FerroEHR

Projects that follow the best practices below can voluntarily self-certify and show that they've achieved an Open Source Security Foundation (OpenSSF) best practices badge.

There is no set of practices that can guarantee that software will never have defects or vulnerabilities; even formal methods can fail if the specifications or assumptions are wrong. Nor is there any set of practices that can guarantee that a project will sustain a healthy and well-functioning development community. However, following best practices can help improve the results of projects. For example, some practices enable multi-person review before release, which can both help find otherwise hard-to-find technical vulnerabilities and help build trust and a desire for repeated interaction among developers from different companies. To earn a badge, all MUST and MUST NOT criteria must be met, all SHOULD criteria must be met OR be unmet with justification, and all SUGGESTED criteria must be met OR unmet (we want them considered at least). If you want to enter justification text as a generic comment, instead of being a rationale that the situation is acceptable, start the text block with '//' followed by a space. Feedback is welcome via the GitHub site as issues or pull requests There is also a mailing list for general discussion.

We gladly provide the information in several locales, however, if there is any conflict or inconsistency between the translations, the English version is the authoritative version.
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These are the Passing level criteria. You can also view the Silver or Gold level criteria.

Baseline Series: Baseline Level 1 Baseline Level 2 Baseline Level 3

        

 Basics 13/13

  • General

    Note that other projects may use the same name.

    A pure-Rust, openEHR-conformant Clinical Data Repository (CDR). It implements the openEHR ITS-REST 1.1.0 API and the AQL 1.1 query language over PostgreSQL 18, and ships as a single static binary with no JVM and no runtime dependencies. The openEHR specification layer is generated from the official machine-readable specifications, and every conformance claim is machine-verified: each release runs a 1049-case conformance catalogue against the live server and generates its own Conformance Statement and Certificate.

    Please use SPDX license expression format; examples include "Apache-2.0", "BSD-2-Clause", "BSD-3-Clause", "GPL-2.0+", "LGPL-3.0+", "MIT", and "(BSD-2-Clause OR Ruby)". Do not include single quotes or double quotes.
    If there is more than one language, list them as comma-separated values (spaces optional) and sort them from most to least used. If there is a long list, please list at least the first three most common ones. If there is no language (e.g., this is a documentation-only or test-only project), use the single character "-". Please use a conventional capitalization for each language, e.g., "JavaScript".
    The Common Platform Enumeration (CPE) is a structured naming scheme for information technology systems, software, and packages. It is used in a number of systems and databases when reporting vulnerabilities.

    Conformance is measured rather than asserted. The repository contains a CNF 2.0
    conformance runner that drives the catalogue against a composed deployment and
    computes the openEHR profile verdicts as pure functions of the run records; the
    committed artifacts under docs/conformance/ are the baseline, and it only ratchets
    upward. The current record is 1014 of 1014 cases passing, with CORE, STANDARD,
    OPTIONS and SEC-BASIC all PASS.

    The project has one maintainer. Where a criterion depends on a second person, that
    is stated plainly rather than worked around.

  • Basic project website content


    The project website MUST succinctly describe what the software does (what problem does it solve?). [description_good]
    This MUST be in language that potential users can understand (e.g., it uses minimal jargon).

    The README and the documentation site both open with a plain-language statement of
    the problem and the solution: openEHR separates clinical knowledge from software,
    and FerroEHR implements that standard natively in Rust as a headless, API-first
    Clinical Data Repository. https://ferroehr.eu/ and https://github.com/rubentalstra/FerroEHR#readme



    The project website MUST provide information on how to: obtain, provide feedback (as bug reports or enhancements), and contribute to the software. [interact]

    Obtain: the Quick start section of the README and the Installation chapter cover
    Docker Compose, Helm/Kubernetes and from-source builds
    (https://ferroehr.eu/docs/latest/installation/). Feedback: GitHub Issues
    (https://github.com/rubentalstra/FerroEHR/issues), with security reports routed
    separately by SECURITY.md. Contribute: CONTRIBUTING.md
    (https://github.com/rubentalstra/FerroEHR/blob/develop/CONTRIBUTING.md).



    The information on how to contribute MUST explain the contribution process (e.g., are pull requests used?) (URL required) [contribution]
    We presume that projects on GitHub use issues and pull requests unless otherwise noted. This information can be short, e.g., stating that the project uses pull requests, an issue tracker, or posts to a mailing list (which one?)

    Non-trivial contribution file in repository: https://github.com/rubentalstra/FerroEHR/blob/develop/CONTRIBUTING.md.



    The information on how to contribute SHOULD include the requirements for acceptable contributions (e.g., a reference to any required coding standard). (URL required) [contribution_requirements]

    CONTRIBUTING.md has an explicit "The gates (every PR must pass all of them)"
    section listing the exact commands — cargo nextest run --workspace, cargo test
    --doc, cargo clippy --workspace --all-targets --all-features -- -D warnings,
    cargo fmt --all --check — followed by a "Hard rules" section that includes never
    weakening, skipping or deleting a test to make a build pass. The same gates run in
    CI, so the requirements are enforced rather than advisory.
    https://github.com/rubentalstra/FerroEHR/blob/develop/CONTRIBUTING.md


  • FLOSS license


    The software produced by the project MUST be released as FLOSS. [floss_license]
    FLOSS is software released in a way that meets the Open Source Definition or Free Software Definition. Examples of such licenses include the CC0, MIT, BSD 2-clause, BSD 3-clause revised, Apache 2.0, Lesser GNU General Public License (LGPL), and the GNU General Public License (GPL). For our purposes, this means that the license MUST be: The software MAY also be licensed other ways (e.g., "GPLv2 or proprietary" is acceptable).

    MIT, for all of the project's own code. Vendored third-party material keeps its upstream terms (Apache-2.0 for the openEHR machine-readable artifacts, CC-BY-SA 3.0 for the openEHR specification text and CKM-derived clinical models), each recorded in the relevant PROVENANCE.md with the upstream LICENSE vendored alongside. No required component is non-FLOSS.



    It is SUGGESTED that any required license(s) for the software produced by the project be approved by the Open Source Initiative (OSI). [floss_license_osi]
    The OSI uses a rigorous approval process to determine which licenses are OSS.

    MIT is on the Open Source Initiative's approved list and meets both the Open Source Definition and the Free Software Definition.



    The project MUST post the license(s) of its results in a standard location in their source repository. (URL required) [license_location]
    One convention is posting the license as a top-level file named LICENSE or COPYING, which MAY be followed by an extension such as ".txt" or ".md". An alternative convention is to have a directory named LICENSES containing license file(s); these files are typically named as their SPDX license identifier followed by an appropriate file extension, as described in the REUSE Specification. Note that this criterion is only a requirement on the source repository. You do NOT need to include the license file when generating something from the source code (such as an executable, package, or container). For example, when generating an R package for the Comprehensive R Archive Network (CRAN), follow standard CRAN practice: if the license is a standard license, use the standard short license specification (to avoid installing yet another copy of the text) and list the LICENSE file in an exclusion file such as .Rbuildignore. Similarly, when creating a Debian package, you may put a link in the copyright file to the license text in /usr/share/common-licenses, and exclude the license file from the created package (e.g., by deleting the file after calling dh_auto_install). We encourage including machine-readable license information in generated formats where practical.

