// Code generated by software.amazon.smithy.rust.codegen.smithy-rs. DO NOT EDIT.
#[allow(missing_docs)] // documentation missing in model
#[non_exhaustive]
#[derive(::std::clone::Clone, ::std::cmp::PartialEq, ::std::fmt::Debug)]
pub struct RegisterScalableTargetInput {
/// <p>The namespace of the Amazon Web Services service that provides the resource. For a resource provided by your own application or service, use <code>custom-resource</code> instead.</p>
pub service_namespace: ::std::option::Option<crate::types::ServiceNamespace>,
/// <p>The identifier of the resource that is associated with the scalable target. This string consists of the resource type and unique identifier.</p>
/// <ul>
/// <li>
/// <p>ECS service - The resource type is <code>service</code> and the unique identifier is the cluster name and service name. Example: <code>service/my-cluster/my-service</code>.</p></li>
/// <li>
/// <p>Spot Fleet - The resource type is <code>spot-fleet-request</code> and the unique identifier is the Spot Fleet request ID. Example: <code>spot-fleet-request/sfr-73fbd2ce-aa30-494c-8788-1cee4EXAMPLE</code>.</p></li>
/// <li>
/// <p>EMR cluster - The resource type is <code>instancegroup</code> and the unique identifier is the cluster ID and instance group ID. Example: <code>instancegroup/j-2EEZNYKUA1NTV/ig-1791Y4E1L8YI0</code>.</p></li>
/// <li>
/// <p>AppStream 2.0 fleet - The resource type is <code>fleet</code> and the unique identifier is the fleet name. Example: <code>fleet/sample-fleet</code>.</p></li>
/// <li>
/// <p>DynamoDB table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>table/my-table</code>.</p></li>
/// <li>
/// <p>DynamoDB global secondary index - The resource type is <code>index</code> and the unique identifier is the index name. Example: <code>table/my-table/index/my-table-index</code>.</p></li>
/// <li>
/// <p>Aurora DB cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:my-db-cluster</code>.</p></li>
/// <li>
/// <p>SageMaker endpoint variant - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>Custom resources are not supported with a resource type. This parameter must specify the <code>OutputValue</code> from the CloudFormation template stack used to access the resources. The unique identifier is defined by the service provider. More information is available in our <a href="https://github.com/aws/aws-auto-scaling-custom-resource">GitHub repository</a>.</p></li>
/// <li>
/// <p>Amazon Comprehend document classification endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:document-classifier-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Amazon Comprehend entity recognizer endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:entity-recognizer-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Lambda provisioned concurrency - The resource type is <code>function</code> and the unique identifier is the function name with a function version or alias name suffix that is not <code>$LATEST</code>. Example: <code>function:my-function:prod</code> or <code>function:my-function:1</code>.</p></li>
/// <li>
/// <p>Amazon Keyspaces table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>keyspace/mykeyspace/table/mytable</code>.</p></li>
/// <li>
/// <p>Amazon MSK cluster - The resource type and unique identifier are specified using the cluster ARN. Example: <code>arn:aws:kafka:us-east-1:123456789012:cluster/demo-cluster-1/6357e0b2-0e6a-4b86-a0b4-70df934c2e31-5</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache replication group - The resource type is <code>replication-group</code> and the unique identifier is the replication group name. Example: <code>replication-group/mycluster</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache cache cluster - The resource type is <code>cache-cluster</code> and the unique identifier is the cache cluster name. Example: <code>cache-cluster/mycluster</code>.</p></li>
/// <li>
/// <p>Neptune cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:mycluster</code>.</p></li>
/// <li>
/// <p>SageMaker serverless endpoint - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>SageMaker inference component - The resource type is <code>inference-component</code> and the unique identifier is the resource ID. Example: <code>inference-component/my-inference-component</code>.</p></li>
/// <li>
/// <p>Pool of WorkSpaces - The resource type is <code>workspacespool</code> and the unique identifier is the pool ID. Example: <code>workspacespool/wspool-123456</code>.</p></li>
/// </ul>
pub resource_id: ::std::option::Option<::std::string::String>,
/// <p>The scalable dimension associated with the scalable target. This string consists of the service namespace, resource type, and scaling property.</p>
/// <ul>
/// <li>
/// <p><code>ecs:service:DesiredCount</code> - The task count of an ECS service.</p></li>
/// <li>
/// <p><code>elasticmapreduce:instancegroup:InstanceCount</code> - The instance count of an EMR Instance Group.</p></li>
/// <li>
/// <p><code>ec2:spot-fleet-request:TargetCapacity</code> - The target capacity of a Spot Fleet.</p></li>
/// <li>
/// <p><code>appstream:fleet:DesiredCapacity</code> - The capacity of an AppStream 2.0 fleet.</p></li>
/// <li>
/// <p><code>dynamodb:table:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:table:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:index:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>dynamodb:index:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>rds:cluster:ReadReplicaCount</code> - The count of Aurora Replicas in an Aurora DB cluster. Available for Aurora MySQL-compatible edition and Aurora PostgreSQL-compatible edition.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredInstanceCount</code> - The number of EC2 instances for a SageMaker model endpoint variant.</p></li>
/// <li>
/// <p><code>custom-resource:ResourceType:Property</code> - The scalable dimension for a custom resource provided by your own application or service.</p></li>
/// <li>
/// <p><code>comprehend:document-classifier-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend document classification endpoint.</p></li>
/// <li>
/// <p><code>comprehend:entity-recognizer-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend entity recognizer endpoint.</p></li>
/// <li>
