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parsedmarc/docs/source/elasticsearch.md
T
Sean WhalenandClaude Fable 5 6148002a43 Fix DKIM/SPF alignment detail cross-product in dashboards (#169)
Elasticsearch and OpenSearch dynamic-map the dkim_results/spf_results
object arrays as `object` (create_indexes never registers the DSL
document mappings), so Lucene flattens each array into independent
multi-valued fields and stacked terms aggregations on
dkim_results.selector/.domain/.result return every combination of
values across a report's signatures — each phantom row repeating the
full message count.

Aggregate documents now also carry dkim_results_combined and
spf_results_combined: one "selector / domain / result"
("scope / domain / result") string per auth result, composed in
add_dkim_result/add_spf_result. The Kibana/OpenSearch Dashboards and
Grafana (Elasticsearch) alignment-detail tables aggregate those
instead, and the Splunk detail panels pair the values with
mvzip/mvexpand. A documented idempotent _update_by_query backfills
documents saved by older versions; the query matches only documents
that have auth results and lack the combined fields, because an
`exists` query cannot see an empty array.

Also corrects the dead _SPFResult.results (plural) declaration to
`result` (the save path always wrote the singular key), fixes the
result parameter annotations on add_dkim_result/add_spf_result, and
removes the Grafana dmarcian.com DKIM-checker data link, which
required the separate domain/selector columns.

The SMTP TLS visualizations have the same class of defect and are
tracked separately.

Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-21 21:52:19 -04:00

9.9 KiB

Elasticsearch and Kibana

To set up visual dashboards of DMARC data, install Elasticsearch and Kibana.

:::{note} Elasticsearch and Kibana 8 or later are required (parsedmarc's 8.x Python client also supports Elasticsearch 9). OpenSearch users must use the [opensearch] configuration section instead — the Elasticsearch 8.x client refuses to connect to non-Elasticsearch clusters. :::

Installation

On Debian/Ubuntu based systems, run:

sudo apt-get install -y apt-transport-https
wget -qO - https://artifacts.elastic.co/GPG-KEY-elasticsearch | sudo gpg --dearmor -o /usr/share/keyrings/elasticsearch-keyring.gpg
echo "deb [signed-by=/usr/share/keyrings/elasticsearch-keyring.gpg] https://artifacts.elastic.co/packages/8.x/apt stable main" | sudo tee /etc/apt/sources.list.d/elastic-8.x.list
sudo apt-get update
sudo apt-get install -y elasticsearch kibana

For CentOS, RHEL, and other RPM systems, follow the Elastic RPM guides for Elasticsearch and Kibana.

:::{note} Previously, the default JVM heap size for Elasticsearch was very small (1g), which will cause it to crash under a heavy load. To fix this, increase the minimum and maximum JVM heap sizes in /etc/elasticsearch/jvm.options to more reasonable levels, depending on your server's resources.

Make sure the system has at least 2 GB more RAM than the assigned JVM heap size.

Always set the minimum and maximum JVM heap sizes to the same value.

For example, to set a 4 GB heap size, set

-Xms4g
-Xmx4g

See https://www.elastic.co/guide/en/elasticsearch/reference/current/important-settings.html#heap-size-settings for more information. :::

sudo systemctl daemon-reload
sudo systemctl enable elasticsearch.service
sudo systemctl enable kibana.service
sudo systemctl start elasticsearch.service
sudo systemctl start kibana.service

As of Elasticsearch 8.7, activate secure mode (xpack.security.*.ssl)

sudo vim /etc/elasticsearch/elasticsearch.yml

Add the following configuration

# Enable security features
xpack.security.enabled: true
xpack.security.enrollment.enabled: true
# Enable encryption for HTTP API client connections, such as Kibana, Logstash, and Agents
xpack.security.http.ssl:
  enabled: true
  keystore.path: certs/http.p12
# Enable encryption and mutual authentication between cluster nodes
xpack.security.transport.ssl:
  enabled: true
  verification_mode: certificate
  keystore.path: certs/transport.p12
  truststore.path: certs/transport.p12
sudo systemctl restart elasticsearch

To create a self-signed certificate, run:

openssl req -x509 -nodes -days 365 -newkey rsa:4096 -keyout kibana.key -out kibana.crt

Or, to create a Certificate Signing Request (CSR) for a CA, run:

openssl req -newkey rsa:4096-nodes -keyout kibana.key -out kibana.csr

Fill in the prompts. Watch out for Common Name (e.g. server FQDN or YOUR domain name), which is the IP address or domain name that you will use to access Kibana. it is the most important field.

If you generated a CSR, remove the CSR after you have your certs

rm -f kibana.csr

Move the keys into place and secure them:

sudo mv kibana.* /etc/kibana
sudo chmod 660 /etc/kibana/kibana.key

Activate the HTTPS server in Kibana

sudo vim /etc/kibana/kibana.yml

Add the following configuration

server.host: "SERVER_IP"
server.publicBaseUrl: "https://SERVER_IP"
server.ssl.enabled: true
server.ssl.certificate: /etc/kibana/kibana.crt
server.ssl.key: /etc/kibana/kibana.key

:::{note} For more security, you can configure Kibana to use a local network connection to elasticsearch :

elasticsearch.hosts: ['https://SERVER_IP:9200']

=>

elasticsearch.hosts: ['https://127.0.0.1:9200']

:::

sudo systemctl restart kibana

Enroll Kibana in Elasticsearch

sudo /usr/share/elasticsearch/bin/elasticsearch-create-enrollment-token -s kibana

Then access to your web server at https://SERVER_IP:5601, accept the self-signed certificate and paste the token in the "Enrollment token" field.

sudo /usr/share/kibana/bin/kibana-verification-code

Then put the verification code to your web browser.