    LICENSE at the repository root, recognised by GitHub as MIT. The two vendored-material
    licences sit beside it as LICENSE-APACHE-2.0 and LICENSE-CC-BY-SA-3.0.
    https://github.com/rubentalstra/FerroEHR/blob/develop/LICENSE


  • Documentation


    The project MUST provide basic documentation for the software produced by the project. [documentation_basics]
    This documentation must be in some media (such as text or video) that includes: how to install it, how to start it, how to use it (possibly with a tutorial using examples), and how to use it securely (e.g., what to do and what not to do) if that is an appropriate topic for the software. The security documentation need not be long. The project MAY use hypertext links to non-project material as documentation. If the project does not produce software, choose "not applicable" (N/A).

    A full documentation site at https://ferroehr.eu/ built from website/book in the
    repository: installation (Compose, Kubernetes/Helm, from source), a complete
    configuration reference, concepts, using the API, operations, and security.



    The project MUST provide reference documentation that describes the external interface (both input and output) of the software produced by the project. [documentation_interface]
    The documentation of an external interface explains to an end-user or developer how to use it. This would include its application program interface (API) if the software has one. If it is a library, document the major classes/types and methods/functions that can be called. If it is a web application, define its URL interface (often its REST interface). If it is a command-line interface, document the parameters and options it supports. In many cases it's best if most of this documentation is automatically generated, so that this documentation stays synchronized with the software as it changes, but this isn't required. The project MAY use hypertext links to non-project material as documentation. Documentation MAY be automatically generated (where practical this is often the best way to do so). Documentation of a REST interface may be generated using Swagger/OpenAPI. Code interface documentation MAY be generated using tools such as JSDoc (JavaScript), ESDoc (JavaScript), pydoc (Python), devtools (R), pkgdown (R), and Doxygen (many). Merely having comments in implementation code is not sufficient to satisfy this criterion; there needs to be an easy way to see the information without reading through all the source code. If the project does not produce software, choose "not applicable" (N/A).

    The REST surface has a generated OpenAPI reference at https://ferroehr.eu/api/,
    and the running server serves its own OpenAPI document plus a Swagger UI at
    /ferroehr/rest/swagger-ui. The document is generated from the handlers themselves,
    so it cannot drift from the implementation. The configuration reference documents
    every input key and its environment-variable spelling:
    https://ferroehr.eu/docs/latest/installation/configuration.html


  • Other


    The project sites (website, repository, and download URLs) MUST support HTTPS using TLS. [sites_https]
    This requires that the project home page URL and the version control repository URL begin with "https:", not "http:". You can get free certificates from Let's Encrypt. Projects MAY implement this criterion using (for example) GitHub pages, GitLab pages, or SourceForge project pages. If you support HTTP, we urge you to redirect the HTTP traffic to HTTPS.

    https://ferroehr.eu/ and https://github.com/rubentalstra/FerroEHR are both HTTPS.
    Releases are served over HTTPS by GitHub; container images and the Helm chart over
    HTTPS by GHCR.



    The project MUST have one or more mechanisms for discussion (including proposed changes and issues) that are searchable, allow messages and topics to be addressed by URL, enable new people to participate in some of the discussions, and do not require client-side installation of proprietary software. [discussion]
    Examples of acceptable mechanisms include archived mailing list(s), GitHub issue and pull request discussions, Bugzilla, Mantis, and Trac. Asynchronous discussion mechanisms (like IRC) are acceptable if they meet these criteria; make sure there is a URL-addressable archiving mechanism. Proprietary JavaScript, while discouraged, is permitted.

    GitHub Issues: searchable, every issue and comment has its own URL, open to new participants, and usable from any browser with no proprietary client. Pull requests carry the design discussion for each change.



    The project SHOULD provide documentation in English and be able to accept bug reports and comments about code in English. [english]
    English is currently the lingua franca of computer technology; supporting English increases the number of different potential developers and reviewers worldwide. A project can meet this criterion even if its core developers' primary language is not English.

    All documentation, code comments, issues and commit messages are in English.



    The project MUST be maintained. [maintained]
    As a minimum, the project should attempt to respond to significant problem and vulnerability reports. A project that is actively pursuing a badge is probably maintained. All projects and people have limited resources, and typical projects must reject some proposed changes, so limited resources and proposal rejections do not by themselves indicate an unmaintained project.

    When a project knows that it will no longer be maintained, it should set this criterion to "Unmet" and use the appropriate mechanism(s) to indicate to others that it is not being maintained. For example, use “DEPRECATED” as the first heading of its README, add “DEPRECATED” near the beginning of its home page, add “DEPRECATED” to the beginning of its code repository project description, add a no-maintenance-intended badge in its README and/or home page, mark it as deprecated in any package repositories (e.g., npm deprecate), and/or use the code repository's marking system to archive it (e.g., GitHub's "archive" setting, GitLab’s "archived" marking, Gerrit's "readonly" status, or SourceForge’s "abandoned" project status). Additional discussion can be found here.

    Actively developed with multiple merged pull requests per day, a release cadence of days (3.16.0 through 3.17.3 within weeks), and an open issue tracker used as the working worklist rather than a backlog. Note for the reviewer: the OpenSSF Scorecard reports Maintained as 0 for this repository, and its stated reason is "project was created within the last 90 days" — a new-repository caution, not an inactivity finding.


 Change Control 9/9

  • Public version-controlled source repository


    The project MUST have a version-controlled source repository that is publicly readable and has a URL. [repo_public]
    The URL MAY be the same as the project URL. The project MAY use private (non-public) branches in specific cases while the change is not publicly released (e.g., for fixing a vulnerability before it is revealed to the public).

    The project's source repository MUST track what changes were made, who made the changes, and when the changes were made. [repo_track]

    git. Every commit is additionally required to be cryptographically signed: the
    develop branch ruleset carries a required_signatures rule, so an unsigned commit
    cannot land.



    To enable collaborative review, the project's source repository MUST include interim versions for review between releases; it MUST NOT include only final releases. [repo_interim]
    Projects MAY choose to omit specific interim versions from their public source repositories (e.g., ones that fix specific non-public security vulnerabilities, may never be publicly released, or include material that cannot be legally posted and are not in the final release).

    develop carries the full commit history between releases, not squashed release drops. Every change lands as its own reviewable commit with a descriptive message, and pull requests remain open for inspection after merge.



    It is SUGGESTED that common distributed version control software be used (e.g., git) for the project's source repository. [repo_distributed]
    Git is not specifically required and projects can use centralized version control software (such as subversion) with justification.

    Repository on GitHub, which uses git. git is distributed.