/// <p><code>lambda:function:ProvisionedConcurrency</code> - The provisioned concurrency for a Lambda function.</p></li>
/// <li>
/// <p><code>cassandra:table:ReadCapacityUnits</code> - The provisioned read capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>cassandra:table:WriteCapacityUnits</code> - The provisioned write capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>kafka:broker-storage:VolumeSize</code> - The provisioned volume size (in GiB) for brokers in an Amazon MSK cluster.</p></li>
/// <li>
/// <p><code>elasticache:cache-cluster:Nodes</code> - The number of nodes for an Amazon ElastiCache cache cluster.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:NodeGroups</code> - The number of node groups for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:Replicas</code> - The number of replicas per node group for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>neptune:cluster:ReadReplicaCount</code> - The count of read replicas in an Amazon Neptune DB cluster.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredProvisionedConcurrency</code> - The provisioned concurrency for a SageMaker serverless endpoint.</p></li>
/// <li>
/// <p><code>sagemaker:inference-component:DesiredCopyCount</code> - The number of copies across an endpoint for a SageMaker inference component.</p></li>
/// <li>
/// <p><code>workspaces:workspacespool:DesiredUserSessions</code> - The number of user sessions for the WorkSpaces in the pool.</p></li>
/// </ul>
pub scalable_dimension: ::std::option::Option<crate::types::ScalableDimension>,
/// <p>The minimum value that you plan to scale in to. When a scaling policy is in effect, Application Auto Scaling can scale in (contract) as needed to the minimum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>For the following resources, the minimum value allowed is 0.</p>
/// <ul>
/// <li>
/// <p>AppStream 2.0 fleets</p></li>
/// <li>
/// <p>Aurora DB clusters</p></li>
/// <li>
/// <p>ECS services</p></li>
/// <li>
/// <p>EMR clusters</p></li>
/// <li>
/// <p>Lambda provisioned concurrency</p></li>
/// <li>
/// <p>SageMaker endpoint variants</p></li>
/// <li>
/// <p>SageMaker inference components</p></li>
/// <li>
/// <p>SageMaker serverless endpoint provisioned concurrency</p></li>
/// <li>
/// <p>Spot Fleets</p></li>
/// <li>
/// <p>custom resources</p></li>
/// </ul>
/// <p>It's strongly recommended that you specify a value greater than 0. A value greater than 0 means that data points are continuously reported to CloudWatch that scaling policies can use to scale on a metric like average CPU utilization.</p>
/// <p>For all other resources, the minimum allowed value depends on the type of resource that you are using. If you provide a value that is lower than what a resource can accept, an error occurs. In which case, the error message will provide the minimum value that the resource can accept.</p>
pub min_capacity: ::std::option::Option<i32>,
/// <p>The maximum value that you plan to scale out to. When a scaling policy is in effect, Application Auto Scaling can scale out (expand) as needed to the maximum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>Although you can specify a large maximum capacity, note that service quotas might impose lower limits. Each service has its own default quotas for the maximum capacity of the resource. If you want to specify a higher limit, you can request an increase. For more information, consult the documentation for that service. For information about the default quotas for each service, see <a href="https://docs.aws.amazon.com/general/latest/gr/aws-service-information.html">Service endpoints and quotas</a> in the <i>Amazon Web Services General Reference</i>.</p>
pub max_capacity: ::std::option::Option<i32>,
/// <p>This parameter is required for services that do not support service-linked roles (such as Amazon EMR), and it must specify the ARN of an IAM role that allows Application Auto Scaling to modify the scalable target on your behalf.</p>
/// <p>If the service supports service-linked roles, Application Auto Scaling uses a service-linked role, which it creates if it does not yet exist. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/security_iam_service-with-iam.html">How Application Auto Scaling works with IAM</a>.</p>
pub role_arn: ::std::option::Option<::std::string::String>,
/// <p>An embedded object that contains attributes and attribute values that are used to suspend and resume automatic scaling. Setting the value of an attribute to <code>true</code> suspends the specified scaling activities. Setting it to <code>false</code> (default) resumes the specified scaling activities.</p>
/// <p><b>Suspension Outcomes</b></p>
/// <ul>
/// <li>
/// <p>For <code>DynamicScalingInSuspended</code>, while a suspension is in effect, all scale-in activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>DynamicScalingOutSuspended</code>, while a suspension is in effect, all scale-out activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>ScheduledScalingSuspended</code>, while a suspension is in effect, all scaling activities that involve scheduled actions are suspended.</p></li>
/// </ul>
/// <p>For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/application-auto-scaling-suspend-resume-scaling.html">Suspend and resume scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub suspended_state: ::std::option::Option<crate::types::SuspendedState>,
/// <p>Assigns one or more tags to the scalable target. Use this parameter to tag the scalable target when it is created. To tag an existing scalable target, use the <code>TagResource</code> operation.</p>
/// <p>Each tag consists of a tag key and a tag value. Both the tag key and the tag value are required. You cannot have more than one tag on a scalable target with the same tag key.</p>
/// <p>Use tags to control access to a scalable target. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/resource-tagging-support.html">Tagging support for Application Auto Scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub tags: ::std::option::Option<::std::collections::HashMap<::std::string::String, ::std::string::String>>,
}
impl RegisterScalableTargetInput {