End Kibana configuration

sudo /usr/share/elasticsearch/bin/elasticsearch-setup-passwords interactive
sudo /usr/share/kibana/bin/kibana-encryption-keys generate
sudo vim /etc/kibana/kibana.yml

Add previously generated encryption keys

xpack.encryptedSavedObjects.encryptionKey: xxxx...xxxx
xpack.reporting.encryptionKey: xxxx...xxxx
xpack.security.encryptionKey: xxxx...xxxx
sudo systemctl restart kibana
sudo systemctl restart elasticsearch

Now that Elasticsearch is up and running, use parsedmarc to send data to it.

Download (right-click the link and click save as) export.ndjson.

Connect to kibana using the "elastic" user and the password you previously provide on the console ("End Kibana configuration" part).

Import export.ndjson the Saved Objects tab of the Stack management page of Kibana. (Hamburger menu -> "Management" -> "Stack Management" -> "Kibana" -> "Saved Objects")

It will give you the option to overwrite existing saved dashboards or visualizations, which could be used to restore them if you or someone else breaks them, as there are no permissions/access controls in Kibana without the commercial X-Pack.

:align: center
:alt: A screenshot of setting the Saved Objects Stack management UI in Kibana
:target: _static/screenshots/saved-objects.png
:align: center
:alt: A screenshot of the overwrite conformation prompt
:target: _static/screenshots/confirm-overwrite.png

Upgrading Kibana index patterns

parsedmarc 5.0.0 makes some changes to the way data is indexed in Elasticsearch. if you are upgrading from a previous release of parsedmarc, you need to complete the following steps to replace the Kibana index patterns with versions that match the upgraded indexes:

  1. Login in to Kibana, and click on Management
  2. Under Kibana, click on Saved Objects
  3. Check the checkboxes for the dmarc_aggregate and dmarc_failure index patterns
  4. Click Delete
  5. Click Delete on the conformation message
  6. Download (right-click the link and click save as) the latest version of export.ndjson
  7. Import export.ndjson by clicking Import from the Kibana Saved Objects page

Backfilling the combined DKIM/SPF result fields

As of the version fixing #169, aggregate documents include dkim_results_combined and spf_results_combined — scalar string arrays that keep each auth result's selector/scope, domain, and result paired, which the dashboards' alignment-detail tables aggregate on. Reports saved by older versions lack these fields and will not appear in those tables.

Running the following once per cluster backfills the fields on existing documents. It is idempotent (documents that already have the fields are skipped), so it is safe to re-run. It works identically on OpenSearch; just adjust the URL and credentials. The query matches only documents that have at least one DKIM or SPF auth result and lack the corresponding combined field; documents with no auth results are skipped, because an exists query cannot see an empty array, and for search purposes an empty dkim_results_combined is identical to an absent one.

curl -X POST "http://localhost:9200/dmarc_aggregate*/_update_by_query?conflicts=proceed&wait_for_completion=false" \
  -H "Content-Type: application/json" -d '
{
  "query": {
    "bool": {
      "minimum_should_match": 1,
      "should": [
        {
          "bool": {
            "must": [{"exists": {"field": "dkim_results.domain"}}],
            "must_not": [{"exists": {"field": "dkim_results_combined"}}]
          }
        },
        {
          "bool": {
            "must": [{"exists": {"field": "spf_results.domain"}}],
            "must_not": [{"exists": {"field": "spf_results_combined"}}]
          }
        }
      ]
    }
  },
  "script": {
    "lang": "painless",
    "source": "List dk = new ArrayList(); def dr = ctx._source.dkim_results; if (dr != null) { if (!(dr instanceof List)) { dr = [dr]; } for (e in dr) { if (e == null) { continue; } def sel = e.selector != null ? e.selector : \"none\"; def dom = e.domain != null ? e.domain : \"none\"; def res = e.result != null ? e.result : \"none\"; dk.add(sel + \" / \" + dom + \" / \" + res); } } ctx._source.dkim_results_combined = dk; List sp = new ArrayList(); def sr = ctx._source.spf_results; if (sr != null) { if (!(sr instanceof List)) { sr = [sr]; } for (e in sr) { if (e == null) { continue; } def sc = e.scope != null ? e.scope : \"mfrom\"; def dom = e.domain != null ? e.domain : \"none\"; def res = e.result != null ? e.result : (e.results != null ? e.results : \"none\"); sp.add(sc + \" / \" + dom + \" / \" + res); } } ctx._source.spf_results_combined = sp;"
  }
}'

wait_for_completion=false returns a task ID — check progress with GET _tasks/<task id>. Adjust the index pattern if you use a custom index_prefix/index_suffix. After backfilling, re-import the updated dashboards ndjson (the index pattern saved object changed too) per the import instructions above.

Records retention

Starting in version 5.0.0, parsedmarc stores data in a separate index for each day to make it easy to comply with records retention regulations such as GDPR. For more information, check out the Elastic guide to managing time-based indexes efficiently.