  • Unique version numbering


    The project results MUST have a unique version identifier for each release intended to be used by users. [version_unique]
    This MAY be met in a variety of ways including a commit IDs (such as git commit id or mercurial changeset id) or a version number (including version numbers that use semantic versioning or date-based schemes like YYYYMMDD).

    Each release is a unique SemVer version, tagged vX.Y.Z, and the workspace version in Cargo.toml is bumped in the release pull request. The release workflow refuses a tag that has no matching CHANGELOG.md section, so a version cannot be published without its own entry.



    It is SUGGESTED that the Semantic Versioning (SemVer) or Calendar Versioning (CalVer) version numbering format be used for releases. It is SUGGESTED that those who use CalVer include a micro level value. [version_semver]
    Projects should generally prefer whatever format is expected by their users, e.g., because it is the normal format used by their ecosystem. Many ecosystems prefer SemVer, and SemVer is generally preferred for application programmer interfaces (APIs) and software development kits (SDKs). CalVer tends to be used by projects that are large, have an unusually large number of independently-developed dependencies, have a constantly-changing scope, or are time-sensitive. It is SUGGESTED that those who use CalVer include a micro level value, because including a micro level supports simultaneously-maintained branches whenever that becomes necessary. Other version numbering formats may be used as version numbers, including git commit IDs or mercurial changeset IDs, as long as they uniquely identify versions. However, some alternatives (such as git commit IDs) can cause problems as release identifiers, because users may not be able to easily determine if they are up-to-date. The version ID format may be unimportant for identifying software releases if all recipients only run the latest version (e.g., it is the code for a single website or internet service that is constantly updated via continuous delivery).


    It is SUGGESTED that projects identify each release within their version control system. For example, it is SUGGESTED that those using git identify each release using git tags. [version_tags]

    Every release is a git tag vX.Y.Z on the release merge commit.


  • Release notes


    The project MUST provide, in each release, release notes that are a human-readable summary of major changes in that release to help users determine if they should upgrade and what the upgrade impact will be. The release notes MUST NOT be the raw output of a version control log (e.g., the "git log" command results are not release notes). Projects whose results are not intended for reuse in multiple locations (such as the software for a single website or service) AND employ continuous delivery MAY select "N/A". (URL required) [release_notes]
    The release notes MAY be implemented in a variety of ways. Many projects provide them in a file named "NEWS", "CHANGELOG", or "ChangeLog", optionally with extensions such as ".txt", ".md", or ".html". Historically the term "change log" meant a log of every change, but to meet these criteria what is needed is a human-readable summary. The release notes MAY instead be provided by version control system mechanisms such as the GitHub Releases workflow.

    CHANGELOG.md follows Keep a Changelog 1.1.0 with Added / Changed / Deprecated /
    Removed / Fixed / Security sections, written for the end user rather than as
    commit prose. It is enforced, not optional: a CI changelog-guard job fails any
    pull request with user-visible changes and no [Unreleased] entry, and the release
    workflow publishes the GitHub Release from the matching changelog section and
    fails if that section is missing. These are curated notes, not version-control log
    output.
    https://github.com/rubentalstra/FerroEHR/blob/develop/CHANGELOG.md



    The release notes MUST identify every publicly known run-time vulnerability fixed in this release that already had a CVE assignment or similar when the release was created. This criterion may be marked as not applicable (N/A) if users typically cannot practically update the software themselves (e.g., as is often true for kernel updates). This criterion applies only to the project results, not to its dependencies. If there are no release notes or there have been no publicly known vulnerabilities, choose N/A. [release_notes_vulns]
    This criterion helps users determine if a given update will fix a vulnerability that is publicly known, to help users make an informed decision about updating. If users typically cannot practically update the software themselves on their computers, but must instead depend on one or more intermediaries to perform the update (as is often the case for a kernel and low-level software that is intertwined with a kernel), the project may choose "not applicable" (N/A) instead, since this additional information will not be helpful to those users. Similarly, a project may choose N/A if all recipients only run the latest version (e.g., it is the code for a single website or internet service that is constantly updated via continuous delivery). This criterion only applies to the project results, not its dependencies. Listing the vulnerabilities of all transitive dependencies of a project becomes unwieldy as dependencies increase and vary, and is unnecessary since tools that examine and track dependencies can do this in a more scalable way.

    No publicly known vulnerability (CVE-assigned or equivalent) in FerroEHR's own code has been fixed in any release to date, so there is nothing for the release notes to identify. The criterion's own guidance says to choose N/A when there have been no publicly known vulnerabilities. Security-relevant hardening is recorded in the changelog's Security and Fixed sections regardless.


 Reporting 8/8

  • Bug-reporting process


    The project MUST provide a process for users to submit bug reports (e.g., using an issue tracker or a mailing list). (URL required) [report_process]

    GitHub Issues, open to anyone. Security reports go through the separate private
    process in SECURITY.md.
    https://github.com/rubentalstra/FerroEHR/issues



    The project SHOULD use an issue tracker for tracking individual issues. [report_tracker]

    GitHub Issues is the project's authoritative worklist, not a side-channel: each issue carries a contract with acceptance criteria, work is linked back to it, and milestones are the release spine.



    The project MUST acknowledge a majority of bug reports submitted in the last 2-12 months (inclusive); the response need not include a fix. [report_responses]

    Every issue filed has received a substantive response and a triage decision; none is sitting unacknowledged. In candour: the project is young and single-maintainer, so most issues to date were filed by the maintainer from audits and conformance runs. Those still receive an explicit adjudication — implemented, or closed with the reason — rather than accumulating silently.



    The project SHOULD respond to a majority (>50%) of enhancement requests in the last 2-12 months (inclusive). [enhancement_responses]
    The response MAY be 'no' or a discussion about its merits. The goal is simply that there be some response to some requests, which indicates that the project is still alive. For purposes of this criterion, projects need not count fake requests (e.g., from spammers or automated systems). If a project is no longer making enhancements, please select "unmet" and include the URL that makes this situation clear to users. If a project tends to be overwhelmed by the number of enhancement requests, please select "unmet" and explain.

    Same as report_responses: every enhancement request has an answer. Where one is
    declined, the reason is recorded on the issue rather than left to lapse.



    The project MUST have a publicly available archive for reports and responses for later searching. (URL required) [report_archive]

    The GitHub Issues archive is public, searchable, and includes closed issues with
    their full discussion. Pull request discussions remain public after merge.
    https://github.com/rubentalstra/FerroEHR/issues?q=is%3Aissue


  • Vulnerability report process


    The project MUST publish the process for reporting vulnerabilities on the project site. (URL required) [vulnerability_report_process]
    Projects hosted on GitHub SHOULD consider enabling privately reporting a security vulnerability. Projects on GitLab SHOULD consider using its ability for privately reporting a vulnerability. Projects MAY identify a mailing address on https://PROJECTSITE/security, often in the form security@example.org. This vulnerability reporting process MAY be the same as its bug reporting process. Vulnerability reports MAY always be public, but many projects have a private vulnerability reporting mechanism.