/// <p>The namespace of the Amazon Web Services service that provides the resource. For a resource provided by your own application or service, use <code>custom-resource</code> instead.</p>
pub fn service_namespace(&self) -> ::std::option::Option<&crate::types::ServiceNamespace> {
self.service_namespace.as_ref()
}
/// <p>The identifier of the resource that is associated with the scalable target. This string consists of the resource type and unique identifier.</p>
/// <ul>
/// <li>
/// <p>ECS service - The resource type is <code>service</code> and the unique identifier is the cluster name and service name. Example: <code>service/my-cluster/my-service</code>.</p></li>
/// <li>
/// <p>Spot Fleet - The resource type is <code>spot-fleet-request</code> and the unique identifier is the Spot Fleet request ID. Example: <code>spot-fleet-request/sfr-73fbd2ce-aa30-494c-8788-1cee4EXAMPLE</code>.</p></li>
/// <li>
/// <p>EMR cluster - The resource type is <code>instancegroup</code> and the unique identifier is the cluster ID and instance group ID. Example: <code>instancegroup/j-2EEZNYKUA1NTV/ig-1791Y4E1L8YI0</code>.</p></li>
/// <li>
/// <p>AppStream 2.0 fleet - The resource type is <code>fleet</code> and the unique identifier is the fleet name. Example: <code>fleet/sample-fleet</code>.</p></li>
/// <li>
/// <p>DynamoDB table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>table/my-table</code>.</p></li>
/// <li>
/// <p>DynamoDB global secondary index - The resource type is <code>index</code> and the unique identifier is the index name. Example: <code>table/my-table/index/my-table-index</code>.</p></li>
/// <li>
/// <p>Aurora DB cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:my-db-cluster</code>.</p></li>
/// <li>
/// <p>SageMaker endpoint variant - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>Custom resources are not supported with a resource type. This parameter must specify the <code>OutputValue</code> from the CloudFormation template stack used to access the resources. The unique identifier is defined by the service provider. More information is available in our <a href="https://github.com/aws/aws-auto-scaling-custom-resource">GitHub repository</a>.</p></li>
/// <li>
/// <p>Amazon Comprehend document classification endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:document-classifier-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Amazon Comprehend entity recognizer endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:entity-recognizer-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Lambda provisioned concurrency - The resource type is <code>function</code> and the unique identifier is the function name with a function version or alias name suffix that is not <code>$LATEST</code>. Example: <code>function:my-function:prod</code> or <code>function:my-function:1</code>.</p></li>
/// <li>
/// <p>Amazon Keyspaces table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>keyspace/mykeyspace/table/mytable</code>.</p></li>
/// <li>
/// <p>Amazon MSK cluster - The resource type and unique identifier are specified using the cluster ARN. Example: <code>arn:aws:kafka:us-east-1:123456789012:cluster/demo-cluster-1/6357e0b2-0e6a-4b86-a0b4-70df934c2e31-5</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache replication group - The resource type is <code>replication-group</code> and the unique identifier is the replication group name. Example: <code>replication-group/mycluster</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache cache cluster - The resource type is <code>cache-cluster</code> and the unique identifier is the cache cluster name. Example: <code>cache-cluster/mycluster</code>.</p></li>
/// <li>
/// <p>Neptune cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:mycluster</code>.</p></li>
/// <li>
/// <p>SageMaker serverless endpoint - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>SageMaker inference component - The resource type is <code>inference-component</code> and the unique identifier is the resource ID. Example: <code>inference-component/my-inference-component</code>.</p></li>
/// <li>
/// <p>Pool of WorkSpaces - The resource type is <code>workspacespool</code> and the unique identifier is the pool ID. Example: <code>workspacespool/wspool-123456</code>.</p></li>
/// </ul>
pub fn resource_id(&self) -> ::std::option::Option<&str> {
self.resource_id.as_deref()
}
/// <p>The scalable dimension associated with the scalable target. This string consists of the service namespace, resource type, and scaling property.</p>
/// <ul>
/// <li>
/// <p><code>ecs:service:DesiredCount</code> - The task count of an ECS service.</p></li>
/// <li>
/// <p><code>elasticmapreduce:instancegroup:InstanceCount</code> - The instance count of an EMR Instance Group.</p></li>
/// <li>
/// <p><code>ec2:spot-fleet-request:TargetCapacity</code> - The target capacity of a Spot Fleet.</p></li>
/// <li>
/// <p><code>appstream:fleet:DesiredCapacity</code> - The capacity of an AppStream 2.0 fleet.</p></li>
/// <li>
/// <p><code>dynamodb:table:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:table:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:index:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>dynamodb:index:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>rds:cluster:ReadReplicaCount</code> - The count of Aurora Replicas in an Aurora DB cluster. Available for Aurora MySQL-compatible edition and Aurora PostgreSQL-compatible edition.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredInstanceCount</code> - The number of EC2 instances for a SageMaker model endpoint variant.</p></li>
/// <li>
/// <p><code>custom-resource:ResourceType:Property</code> - The scalable dimension for a custom resource provided by your own application or service.</p></li>
/// <li>
/// <p><code>comprehend:document-classifier-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend document classification endpoint.</p></li>
/// <li>
/// <p><code>comprehend:entity-recognizer-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend entity recognizer endpoint.</p></li>
/// <li>
/// <p><code>lambda:function:ProvisionedConcurrency</code> - The provisioned concurrency for a Lambda function.</p></li>
/// <li>
