127 lines
4.2 KiB
Plaintext
127 lines
4.2 KiB
Plaintext
[role="xpack"]
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[[ml-revert-snapshot]]
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=== Revert Model Snapshots API
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++++
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<titleabbrev>Revert Model Snapshots</titleabbrev>
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++++
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This API enables you to revert to a specific snapshot.
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==== Request
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`POST _xpack/ml/anomaly_detectors/<job_id>/model_snapshots/<snapshot_id>/_revert`
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==== Description
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The {ml} feature in {xpack} reacts quickly to anomalous input, learning new
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behaviors in data. Highly anomalous input increases the variance in the models
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whilst the system learns whether this is a new step-change in behavior or a
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one-off event. In the case where this anomalous input is known to be a one-off,
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then it might be appropriate to reset the model state to a time before this
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event. For example, you might consider reverting to a saved snapshot after Black
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Friday or a critical system failure.
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////
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To revert to a saved snapshot, you must follow this sequence:
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. Close the job
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. Revert to a snapshot
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. Open the job
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. Send new data to the job
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When reverting to a snapshot, there is a choice to make about whether or not
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you want to keep the results that were created between the time of the snapshot
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and the current time. In the case of Black Friday for instance, you might want
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to keep the results and carry on processing data from the current time,
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though without the models learning the one-off behavior and compensating for it.
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However, say in the event of a critical system failure and you decide to reset
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and models to a previous known good state and process data from that time,
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it makes sense to delete the intervening results for the known bad period and
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resend data from that earlier time.
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Any gaps in data since the snapshot time will be treated as nulls and not modeled.
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If there is a partial bucket at the end of the snapshot and/or at the beginning
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of the new input data, then this will be ignored and treated as a gap.
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For jobs with many entities, the model state may be very large.
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If a model state is several GB, this could take 10-20 mins to revert depending
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upon machine spec and resources. If this is the case, please ensure this time
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is planned for.
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Model size (in bytes) is available as part of the Job Resource Model Size Stats.
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////
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IMPORTANT: Before you revert to a saved snapshot, you must close the job.
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==== Path Parameters
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`job_id` (required)::
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(string) Identifier for the job
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`snapshot_id` (required)::
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(string) Identifier for the model snapshot
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==== Request Body
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`delete_intervening_results`::
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(boolean) If true, deletes the results in the time period between the
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latest results and the time of the reverted snapshot. It also resets the
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model to accept records for this time period. The default value is false.
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NOTE: If you choose not to delete intervening results when reverting a snapshot,
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the job will not accept input data that is older than the current time.
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If you want to resend data, then delete the intervening results.
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==== Authorization
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You must have `manage_ml`, or `manage` cluster privileges to use this API.
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For more information, see
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{xpack-ref}/security-privileges.html[Security Privileges].
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//<<privileges-list-cluster>>.
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==== Examples
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The following example reverts to the `1491856080` snapshot for the
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`it_ops_new_kpi` job:
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[source,js]
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--------------------------------------------------
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POST
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_xpack/ml/anomaly_detectors/it_ops_new_kpi/model_snapshots/1491856080/_revert
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{
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"delete_intervening_results": true
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}
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--------------------------------------------------
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// CONSOLE
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// TEST[skip:todo]
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When the operation is complete, you receive the following results:
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[source,js]
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----
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{
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"model": {
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"job_id": "it_ops_new_kpi",
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"timestamp": 1491856080000,
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"description": "State persisted due to job close at 2017-04-10T13:28:00-0700",
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"snapshot_id": "1491856080",
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"snapshot_doc_count": 1,
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"model_size_stats": {
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"job_id": "it_ops_new_kpi",
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"result_type": "model_size_stats",
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"model_bytes": 29518,
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"total_by_field_count": 3,
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"total_over_field_count": 0,
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"total_partition_field_count": 2,
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"bucket_allocation_failures_count": 0,
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"memory_status": "ok",
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"log_time": 1491856080000,
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"timestamp": 1455318000000
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},
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"latest_record_time_stamp": 1455318669000,
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"latest_result_time_stamp": 1455318000000,
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"retain": false
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}
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}
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----
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