    SECURITY.md documents the reporting route, what a reporter can expect, safe
    harbour, and credit. It is also published machine-readably as a security.txt per
    RFC 9116 at https://ferroehr.eu/.well-known/security.txt
    https://github.com/rubentalstra/FerroEHR/blob/develop/SECURITY.md



    If private vulnerability reports are supported, the project MUST include how to send the information in a way that is kept private. (URL required) [vulnerability_report_private]
    Examples include a private defect report submitted on the web using HTTPS (TLS) or an email encrypted using OpenPGP. If vulnerability reports are always public (so there are never private vulnerability reports), choose "not applicable" (N/A).

    GitHub private vulnerability reporting is enabled on the repository (verified), so
    a reporter can open a private advisory directly from the Security tab without
    exposing details. SECURITY.md documents this as the preferred route.
    https://github.com/rubentalstra/FerroEHR/security/advisories/new



    The project's initial response time for any vulnerability report received in the last 6 months MUST be less than or equal to 14 days. [vulnerability_report_response]
    If there have been no vulnerabilities reported in the last 6 months, choose "not applicable" (N/A).

    No vulnerability report has been received in the last 6 months, so there is no response time to measure. The published commitment in SECURITY.md is an acknowledgement within 5 working days — inside the 14-day requirement — with an assessment within a further 10 days.


 Quality 13/13

  • Working build system


    If the software produced by the project requires building for use, the project MUST provide a working build system that can automatically rebuild the software from source code. [build]
    A build system determines what actions need to occur to rebuild the software (and in what order), and then performs those steps. For example, it can invoke a compiler to compile the source code. If an executable is created from source code, it must be possible to modify the project's source code and then generate an updated executable with those modifications. If the software produced by the project depends on external libraries, the build system does not need to build those external libraries. If there is no need to build anything to use the software after its source code is modified, select "not applicable" (N/A).

    cargo. cargo build --workspace builds everything from source; the release
    artifacts are built by cargo build --release --locked -p ferroehr-server in CI.
    The toolchain is pinned by rust-toolchain.toml so a build is reproducible in the
    sense that matters: everyone compiles with the same compiler.



    It is SUGGESTED that common tools be used for building the software. [build_common_tools]
    For example, Maven, Ant, cmake, the autotools, make, rake (Ruby), or devtools (R).

    cargo, the standard Rust build tool, with no wrapper build system. Container images build with a standard Dockerfile; the Helm chart with helm.



    The project SHOULD be buildable using only FLOSS tools. [build_floss_tools]

    The entire toolchain is FLOSS: the Rust compiler and cargo, PostgreSQL 18 for the integration tests, Docker/BuildKit for images. No proprietary tool is required to build, test or release.


  • Automated test suite


    The project MUST use at least one automated test suite that is publicly released as FLOSS (this test suite may be maintained as a separate FLOSS project). The project MUST clearly show or document how to run the test suite(s) (e.g., via a continuous integration (CI) script or via documentation in files such as BUILD.md, README.md, or CONTRIBUTING.md). [test]
    The project MAY use multiple automated test suites (e.g., one that runs quickly, vs. another that is more thorough but requires special equipment). There are many test frameworks and test support systems available, including Selenium (web browser automation), Junit (JVM, Java), RUnit (R), testthat (R).

    4410 automated tests run by cargo-nextest, plus a 1049-case openEHR conformance
    catalogue driven against a live composed server. All of it is in the repository
    under the project's MIT licence. How to run it is documented in CONTRIBUTING.md's
    "The gates" section (cargo nextest run --workspace) and executed by the CI
    workflow on every pull request.



    A test suite SHOULD be invocable in a standard way for that language. [test_invocation]
    For example, "make check", "mvn test", or "rake test" (Ruby).

    cargo test --workspace works; the project's preferred runner is
    cargo nextest run --workspace, which is the standard third-party Rust test
    runner. Both are ordinary cargo invocations with no bespoke harness.



    It is SUGGESTED that the test suite cover most (or ideally all) the code branches, input fields, and functionality. [test_most]

    Measured line coverage is 49.6% (cargo-llvm-cov, published as a badge from CI), so
    claiming "most" of the code would be false and this is answered Unmet rather than
    rounded up.

    What that number does not capture, stated for context rather than as an excuse:
    the 1049-case conformance catalogue exercises the wire surface against a live
    server in a separate process, and coverage instrumentation does not attribute it
    to the code it drives. The catalogue's own coverage mandate is stricter than a
    percentage — every operation, status-code branch, required header, content
    negotiation variant and error family must have its own isolated case, and a
    spec-defined behaviour with no case is a tracked gap rather than an acceptable
    omission. Raising instrumented coverage is ordinary tracked work.



    It is SUGGESTED that the project implement continuous integration (where new or changed code is frequently integrated into a central code repository and automated tests are run on the result). [test_continuous_integration]

    GitHub Actions runs the full gate set on every pull request and every push to
    develop: build and test against real PostgreSQL 18, clippy with -D warnings,
    rustfmt, rustdoc with -D warnings, MSRV verification, cargo-deny, coverage,
    codegen drift, browser end-to-end tests, and an aggregate conclusion job.
    https://github.com/rubentalstra/FerroEHR/actions/workflows/ci.yml


  • New functionality testing


    The project MUST have a general policy (formal or not) that as major new functionality is added to the software produced by the project, tests of that functionality should be added to an automated test suite. [test_policy]
    As long as a policy is in place, even by word of mouth, that says developers should add tests to the automated test suite for major new functionality, select "Met."

    CONTRIBUTING.md states it as a hard rule, and it is enforced in two directions: new functionality lands with tests, and a test may never be weakened, skipped or deleted to make a build pass, nor edited to route around a bug it exposes. For the conformance surface the rule is stronger — coverage only ratchets upward, and a wire behaviour the specification defines with no covering case is a gap to close.



    The project MUST have evidence that the test_policy for adding tests has been adhered to in the most recent major changes to the software produced by the project. [tests_are_added]
    Major functionality would typically be mentioned in the release notes. Perfection is not required, merely evidence that tests are typically being added in practice to the automated test suite when new major functionality is added to the software produced by the project.

    Recent examples, each visible in the history: the XML reader's nesting bound and
    DOCTYPE refusal landed with six asserted-refusal tests
    (crates/openehr-its/tests/it/xml_hostile_input.rs); the error-source-chaining
    change landed with a test that provokes a real database failure, walks the error
    chain, downcasts to the concrete driver error, and asserts the rendered HTTP body
    discloses none of it (app/ferroehr-rest/tests/it/error_chain.rs); an authorization
    change landed with three new conformance cases plus an exhaustive role-by-route
    matrix. Test count has risen with every release.



    It is SUGGESTED that this policy on adding tests (see test_policy) be documented in the instructions for change proposals. [tests_documented_added]
    However, even an informal rule is acceptable as long as the tests are being added in practice.