/// <p><code>cassandra:table:ReadCapacityUnits</code> - The provisioned read capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>cassandra:table:WriteCapacityUnits</code> - The provisioned write capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>kafka:broker-storage:VolumeSize</code> - The provisioned volume size (in GiB) for brokers in an Amazon MSK cluster.</p></li>
/// <li>
/// <p><code>elasticache:cache-cluster:Nodes</code> - The number of nodes for an Amazon ElastiCache cache cluster.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:NodeGroups</code> - The number of node groups for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:Replicas</code> - The number of replicas per node group for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>neptune:cluster:ReadReplicaCount</code> - The count of read replicas in an Amazon Neptune DB cluster.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredProvisionedConcurrency</code> - The provisioned concurrency for a SageMaker serverless endpoint.</p></li>
/// <li>
/// <p><code>sagemaker:inference-component:DesiredCopyCount</code> - The number of copies across an endpoint for a SageMaker inference component.</p></li>
/// <li>
/// <p><code>workspaces:workspacespool:DesiredUserSessions</code> - The number of user sessions for the WorkSpaces in the pool.</p></li>
/// </ul>
pub fn scalable_dimension(&self) -> ::std::option::Option<&crate::types::ScalableDimension> {
self.scalable_dimension.as_ref()
}
/// <p>The minimum value that you plan to scale in to. When a scaling policy is in effect, Application Auto Scaling can scale in (contract) as needed to the minimum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>For the following resources, the minimum value allowed is 0.</p>
/// <ul>
/// <li>
/// <p>AppStream 2.0 fleets</p></li>
/// <li>
/// <p>Aurora DB clusters</p></li>
/// <li>
/// <p>ECS services</p></li>
/// <li>
/// <p>EMR clusters</p></li>
/// <li>
/// <p>Lambda provisioned concurrency</p></li>
/// <li>
/// <p>SageMaker endpoint variants</p></li>
/// <li>
/// <p>SageMaker inference components</p></li>
/// <li>
/// <p>SageMaker serverless endpoint provisioned concurrency</p></li>
/// <li>
/// <p>Spot Fleets</p></li>
/// <li>
/// <p>custom resources</p></li>
/// </ul>
/// <p>It's strongly recommended that you specify a value greater than 0. A value greater than 0 means that data points are continuously reported to CloudWatch that scaling policies can use to scale on a metric like average CPU utilization.</p>
/// <p>For all other resources, the minimum allowed value depends on the type of resource that you are using. If you provide a value that is lower than what a resource can accept, an error occurs. In which case, the error message will provide the minimum value that the resource can accept.</p>
pub fn min_capacity(&self) -> ::std::option::Option<i32> {
self.min_capacity
}
/// <p>The maximum value that you plan to scale out to. When a scaling policy is in effect, Application Auto Scaling can scale out (expand) as needed to the maximum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>Although you can specify a large maximum capacity, note that service quotas might impose lower limits. Each service has its own default quotas for the maximum capacity of the resource. If you want to specify a higher limit, you can request an increase. For more information, consult the documentation for that service. For information about the default quotas for each service, see <a href="https://docs.aws.amazon.com/general/latest/gr/aws-service-information.html">Service endpoints and quotas</a> in the <i>Amazon Web Services General Reference</i>.</p>
pub fn max_capacity(&self) -> ::std::option::Option<i32> {
self.max_capacity
}
/// <p>This parameter is required for services that do not support service-linked roles (such as Amazon EMR), and it must specify the ARN of an IAM role that allows Application Auto Scaling to modify the scalable target on your behalf.</p>
/// <p>If the service supports service-linked roles, Application Auto Scaling uses a service-linked role, which it creates if it does not yet exist. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/security_iam_service-with-iam.html">How Application Auto Scaling works with IAM</a>.</p>
pub fn role_arn(&self) -> ::std::option::Option<&str> {
self.role_arn.as_deref()
}
/// <p>An embedded object that contains attributes and attribute values that are used to suspend and resume automatic scaling. Setting the value of an attribute to <code>true</code> suspends the specified scaling activities. Setting it to <code>false</code> (default) resumes the specified scaling activities.</p>
/// <p><b>Suspension Outcomes</b></p>
/// <ul>
/// <li>
/// <p>For <code>DynamicScalingInSuspended</code>, while a suspension is in effect, all scale-in activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>DynamicScalingOutSuspended</code>, while a suspension is in effect, all scale-out activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>ScheduledScalingSuspended</code>, while a suspension is in effect, all scaling activities that involve scheduled actions are suspended.</p></li>
/// </ul>
/// <p>For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/application-auto-scaling-suspend-resume-scaling.html">Suspend and resume scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn suspended_state(&self) -> ::std::option::Option<&crate::types::SuspendedState> {
self.suspended_state.as_ref()
}
/// <p>Assigns one or more tags to the scalable target. Use this parameter to tag the scalable target when it is created. To tag an existing scalable target, use the <code>TagResource</code> operation.</p>
/// <p>Each tag consists of a tag key and a tag value. Both the tag key and the tag value are required. You cannot have more than one tag on a scalable target with the same tag key.</p>
/// <p>Use tags to control access to a scalable target. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/resource-tagging-support.html">Tagging support for Application Auto Scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn tags(&self) -> ::std::option::Option<&::std::collections::HashMap<::std::string::String, ::std::string::String>> {
self.tags.as_ref()
}
}
impl RegisterScalableTargetInput {
/// Creates a new builder-style object to manufacture [`RegisterScalableTargetInput`](crate::operation::register_scalable_target::RegisterScalableTargetInput).
