEmailWorkflow : WorkflowBase
{
protected override void Build(IWorkflowBuilder builder)
{
builder.Root = new Sequence
{
Activities =
{
new HttpEndpoint
{
Path = new("/send-email"),
SupportedMethods = new(new[] { HttpMethods.Post }),
CanStartWorkflow = true
},
new SendEmail
{
From = new("alic@acme.com"),
To = new(new[]{ "bob@acme.com" }),
Subject = new("Your workflow has been triggered!"),
Body = new("Hello!")
}
}
};
}
}
Designing Workflows
Elsa allows you to define workflows using a visual designer. The following example shows how to receive HTTP requests and send an email in response:
Contributing
We welcome contributions from the community and are pleased that you are interested in helping to improve the Elsa Workflow project! Here are the steps to contribute to our project:
1. Fork and Clone the Repo
To get started, you'll need to fork the repository to your own GitHub account. You can do this by navigating to the Elsa Workflow GitHub repository and clicking the "Fork" button in the top-right corner of the page. Once you have forked the repo, you can clone it to your local machine using the following command:
git clone https://github.com/YOUR_USERNAME/elsa-core.git
Replace YOUR_USERNAME with your GitHub username. For more information on forking a repo, check out the GitHub documentation here.
Incorporating the details about the "apps" folder and its projects into the second point about opening the Elsa.sln using your favorite IDE, we can expand the instructions to guide developers on where to start and what projects they might want to explore first. Here's an updated version of that section with the additional information:
2. Open Elsa.sln Using Your Favorite IDE
After cloning the repository, navigate to the cloned directory and open the Elsa.sln solution file with your preferred IDE that supports .NET development, such as Visual Studio, JetBrains Rider, or Visual Studio Code with the appropriate extensions.
Within the solution, you will find an "apps" folder containing three projects designed to help you get started and explore the capabilities of Elsa Workflow:
-
Elsa.Server.Web: This project is a reference ASP.NET Core application that acts as a workflow server. It's a great starting point if you want to understand how Elsa functions as a server-side workflow engine.
-
Elsa.ServerAndStudio.Web: This project serves a dual purpose. Like
Elsa.Server.Web, it acts as a workflow server. Additionally, it hosts the Elsa Studio Blazor WebAssembly app. This is the perfect project to run if you want to see the full capabilities of Elsa, including both the server aspects and the client-side studio experience in one application. -
Elsa.Studio.Web: This project is a reference Blazor WebAssembly application that solely hosts the Elsa Studio Blazor WebAssembly app. It requires a running Elsa server application to connect to. Use this project if you're interested in focusing on the Elsa Studio UI and its interactions with an Elsa workflow server.
3. Submit a PR with Your Changes
Once you have made your changes, commit them and push them back to your fork. Then, navigate to the original Elsa Workflow repository and create a new Pull Request. Ensure your PR description clearly describes the changes and any relevant information that will help the reviewers understand your contributions. For a detailed guide on creating a pull request, visit Creating a pull request from a fork.
4. Open an Issue First
Before you start working on your changes or submit a pull request, please open an issue to discuss what you would like to do. This step is crucial as it ensures you don't spend time working on something that might not align with the project's goals or might already be under development by someone else. You can open an issue here.
This approach helps us streamline contributions and ensures that your efforts are aligned with the project's needs and priorities. We look forward to your contributions and are here to support you throughout the process. Thank you for contributing to the Elsa Workflow project!
Support
There are various ways to get support for Elsa Workflows, ranging from community-driven channels to enterprise-level services.
Community Support
Elsa has an active and helpful community where you can find support through multiple channels:
- GitHub Issues for bug reports and feature requests.
- GitHub Discussions for open-ended conversations, questions, and community-driven support.
- Discord for real-time support and interaction with the Elsa community.
- StackOverflow for searching or asking technical questions.
Professional Support
For organizations requiring professional support and long-term commitment, check out Elsa+, a growing ecosystem of premium services, tooling, and extensions around Elsa Workflows.