    It is in CONTRIBUTING.md's "Hard rules" section, which is the instructions for change proposals.


  • Warning flags


    The project MUST enable one or more compiler warning flags, a "safe" language mode, or use a separate "linter" tool to look for code quality errors or common simple mistakes, if there is at least one FLOSS tool that can implement this criterion in the selected language. [warnings]
    Examples of compiler warning flags include gcc/clang "-Wall". Examples of a "safe" language mode include JavaScript "use strict" and perl5's "use warnings". A separate "linter" tool is simply a tool that examines the source code to look for code quality errors or common simple mistakes. These are typically enabled within the source code or build instructions.

    Three layers. The compiler: a workspace lint table with rustc lints including
    missing_docs and missing_debug_implementations, and unsafe_code = "forbid" — no
    unsafe code anywhere, unconditionally. The linter: clippy with clippy::all and
    clippy::pedantic denied, plus roughly forty individually denied lints covering
    panics, indexing, integer casts, iteration determinism and error hygiene. Rust's
    safe mode is the default and unsafe is forbidden outright.



    The project MUST address warnings. [warnings_fixed]
    These are the warnings identified by the implementation of the warnings criterion. The project should fix warnings or mark them in the source code as false positives. Ideally there would be no warnings, but a project MAY accept some warnings (typically less than 1 warning per 100 lines or less than 10 warnings).

    CI runs clippy with -D warnings and rustdoc with RUSTDOCFLAGS="-D warnings", so a single warning fails the build and cannot be merged. There is no warning backlog because a warning cannot land.



    It is SUGGESTED that projects be maximally strict with warnings in the software produced by the project, where practical. [warnings_strict]
    Some warnings cannot be effectively enabled on some projects. What is needed is evidence that the project is striving to enable warning flags where it can, so that errors are detected early.

    clippy::pedantic at deny (not warn) is already beyond common practice, alongside
    unsafe_code = "forbid", denied panicking APIs including unwrap/expect/panic!/
    indexing/string slicing, a banned-API list enforced at compile time
    (SystemTime::now, std::env::var, Uuid::new_v4, chrono), and every suppression
    required to carry a reason. Release builds additionally set overflow-checks = true
    so integer overflow panics rather than silently wrapping into a wrong clinical
    value.


 Security 16/16

  • Secure development knowledge


    The project MUST have at least one primary developer who knows how to design secure software. (See ‘details’ for the exact requirements.) [know_secure_design]
    This requires understanding the following design principles, including the 8 principles from Saltzer and Schroeder:
    • economy of mechanism (keep the design as simple and small as practical, e.g., by adopting sweeping simplifications)
    • fail-safe defaults (access decisions should deny by default, and projects' installation should be secure by default)
    • complete mediation (every access that might be limited must be checked for authority and be non-bypassable)
    • open design (security mechanisms should not depend on attacker ignorance of its design, but instead on more easily protected and changed information like keys and passwords)
    • separation of privilege (ideally, access to important objects should depend on more than one condition, so that defeating one protection system won't enable complete access. E.G., multi-factor authentication, such as requiring both a password and a hardware token, is stronger than single-factor authentication)
    • least privilege (processes should operate with the least privilege necessary)
    • least common mechanism (the design should minimize the mechanisms common to more than one user and depended on by all users, e.g., directories for temporary files)
    • psychological acceptability (the human interface must be designed for ease of use - designing for "least astonishment" can help)
    • limited attack surface (the attack surface - the set of the different points where an attacker can try to enter or extract data - should be limited)
    • input validation with allowlists (inputs should typically be checked to determine if they are valid before they are accepted; this validation should use allowlists (which only accept known-good values), not denylists (which attempt to list known-bad values)).
    A "primary developer" in a project is anyone who is familiar with the project's code base, is comfortable making changes to it, and is acknowledged as such by most other participants in the project. A primary developer would typically make a number of contributions over the past year (via code, documentation, or answering questions). Developers would typically be considered primary developers if they initiated the project (and have not left the project more than three years ago), have the option of receiving information on a private vulnerability reporting channel (if there is one), can accept commits on behalf of the project, or perform final releases of the project software. If there is only one developer, that individual is the primary developer. Many books and courses are available to help you understand how to develop more secure software and discuss design. For example, the Secure Software Development Fundamentals course is a free set of three courses that explain how to develop more secure software (it's free if you audit it; for an extra fee you can earn a certificate to prove you learned the material).

    The design applies least privilege (four operation classes with role gating; a
    separate read-only role; database roles split so the runtime DSN need not own
    DDL), defence in depth (authentication, then EHR_ACCESS, then RBAC, then optional
    ABAC, then optional SMART scopes, each able only to narrow what the previous
    allowed), fail-closed defaults (an unreachable token issuer is 503 rather than an
    allow; a policy engine error is a 500, never a permit; an unconfigured resource
    kind denies), simplicity in the security-relevant parts (one configuration root,
    one authentication middleware, no hand-rolled cryptography), and input validation
    against a whitelist derived from the openEHR specifications rather than a blacklist.
    The threat model and the design are documented in
    https://ferroehr.eu/docs/latest/security.html



    At least one of the project's primary developers MUST know of common kinds of errors that lead to vulnerabilities in this kind of software, as well as at least one method to counter or mitigate each of them. [know_common_errors]
    Examples (depending on the type of software) include SQL injection, OS injection, classic buffer overflow, cross-site scripting, missing authentication, and missing authorization. See the CWE/SANS top 25 or OWASP Top 10 for commonly used lists. Many books and courses are available to help you understand how to develop more secure software and discuss common implementation errors that lead to vulnerabilities. For example, the Secure Software Development Fundamentals course is a free set of three courses that explain how to develop more secure software (it's free if you audit it; for an extra fee you can earn a certificate to prove you learned the material).

    The repository is auditable evidence rather than an assertion. SQL injection: no string-built SQL; parameterised queries and sea-query builders, with a CI gate that fails a pull request introducing string-built SQL. Cross-site scripting and CSRF: the API is JSON/XML with no HTML rendering, plus a strict Content-Security- Policy and a per-response header set. Denial of service: per-route body limits, an AQL result ceiling and statement timeout, connection-level slow-header and HTTP/2 stream bounds, and a two-tier rate limiter. XXE and entity expansion: DOCTYPE refused outright and a nesting bound on the XML reader. Credential handling: Argon2id at the OWASP parameter floor, secrets in a non-rendering wrapper type with file-based delivery, and a CI gate that fails a 5xx response body carrying an internal error value. The hardening programme is documented against the OWASP Cheat Sheet Series, one tracked issue per cheat sheet.


  • Use basic good cryptographic practices

    Note that some software does not need to use cryptographic mechanisms. If your project produces software that (1) includes, activates, or enables encryption functionality, and (2) might be released from the United States (US) to outside the US or to a non-US-citizen, you may be legally required to take a few extra steps. Typically this just involves sending an email. For more information, see the encryption section of Understanding Open Source Technology & US Export Controls.