pub fn builder() -> crate::operation::register_scalable_target::builders::RegisterScalableTargetInputBuilder {
crate::operation::register_scalable_target::builders::RegisterScalableTargetInputBuilder::default()
}
}
/// A builder for [`RegisterScalableTargetInput`](crate::operation::register_scalable_target::RegisterScalableTargetInput).
#[derive(::std::clone::Clone, ::std::cmp::PartialEq, ::std::default::Default, ::std::fmt::Debug)]
#[non_exhaustive]
pub struct RegisterScalableTargetInputBuilder {
pub(crate) service_namespace: ::std::option::Option<crate::types::ServiceNamespace>,
pub(crate) resource_id: ::std::option::Option<::std::string::String>,
pub(crate) scalable_dimension: ::std::option::Option<crate::types::ScalableDimension>,
pub(crate) min_capacity: ::std::option::Option<i32>,
pub(crate) max_capacity: ::std::option::Option<i32>,
pub(crate) role_arn: ::std::option::Option<::std::string::String>,
pub(crate) suspended_state: ::std::option::Option<crate::types::SuspendedState>,
pub(crate) tags: ::std::option::Option<::std::collections::HashMap<::std::string::String, ::std::string::String>>,
}
impl RegisterScalableTargetInputBuilder {
/// <p>The namespace of the Amazon Web Services service that provides the resource. For a resource provided by your own application or service, use <code>custom-resource</code> instead.</p>
/// This field is required.
pub fn service_namespace(mut self, input: crate::types::ServiceNamespace) -> Self {
self.service_namespace = ::std::option::Option::Some(input);
self
}
/// <p>The namespace of the Amazon Web Services service that provides the resource. For a resource provided by your own application or service, use <code>custom-resource</code> instead.</p>
pub fn set_service_namespace(mut self, input: ::std::option::Option<crate::types::ServiceNamespace>) -> Self {
self.service_namespace = input;
self
}
/// <p>The namespace of the Amazon Web Services service that provides the resource. For a resource provided by your own application or service, use <code>custom-resource</code> instead.</p>
pub fn get_service_namespace(&self) -> &::std::option::Option<crate::types::ServiceNamespace> {
&self.service_namespace
}
/// <p>The identifier of the resource that is associated with the scalable target. This string consists of the resource type and unique identifier.</p>
/// <ul>
/// <li>
/// <p>ECS service - The resource type is <code>service</code> and the unique identifier is the cluster name and service name. Example: <code>service/my-cluster/my-service</code>.</p></li>
/// <li>
/// <p>Spot Fleet - The resource type is <code>spot-fleet-request</code> and the unique identifier is the Spot Fleet request ID. Example: <code>spot-fleet-request/sfr-73fbd2ce-aa30-494c-8788-1cee4EXAMPLE</code>.</p></li>
/// <li>
/// <p>EMR cluster - The resource type is <code>instancegroup</code> and the unique identifier is the cluster ID and instance group ID. Example: <code>instancegroup/j-2EEZNYKUA1NTV/ig-1791Y4E1L8YI0</code>.</p></li>
/// <li>
/// <p>AppStream 2.0 fleet - The resource type is <code>fleet</code> and the unique identifier is the fleet name. Example: <code>fleet/sample-fleet</code>.</p></li>
/// <li>
/// <p>DynamoDB table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>table/my-table</code>.</p></li>
/// <li>
/// <p>DynamoDB global secondary index - The resource type is <code>index</code> and the unique identifier is the index name. Example: <code>table/my-table/index/my-table-index</code>.</p></li>
/// <li>
/// <p>Aurora DB cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:my-db-cluster</code>.</p></li>
/// <li>
/// <p>SageMaker endpoint variant - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>Custom resources are not supported with a resource type. This parameter must specify the <code>OutputValue</code> from the CloudFormation template stack used to access the resources. The unique identifier is defined by the service provider. More information is available in our <a href="https://github.com/aws/aws-auto-scaling-custom-resource">GitHub repository</a>.</p></li>
/// <li>
/// <p>Amazon Comprehend document classification endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:document-classifier-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Amazon Comprehend entity recognizer endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:entity-recognizer-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Lambda provisioned concurrency - The resource type is <code>function</code> and the unique identifier is the function name with a function version or alias name suffix that is not <code>$LATEST</code>. Example: <code>function:my-function:prod</code> or <code>function:my-function:1</code>.</p></li>
/// <li>
/// <p>Amazon Keyspaces table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>keyspace/mykeyspace/table/mytable</code>.</p></li>
/// <li>
/// <p>Amazon MSK cluster - The resource type and unique identifier are specified using the cluster ARN. Example: <code>arn:aws:kafka:us-east-1:123456789012:cluster/demo-cluster-1/6357e0b2-0e6a-4b86-a0b4-70df934c2e31-5</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache replication group - The resource type is <code>replication-group</code> and the unique identifier is the replication group name. Example: <code>replication-group/mycluster</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache cache cluster - The resource type is <code>cache-cluster</code> and the unique identifier is the cache cluster name. Example: <code>cache-cluster/mycluster</code>.</p></li>
