70 lines
5.6 KiB
Markdown
70 lines
5.6 KiB
Markdown
---
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layout: default
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title: Region map visualizations
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nav_order: 40
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---
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# Region map visualizations
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OpenSearch Dashboards provides basic map tiles with a standard vector map that you can use to create your region map visualizations. You can configure the base map tiles using the Web Map Service (WMS) map server.
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You can't configure a server to support user-defined vector map layers. However, you can configure your own GeoJSON file and upload it for this purpose.
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{: .note}
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OpenSearch also has a standard set of GeoJSON files to provide a vector map with your regional maps.
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## Custom vector maps with GeoJSON
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If you have a specific locale that is not provided by OpenSearch Dashboards vector maps, such as a US county or US ZIP Code, you can create your own custom vector map with a GeoJSON file. To create a custom region map you would define a geographic shape such as a polygon with multiple coordinates. To learn more about the various geographic shapes that support a custom region map location, see [Geoshape field type]({{site.url}}{{site.baseurl}}/opensearch/supported-field-types/geo-shape/).
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GeoJSON format allows you to encode geographic data structures. To learn more about the GeoJSON specification, go to [geojson.org](https://geojson.org/).
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You can use [geojson.io](https://geojson.io/#map=2/20.0/0.0) to extract GeoJSON files.
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> **PREREQUISITE**
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> To use a custom vector map with GeoJSON, install these two required plugins:
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> * OpenSearch Dashboards Maps [`dashboards-maps`](https://github.com/opensearch-project/dashboards-maps) front-end plugin
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> * OpenSearch [`geospatial`](https://github.com/opensearch-project/geospatial) backend plugin
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{: .note}
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### Step 1: Create a region map visualization
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To create your own custom vector map, upload a JSON file that contains GEO data for your customized regional maps. The JSON file contains vector layers for visualization.
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1. Prepare a JSON file to upload. Make sure the file has either a .geojson or .json extension.
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1. On the top menu bar, go to **OpenSearch Dashboards > Visualize**.
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1. Select the **Create Visualization** button.
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1. Select **Region Map**.
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1. Choose a source. For example, **[Flights] Flight Log**.
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1. In the right panel, select **Import Vector Map**.
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1. In **Upload map**, select or drag and drop your JSON file.
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Enter **Map name prefix** (for example, `usa-counties`). Your map will have the prefix that you defined followed by the `-map` suffix (for example, `usa-counties-map`). <img src="{{site.url}}{{site.baseurl}}/images/import-geojson-file.png" alt="import a Geo .json file" width="340"/>
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1. Select the **Import file** button.
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Once the upload is successful, you will see a pop-up prompting you to refresh the map. Select the **Refresh** button. <img src="{{site.url}}{{site.baseurl}}/images/upload-success.png" alt="message upon a successful file upload" width="280"/>
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### Step 2: View the custom region map in OpenSearch Dashboards
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After you upload a custom GeoJSON file, you need to set the vector map layer to custom, and select your vector map:
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1. From **Layer Options > Layer settings**, select **Custom vector map**.
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1. Under **Vector map**, select the name of the vector map that you just uploaded.
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1. *(Optional):* Under **Style settings**, increase **Border thickness** to see the borders more clearly.
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1. Select the **Update** button.
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1. View your region map in the Dashboards. For example, the following image shows the Los Angeles and San Diego county regions:
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<img src="{{site.url}}{{site.baseurl}}/images/county-region-map.png" alt="view a custom GeoJSON region map" width="700"/>
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### Example GeoJSON file
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The following example GeoJSON file provides coordinates for two US counties.
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```json
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{
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"type": "FeatureCollection",
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"name": "usa counties",
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"features": [
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{ "type": "Feature", "properties": { "iso2": "US", "iso3": "LA-CA", "name": "Los Angeles County", "country": "US", "county": "LA" }, "geometry": { "type": "Polygon", "coordinates":[[[-118.71826171875,34.07086232376631],[-118.69628906249999,34.03445260967645],[-118.56994628906249,34.02990029603907],[-118.487548828125,33.957030069982316],[-118.37219238281249,33.86129311351553],[-118.45458984375,33.75631505992707],[-118.33923339843749,33.715201644740844],[-118.22937011718749,33.75631505992707],[-118.1414794921875,33.678639851675555],[-117.9107666015625,33.578014746143985],[-117.75146484375,33.4955977448657],[-117.55920410156249,33.55512901742288],[-117.3065185546875,33.5963189611327],[-117.0703125,33.67406853374198],[-116.69677734375,34.06176136129718],[-116.9439697265625,34.28445325435288],[-117.18017578125,34.42956713470528],[-117.3779296875,34.542762387234845],[-117.62512207031251,34.56990638085636],[-118.048095703125,34.615126683462194],[-118.44909667968749,34.542762387234845],[-118.61938476562499,34.38877925439021],[-118.740234375,34.21180215769026],[-118.71826171875,34.07086232376631]]] } },
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{ "type": "Feature", "properties": { "iso2": "US", "iso3": "SD-CA", "name": "San Diego County", "country": "US", "county": "SD" }, "geometry": { "type": "Polygon", "coordinates":[[[-117.23510742187501,32.861132322810946],[-117.2406005859375,32.75494243654723],[-117.1636962890625,32.68099643258195],[-117.14172363281251,32.58384932565662],[-117.09228515624999,32.46342595776104],[-117.0538330078125,32.29177633471201],[-116.96044921875,32.194208672875384],[-116.85607910156249,32.16631295696736],[-116.6748046875,32.20350534542368],[-116.3671875,32.319633552035214],[-116.1474609375,32.55144352864431],[-116.1639404296875,32.80574473290688],[-116.4111328125,33.073130945006625],[-116.72973632812499,33.08233672856376],[-117.09228515624999,32.99484290420988],[-117.2515869140625,32.96258644191747], [-117.23510742187501,32.861132322810946]]] } }
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]
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}
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```
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