    The software produced by the project MUST use, by default, only cryptographic protocols and algorithms that are publicly published and reviewed by experts (if cryptographic protocols and algorithms are used). [crypto_published]
    These cryptographic criteria do not always apply because some software has no need to directly use cryptographic capabilities.

    TLS 1.3 (RFC 8446) by default via rustls; Argon2id (RFC 9106) for password hashing; JWT/JOSE per RFC 7519 and the RFC 9068 access-token profile; OpenPGP (RFC 4880/9580) for version signatures; SHA-2 and HMAC. Nothing bespoke.



    If the software produced by the project is an application or library, and its primary purpose is not to implement cryptography, then it SHOULD only call on software specifically designed to implement cryptographic functions; it SHOULD NOT re-implement its own. [crypto_call]

    All cryptography comes from established Rust crates — rustls, argon2, jsonwebtoken, rPGP, sha2, hmac, blake3 — and "never hand-roll crypto or token parsing" is a documented hard rule in the project's own contribution rules. FerroEHR implements no cryptographic primitive.



    All functionality in the software produced by the project that depends on cryptography MUST be implementable using FLOSS. [crypto_floss]

    Every cryptographic dependency is FLOSS (Apache-2.0/MIT), and licences are gated in CI by cargo-deny. The stack is pure Rust with no OpenSSL or other C dependency.



    The security mechanisms within the software produced by the project MUST use default keylengths that at least meet the NIST minimum requirements through the year 2030 (as stated in 2012). It MUST be possible to configure the software so that smaller keylengths are completely disabled. [crypto_keylength]
    These minimum bitlengths are: symmetric key 112, factoring modulus 2048, discrete logarithm key 224, discrete logarithmic group 2048, elliptic curve 224, and hash 224 (password hashing is not covered by this bitlength, more information on password hashing can be found in the crypto_password_storage criterion). See https://www.keylength.com for a comparison of keylength recommendations from various organizations. The software MAY allow smaller keylengths in some configurations (ideally it would not, since this allows downgrade attacks, but shorter keylengths are sometimes necessary for interoperability).

    TLS: 1.3 only by default, whose cipher suites are all AEAD with 128-bit or stronger keys; TLS 1.2 is a named opt-in and TLS 1.0/1.1 are not selectable at all. JWT: HMAC secrets under 32 bytes are refused at boot, citing RFC 8725 §3.5. Passwords: Argon2id parameters below the OWASP floor (m=19456, t=2, p=1) are a boot error rather than a warning. Every weaker option is disabled by configuration refusal, not by documentation.



    The default security mechanisms within the software produced by the project MUST NOT depend on broken cryptographic algorithms (e.g., MD4, MD5, single DES, RC4, Dual_EC_DRBG), or use cipher modes that are inappropriate to the context, unless they are necessary to implement an interoperable protocol (where the protocol implemented is the most recent version of that standard broadly supported by the network ecosystem, that ecosystem requires the use of such an algorithm or mode, and that ecosystem does not offer any more secure alternative). The documentation MUST describe any relevant security risks and any known mitigations if these broken algorithms or modes are necessary for an interoperable protocol. [crypto_working]
    ECB mode is almost never appropriate because it reveals identical blocks within the ciphertext as demonstrated by the ECB penguin, and CTR mode is often inappropriate because it does not perform authentication and causes duplicates if the input state is repeated. In many cases it's best to choose a block cipher algorithm mode designed to combine secrecy and authentication, e.g., Galois/Counter Mode (GCM) and EAX. Projects MAY allow users to enable broken mechanisms (e.g., during configuration) where necessary for compatibility, but then users know they're doing it.

    No MD4, MD5, single DES, RC4 or Dual_EC_DRBG anywhere in a default path. The JWT
    validator refuses the "none" algorithm and binds the accepted algorithm set to
    the key source. TLS 1.3-only by default means no legacy cipher modes are reachable.



    The default security mechanisms within the software produced by the project SHOULD NOT depend on cryptographic algorithms or modes with known serious weaknesses (e.g., the SHA-1 cryptographic hash algorithm or the CBC mode in SSH). [crypto_weaknesses]
    Concerns about CBC mode in SSH are discussed in CERT: SSH CBC vulnerability.

    No SHA-1 in any security decision. CBC is not reachable under the TLS 1.3 default. Where SHA-256 is used for a non-signature purpose it is stated as such — for example, a verified-Basic-credential cache keys on a SHA-256 digest of the presented header, never on plaintext.



    The security mechanisms within the software produced by the project SHOULD implement perfect forward secrecy for key agreement protocols so a session key derived from a set of long-term keys cannot be compromised if one of the long-term keys is compromised in the future. [crypto_pfs]

    TLS 1.3 mandates ephemeral (X)DHE key agreement, so forward secrecy is a property of the default configuration rather than an option. The TLS floor defaults to 1.3 precisely so this is not left to negotiation.



    If the software produced by the project causes the storing of passwords for authentication of external users, the passwords MUST be stored as iterated hashes with a per-user salt by using a key stretching (iterated) algorithm (e.g., Argon2id, Bcrypt, Scrypt, or PBKDF2). See also OWASP Password Storage Cheat Sheet. [crypto_password_storage]
    This criterion applies only when the software is enforcing authentication of users using passwords for external users (aka inbound authentication), such as server-side web applications. It does not apply in cases where the software stores passwords for authenticating into other systems (aka outbound authentication, e.g., the software implements a client for some other system), since at least parts of that software must have often access to the unhashed password.

    Argon2id in PHC string format with a per-user salt. FerroEHR never stores or accepts a plaintext password: the configuration takes an Argon2id PHC hash, and a hash that is unparsable, uses a different algorithm, or falls below the OWASP parameter floor is refused at boot. The hash also has a file-based delivery route so it need not sit in a configuration file.



    The security mechanisms within the software produced by the project MUST generate all cryptographic keys and nonces using a cryptographically secure random number generator, and MUST NOT do so using generators that are cryptographically insecure. [crypto_random]
    A cryptographically secure random number generator may be a hardware random number generator, or it may be a cryptographically secure pseudo-random number generator (CSPRNG) using an algorithm such as Hash_DRBG, HMAC_DRBG, CTR_DRBG, Yarrow, or Fortuna. Examples of calls to secure random number generators include Java's java.security.SecureRandom and JavaScript's window.crypto.getRandomValues. Examples of calls to insecure random number generators include Java's java.util.Random and JavaScript's Math.random.

    Key generation uses rand's OsRng (the operating system CSPRNG) — see
    app/ferroehr/src/versioning/signature/key.rs. TLS key material and nonces come
    from rustls with the aws-lc-rs provider. Argon2 salts come from the argon2 crate's
    CSPRNG-backed generator. Database identifiers use PostgreSQL 18's native uuidv7();
    Uuid::new_v4 is on the project's compile-time banned-API list, so a weak or
    inappropriate generator cannot be introduced by accident.