/// <li>
/// <p>Neptune cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:mycluster</code>.</p></li>
/// <li>
/// <p>SageMaker serverless endpoint - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>SageMaker inference component - The resource type is <code>inference-component</code> and the unique identifier is the resource ID. Example: <code>inference-component/my-inference-component</code>.</p></li>
/// <li>
/// <p>Pool of WorkSpaces - The resource type is <code>workspacespool</code> and the unique identifier is the pool ID. Example: <code>workspacespool/wspool-123456</code>.</p></li>
/// </ul>
/// This field is required.
pub fn resource_id(mut self, input: impl ::std::convert::Into<::std::string::String>) -> Self {
self.resource_id = ::std::option::Option::Some(input.into());
self
}
/// <p>The identifier of the resource that is associated with the scalable target. This string consists of the resource type and unique identifier.</p>
/// <ul>
/// <li>
/// <p>ECS service - The resource type is <code>service</code> and the unique identifier is the cluster name and service name. Example: <code>service/my-cluster/my-service</code>.</p></li>
/// <li>
/// <p>Spot Fleet - The resource type is <code>spot-fleet-request</code> and the unique identifier is the Spot Fleet request ID. Example: <code>spot-fleet-request/sfr-73fbd2ce-aa30-494c-8788-1cee4EXAMPLE</code>.</p></li>
/// <li>
/// <p>EMR cluster - The resource type is <code>instancegroup</code> and the unique identifier is the cluster ID and instance group ID. Example: <code>instancegroup/j-2EEZNYKUA1NTV/ig-1791Y4E1L8YI0</code>.</p></li>
/// <li>
/// <p>AppStream 2.0 fleet - The resource type is <code>fleet</code> and the unique identifier is the fleet name. Example: <code>fleet/sample-fleet</code>.</p></li>
/// <li>
/// <p>DynamoDB table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>table/my-table</code>.</p></li>
/// <li>
/// <p>DynamoDB global secondary index - The resource type is <code>index</code> and the unique identifier is the index name. Example: <code>table/my-table/index/my-table-index</code>.</p></li>
/// <li>
/// <p>Aurora DB cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:my-db-cluster</code>.</p></li>
/// <li>
/// <p>SageMaker endpoint variant - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>Custom resources are not supported with a resource type. This parameter must specify the <code>OutputValue</code> from the CloudFormation template stack used to access the resources. The unique identifier is defined by the service provider. More information is available in our <a href="https://github.com/aws/aws-auto-scaling-custom-resource">GitHub repository</a>.</p></li>
/// <li>
/// <p>Amazon Comprehend document classification endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:document-classifier-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Amazon Comprehend entity recognizer endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:entity-recognizer-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Lambda provisioned concurrency - The resource type is <code>function</code> and the unique identifier is the function name with a function version or alias name suffix that is not <code>$LATEST</code>. Example: <code>function:my-function:prod</code> or <code>function:my-function:1</code>.</p></li>
/// <li>
/// <p>Amazon Keyspaces table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>keyspace/mykeyspace/table/mytable</code>.</p></li>
/// <li>
/// <p>Amazon MSK cluster - The resource type and unique identifier are specified using the cluster ARN. Example: <code>arn:aws:kafka:us-east-1:123456789012:cluster/demo-cluster-1/6357e0b2-0e6a-4b86-a0b4-70df934c2e31-5</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache replication group - The resource type is <code>replication-group</code> and the unique identifier is the replication group name. Example: <code>replication-group/mycluster</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache cache cluster - The resource type is <code>cache-cluster</code> and the unique identifier is the cache cluster name. Example: <code>cache-cluster/mycluster</code>.</p></li>
/// <li>
/// <p>Neptune cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:mycluster</code>.</p></li>
/// <li>
/// <p>SageMaker serverless endpoint - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>SageMaker inference component - The resource type is <code>inference-component</code> and the unique identifier is the resource ID. Example: <code>inference-component/my-inference-component</code>.</p></li>
/// <li>
/// <p>Pool of WorkSpaces - The resource type is <code>workspacespool</code> and the unique identifier is the pool ID. Example: <code>workspacespool/wspool-123456</code>.</p></li>
/// </ul>
pub fn set_resource_id(mut self, input: ::std::option::Option<::std::string::String>) -> Self {
self.resource_id = input;
self
}
/// <p>The identifier of the resource that is associated with the scalable target. This string consists of the resource type and unique identifier.</p>
/// <ul>
/// <li>
/// <p>ECS service - The resource type is <code>service</code> and the unique identifier is the cluster name and service name. Example: <code>service/my-cluster/my-service</code>.</p></li>