  • Secured delivery against man-in-the-middle (MITM) attacks


    The project MUST use a delivery mechanism that counters MITM attacks. Using https or ssh+scp is acceptable. [delivery_mitm]
    An even stronger mechanism is releasing the software with digitally signed packages, since that mitigates attacks on the distribution system, but this only works if the users can be confident that the public keys for signatures are correct and if the users will actually check the signature.

    Everything is delivered over HTTPS: releases and source from GitHub, container
    images and the Helm chart from GHCR. From v3.17.4 onward every release artifact
    also carries signed keyless Sigstore provenance, verifiable with
    gh attestation verify, and the release binaries reach SLSA v1.0 Build Level 3 —
    so a consumer can verify not merely that the transport was secure but that the
    artifact came from this repository's hardened build lane.



    A cryptographic hash (e.g., a sha1sum) MUST NOT be retrieved over http and used without checking for a cryptographic signature. [delivery_unsigned]
    These hashes can be modified in transit.

    Nothing is fetched over plain HTTP. Dependencies are pinned by checksum in Cargo.lock and installed with --locked; container base images are pinned by sha256 digest; every GitHub Action is pinned to a full commit SHA. Integrity comes from digests and signatures, never from a hash retrieved insecurely.


  • Publicly known vulnerabilities fixed


    There MUST be no unpatched vulnerabilities of medium or higher severity that have been publicly known for more than 60 days. [vulnerabilities_fixed_60_days]
    The vulnerability must be patched and released by the project itself (patches may be developed elsewhere). A vulnerability becomes publicly known (for this purpose) once it has a CVE with publicly released non-paywalled information (reported, for example, in the National Vulnerability Database) or when the project has been informed and the information has been released to the public (possibly by the project). A vulnerability is considered medium or higher severity if its Common Vulnerability Scoring System (CVSS) base qualitative score is medium or higher. In CVSS versions 2.0 through 3.1, this is equivalent to a CVSS score of 4.0 or higher. Projects may use the CVSS score as published in a widely-used vulnerability database (such as the National Vulnerability Database) using the most-recent version of CVSS reported in that database. Projects may instead calculate the severity themselves using the latest version of CVSS at the time of the vulnerability disclosure, if the calculation inputs are publicly revealed once the vulnerability is publicly known. Note: this means that users might be left vulnerable to all attackers worldwide for up to 60 days. This criterion is often much easier to meet than what Google recommends in Rebooting responsible disclosure, because Google recommends that the 60-day period start when the project is notified even if the report is not public. Also note that this badge criterion, like other criteria, applies to the individual project. Some projects are part of larger umbrella organizations or larger projects, possibly in multiple layers, and many projects feed their results to other organizations and projects as part of a potentially-complex supply chain. An individual project often cannot control the rest, but an individual project can work to release a vulnerability patch in a timely way. Therefore, we focus solely on the individual project's response time. Once a patch is available from the individual project, others can determine how to deal with the patch (e.g., they can update to the newer version or they can apply just the patch as a cherry-picked solution).

    There is no unpatched vulnerability in FerroEHR's own code.

    Being precise about dependencies rather than silent: cargo-deny runs in CI against
    the RustSec database and is green. Six advisories are reported by OSV-based
    scanners, and all six are adjudicated in deny.toml with their reasoning — five
    have no fixed upstream release available (the rsa timing sidechannel, where this
    project only verifies signatures and holds no RSA private key; two quick-xml
    advisories reachable only through an S3 client parsing operator-configured
    endpoint responses; two unmaintained-crate advisories for compile-time
    proc-macros with no runtime surface). The sixth is a false positive: rkyv appears
    in Cargo.lock as an optional dependency our feature set never compiles, verified
    with cargo tree. Where a finding in an inherited container layer is unreachable,
    the argument is published as an OpenVEX document under security/vex/ so a consumer
    can check it rather than take it on trust.
    https://github.com/rubentalstra/FerroEHR/blob/develop/deny.toml



    Projects SHOULD fix all critical vulnerabilities rapidly after they are reported. [vulnerabilities_critical_fixed]

    The clearest example: an internal audit found the canonical-XML reader had no nesting bound, so a deeply nested document could recurse the parser off the stack — and because a Rust stack overflow aborts rather than unwinding, the panic handler that renders this server's clean 500 could not intercept it, making one request able to end the process for every caller. It was fixed in the same cycle it was found, with a nesting bound, an outright DOCTYPE refusal, and six asserted regression tests so the refusals cannot silently disappear.


  • Other security issues


    The public repositories MUST NOT leak a valid private credential (e.g., a working password or private key) that is intended to limit public access. [no_leaked_credentials]
    A project MAY leak "sample" credentials for testing and unimportant databases, as long as they are not intended to limit public access.

    Secret scanning runs in CI over the whole tree (Trivy secret scanner, plus GitHub secret scanning with push protection enabled), and it is clean. The publishing lanes hold no long-lived credential at all: crates.io publishing uses OIDC Trusted Publishing, and artifact signing uses keyless Sigstore — there is no private key to leak. One credential-shaped string exists deliberately and is documented as such: the downloadable quickstart carries an Argon2id hash for a throwaway development user, because a self-contained demo cannot reference a secret the reader does not have. It is a development credential by construction and the documentation says to replace it before any real use.


 Analysis 8/8

  • Static code analysis


    At least one static code analysis tool (beyond compiler warnings and "safe" language modes) MUST be applied to any proposed major production release of the software before its release, if there is at least one FLOSS tool that implements this criterion in the selected language. [static_analysis]
    A static code analysis tool examines the software code (as source code, intermediate code, or executable) without executing it with specific inputs. For purposes of this criterion, compiler warnings and "safe" language modes do not count as static code analysis tools (these typically avoid deep analysis because speed is vital). Some static analysis tools focus on detecting generic defects, others focus on finding specific kinds of defects (such as vulnerabilities), and some do a combination. Examples of such static code analysis tools include cppcheck (C, C++), clang static analyzer (C, C++), SpotBugs (Java), FindBugs (Java) (including FindSecurityBugs), PMD (Java), Brakeman (Ruby on Rails), lintr (R), goodpractice (R), Coverity Quality Analyzer, SonarQube, Codacy, and HP Enterprise Fortify Static Code Analyzer. Larger lists of tools can be found in places such as the Wikipedia list of tools for static code analysis, OWASP information on static code analysis, NIST list of source code security analyzers, and Wheeler's list of static analysis tools. If there are no FLOSS static analysis tools available for the implementation language(s) used, you may select 'N/A'.

    Two, on every pull request and every push. CodeQL analyses both the rust and actions languages (.github/workflows/codeql.yml), with results in the repository's code-scanning alerts. Clippy runs with clippy::all and clippy::pedantic denied plus roughly forty additional denied lints. Both must pass before a merge, so no release can be cut without them.