/// <li>
/// <p>Spot Fleet - The resource type is <code>spot-fleet-request</code> and the unique identifier is the Spot Fleet request ID. Example: <code>spot-fleet-request/sfr-73fbd2ce-aa30-494c-8788-1cee4EXAMPLE</code>.</p></li>
/// <li>
/// <p>EMR cluster - The resource type is <code>instancegroup</code> and the unique identifier is the cluster ID and instance group ID. Example: <code>instancegroup/j-2EEZNYKUA1NTV/ig-1791Y4E1L8YI0</code>.</p></li>
/// <li>
/// <p>AppStream 2.0 fleet - The resource type is <code>fleet</code> and the unique identifier is the fleet name. Example: <code>fleet/sample-fleet</code>.</p></li>
/// <li>
/// <p>DynamoDB table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>table/my-table</code>.</p></li>
/// <li>
/// <p>DynamoDB global secondary index - The resource type is <code>index</code> and the unique identifier is the index name. Example: <code>table/my-table/index/my-table-index</code>.</p></li>
/// <li>
/// <p>Aurora DB cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:my-db-cluster</code>.</p></li>
/// <li>
/// <p>SageMaker endpoint variant - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>Custom resources are not supported with a resource type. This parameter must specify the <code>OutputValue</code> from the CloudFormation template stack used to access the resources. The unique identifier is defined by the service provider. More information is available in our <a href="https://github.com/aws/aws-auto-scaling-custom-resource">GitHub repository</a>.</p></li>
/// <li>
/// <p>Amazon Comprehend document classification endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:document-classifier-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Amazon Comprehend entity recognizer endpoint - The resource type and unique identifier are specified using the endpoint ARN. Example: <code>arn:aws:comprehend:us-west-2:123456789012:entity-recognizer-endpoint/EXAMPLE</code>.</p></li>
/// <li>
/// <p>Lambda provisioned concurrency - The resource type is <code>function</code> and the unique identifier is the function name with a function version or alias name suffix that is not <code>$LATEST</code>. Example: <code>function:my-function:prod</code> or <code>function:my-function:1</code>.</p></li>
/// <li>
/// <p>Amazon Keyspaces table - The resource type is <code>table</code> and the unique identifier is the table name. Example: <code>keyspace/mykeyspace/table/mytable</code>.</p></li>
/// <li>
/// <p>Amazon MSK cluster - The resource type and unique identifier are specified using the cluster ARN. Example: <code>arn:aws:kafka:us-east-1:123456789012:cluster/demo-cluster-1/6357e0b2-0e6a-4b86-a0b4-70df934c2e31-5</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache replication group - The resource type is <code>replication-group</code> and the unique identifier is the replication group name. Example: <code>replication-group/mycluster</code>.</p></li>
/// <li>
/// <p>Amazon ElastiCache cache cluster - The resource type is <code>cache-cluster</code> and the unique identifier is the cache cluster name. Example: <code>cache-cluster/mycluster</code>.</p></li>
/// <li>
/// <p>Neptune cluster - The resource type is <code>cluster</code> and the unique identifier is the cluster name. Example: <code>cluster:mycluster</code>.</p></li>
/// <li>
/// <p>SageMaker serverless endpoint - The resource type is <code>variant</code> and the unique identifier is the resource ID. Example: <code>endpoint/my-end-point/variant/KMeansClustering</code>.</p></li>
/// <li>
/// <p>SageMaker inference component - The resource type is <code>inference-component</code> and the unique identifier is the resource ID. Example: <code>inference-component/my-inference-component</code>.</p></li>
/// <li>
/// <p>Pool of WorkSpaces - The resource type is <code>workspacespool</code> and the unique identifier is the pool ID. Example: <code>workspacespool/wspool-123456</code>.</p></li>
/// </ul>
pub fn get_resource_id(&self) -> &::std::option::Option<::std::string::String> {
&self.resource_id
}
/// <p>The scalable dimension associated with the scalable target. This string consists of the service namespace, resource type, and scaling property.</p>
/// <ul>
/// <li>
/// <p><code>ecs:service:DesiredCount</code> - The task count of an ECS service.</p></li>
/// <li>
/// <p><code>elasticmapreduce:instancegroup:InstanceCount</code> - The instance count of an EMR Instance Group.</p></li>
/// <li>
/// <p><code>ec2:spot-fleet-request:TargetCapacity</code> - The target capacity of a Spot Fleet.</p></li>
/// <li>
/// <p><code>appstream:fleet:DesiredCapacity</code> - The capacity of an AppStream 2.0 fleet.</p></li>
/// <li>
/// <p><code>dynamodb:table:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:table:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:index:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>dynamodb:index:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>rds:cluster:ReadReplicaCount</code> - The count of Aurora Replicas in an Aurora DB cluster. Available for Aurora MySQL-compatible edition and Aurora PostgreSQL-compatible edition.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredInstanceCount</code> - The number of EC2 instances for a SageMaker model endpoint variant.</p></li>
/// <li>