    It is SUGGESTED that at least one of the static analysis tools used for the static_analysis criterion include rules or approaches to look for common vulnerabilities in the analyzed language or environment. [static_analysis_common_vulnerabilities]
    Static analysis tools that are specifically designed to look for common vulnerabilities are more likely to find them. That said, using any static tools will typically help find some problems, so we are suggesting but not requiring this for the 'passing' level badge.

    CodeQL's security query suites are exactly this, and the actions language analysis covers workflow-specific classes such as script injection. Alongside it, zizmor audits every workflow for unpinned actions, excessive permissions, template injection and cache poisoning at --min-severity=low, and repository-specific gates fail a pull request that introduces string-built SQL or a 5xx response body carrying an internal error value.



    All medium and higher severity exploitable vulnerabilities discovered with static code analysis MUST be fixed in a timely way after they are confirmed. [static_analysis_fixed]
    A vulnerability is considered medium or higher severity if its Common Vulnerability Scoring System (CVSS) base qualitative score is medium or higher. In CVSS versions 2.0 through 3.1, this is equivalent to a CVSS score of 4.0 or higher. Projects may use the CVSS score as published in a widely-used vulnerability database (such as the National Vulnerability Database) using the most-recent version of CVSS reported in that database. Projects may instead calculate the severity themselves using the latest version of CVSS at the time of the vulnerability disclosure, if the calculation inputs are publicly revealed once the vulnerability is publicly known. Note that criterion vulnerabilities_fixed_60_days requires that all such vulnerabilities be fixed within 60 days of being made public.

    There is no open code-scanning alert. Because clippy runs at -D warnings and CodeQL results gate the pull request, a finding cannot accumulate: it blocks the merge that introduced it.



    It is SUGGESTED that static source code analysis occur on every commit or at least daily. [static_analysis_often]

    On every pull request and every push to develop, plus a weekly scheduled CodeQL run and a weekly OpenSSF Scorecard analysis. Clippy runs on every push.


  • Dynamic code analysis


    It is SUGGESTED that at least one dynamic analysis tool be applied to any proposed major production release of the software before its release. [dynamic_analysis]
    A dynamic analysis tool examines the software by executing it with specific inputs. For example, the project MAY use a fuzzing tool (e.g., American Fuzzy Lop) or a web application scanner (e.g., OWASP ZAP or w3af). In some cases the OSS-Fuzz project may be willing to apply fuzz testing to your project. For purposes of this criterion the dynamic analysis tool needs to vary the inputs in some way to look for various kinds of problems or be an automated test suite with at least 80% branch coverage. The Wikipedia page on dynamic analysis and the OWASP page on fuzzing identify some dynamic analysis tools. The analysis tool(s) MAY be focused on looking for security vulnerabilities, but this is not required.

    Three kinds. The conformance runner drives a 1049-case catalogue against a live composed deployment on fresh volumes and computes verdicts from the run records — this is the acceptance gate for every release, and the current record is 1014 of 1014 passing. cargo-fuzz (libFuzzer) harnesses fuzz the parsers that read untrusted input: canonical JSON, canonical XML, AQL, the simplified formats, ADL 2 and OPT 1.4. And a measured-performance instrument runs open-loop sustained load against a live server with re-checkable latency histograms.



    It is SUGGESTED that if the software produced by the project includes software written using a memory-unsafe language (e.g., C or C++), then at least one dynamic tool (e.g., a fuzzer or web application scanner) be routinely used in combination with a mechanism to detect memory safety problems such as buffer overwrites. If the project does not produce software written in a memory-unsafe language, choose "not applicable" (N/A). [dynamic_analysis_unsafe]
    Examples of mechanisms to detect memory safety problems include Address Sanitizer (ASAN) (available in GCC and LLVM), Memory Sanitizer, and valgrind. Other potentially-used tools include thread sanitizer and undefined behavior sanitizer. Widespread assertions would also work.

    The project produces no code in a memory-unsafe language. It is entirely Rust, and
    unsafe_code = "forbid" applies workspace-wide — a forbid that no attribute can
    relax, so a compilation unit cannot opt back in. There is no unsafe block to
    protect.



    It is SUGGESTED that the project use a configuration for at least some dynamic analysis (such as testing or fuzzing) which enables many assertions. In many cases these assertions should not be enabled in production builds. [dynamic_analysis_enable_assertions]
    This criterion does not suggest enabling assertions during production; that is entirely up to the project and its users to decide. This criterion's focus is instead to improve fault detection during dynamic analysis before deployment. Enabling assertions in production use is completely different from enabling assertions during dynamic analysis (such as testing). In some cases enabling assertions in production use is extremely unwise (especially in high-integrity components). There are many arguments against enabling assertions in production, e.g., libraries should not crash callers, their presence may cause rejection by app stores, and/or activating an assertion in production may expose private data such as private keys. Beware that in many Linux distributions NDEBUG is not defined, so C/C++ assert() will by default be enabled for production in those environments. It may be important to use a different assertion mechanism or defining NDEBUG for production in those environments.

    Debug assertions are on in test and fuzz builds. More unusually, release builds set overflow-checks = true, so integer overflow panics in production rather than silently wrapping into a wrong clinical value — an assertion deliberately left enabled where most projects disable it. The fuzz harnesses treat any panic, abort or hang as a finding, and the conformance catalogue asserts refusals as well as successes, so a specification violation that becomes permissive fails the run.



    All medium and higher severity exploitable vulnerabilities discovered with dynamic code analysis MUST be fixed in a timely way after they are confirmed. [dynamic_analysis_fixed]
    If you are not running dynamic code analysis and thus have not found any vulnerabilities in this way, choose "not applicable" (N/A). A vulnerability is considered medium or higher severity if its Common Vulnerability Scoring System (CVSS) base qualitative score is medium or higher. In CVSS versions 2.0 through 3.1, this is equivalent to a CVSS score of 4.0 or higher. Projects may use the CVSS score as published in a widely-used vulnerability database (such as the National Vulnerability Database) using the most-recent version of CVSS reported in that database. Projects may instead calculate the severity themselves using the latest version of CVSS at the time of the vulnerability disclosure, if the calculation inputs are publicly revealed once the vulnerability is publicly known.

    The conformance baseline only ratchets upward: a run showing any regression against the committed baseline blocks the change, and each failing row is attributed to a specific component with the specification citation before anything is altered. Fuzz findings are fixed and then pinned as asserted regression tests so a fixed crash cannot return unnoticed.



This data is available under the Community Data License Agreement – Permissive, Version 2.0 (CDLA-Permissive-2.0). This means that a Data Recipient may share the Data, with or without modifications, so long as the Data Recipient makes available the text of this agreement with the shared Data. Please credit Ruben Talstra and the OpenSSF Best Practices badge contributors.

Project badge entry owned by: Ruben Talstra.
Entry created on 2026-08-07 06:38:45 UTC, last updated on 2026-08-07 08:01:38 UTC. Last achieved passing badge on 2026-08-07 08:01:37 UTC.