/// <p><code>custom-resource:ResourceType:Property</code> - The scalable dimension for a custom resource provided by your own application or service.</p></li>
/// <li>
/// <p><code>comprehend:document-classifier-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend document classification endpoint.</p></li>
/// <li>
/// <p><code>comprehend:entity-recognizer-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend entity recognizer endpoint.</p></li>
/// <li>
/// <p><code>lambda:function:ProvisionedConcurrency</code> - The provisioned concurrency for a Lambda function.</p></li>
/// <li>
/// <p><code>cassandra:table:ReadCapacityUnits</code> - The provisioned read capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>cassandra:table:WriteCapacityUnits</code> - The provisioned write capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>kafka:broker-storage:VolumeSize</code> - The provisioned volume size (in GiB) for brokers in an Amazon MSK cluster.</p></li>
/// <li>
/// <p><code>elasticache:cache-cluster:Nodes</code> - The number of nodes for an Amazon ElastiCache cache cluster.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:NodeGroups</code> - The number of node groups for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:Replicas</code> - The number of replicas per node group for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>neptune:cluster:ReadReplicaCount</code> - The count of read replicas in an Amazon Neptune DB cluster.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredProvisionedConcurrency</code> - The provisioned concurrency for a SageMaker serverless endpoint.</p></li>
/// <li>
/// <p><code>sagemaker:inference-component:DesiredCopyCount</code> - The number of copies across an endpoint for a SageMaker inference component.</p></li>
/// <li>
/// <p><code>workspaces:workspacespool:DesiredUserSessions</code> - The number of user sessions for the WorkSpaces in the pool.</p></li>
/// </ul>
/// This field is required.
pub fn scalable_dimension(mut self, input: crate::types::ScalableDimension) -> Self {
self.scalable_dimension = ::std::option::Option::Some(input);
self
}
/// <p>The scalable dimension associated with the scalable target. This string consists of the service namespace, resource type, and scaling property.</p>
/// <ul>
/// <li>
/// <p><code>ecs:service:DesiredCount</code> - The task count of an ECS service.</p></li>
/// <li>
/// <p><code>elasticmapreduce:instancegroup:InstanceCount</code> - The instance count of an EMR Instance Group.</p></li>
/// <li>
/// <p><code>ec2:spot-fleet-request:TargetCapacity</code> - The target capacity of a Spot Fleet.</p></li>
/// <li>
/// <p><code>appstream:fleet:DesiredCapacity</code> - The capacity of an AppStream 2.0 fleet.</p></li>
/// <li>
/// <p><code>dynamodb:table:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:table:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:index:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>dynamodb:index:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>rds:cluster:ReadReplicaCount</code> - The count of Aurora Replicas in an Aurora DB cluster. Available for Aurora MySQL-compatible edition and Aurora PostgreSQL-compatible edition.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredInstanceCount</code> - The number of EC2 instances for a SageMaker model endpoint variant.</p></li>
/// <li>
/// <p><code>custom-resource:ResourceType:Property</code> - The scalable dimension for a custom resource provided by your own application or service.</p></li>
/// <li>
/// <p><code>comprehend:document-classifier-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend document classification endpoint.</p></li>
/// <li>
/// <p><code>comprehend:entity-recognizer-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend entity recognizer endpoint.</p></li>
/// <li>
/// <p><code>lambda:function:ProvisionedConcurrency</code> - The provisioned concurrency for a Lambda function.</p></li>
/// <li>
/// <p><code>cassandra:table:ReadCapacityUnits</code> - The provisioned read capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>cassandra:table:WriteCapacityUnits</code> - The provisioned write capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>kafka:broker-storage:VolumeSize</code> - The provisioned volume size (in GiB) for brokers in an Amazon MSK cluster.</p></li>
/// <li>
/// <p><code>elasticache:cache-cluster:Nodes</code> - The number of nodes for an Amazon ElastiCache cache cluster.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:NodeGroups</code> - The number of node groups for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:Replicas</code> - The number of replicas per node group for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>neptune:cluster:ReadReplicaCount</code> - The count of read replicas in an Amazon Neptune DB cluster.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredProvisionedConcurrency</code> - The provisioned concurrency for a SageMaker serverless endpoint.</p></li>
/// <li>
/// <p><code>sagemaker:inference-component:DesiredCopyCount</code> - The number of copies across an endpoint for a SageMaker inference component.</p></li>
/// <li>
/// <p><code>workspaces:workspacespool:DesiredUserSessions</code> - The number of user sessions for the WorkSpaces in the pool.</p></li>
/// </ul>
pub fn set_scalable_dimension(mut self, input: ::std::option::Option<crate::types::ScalableDimension>) -> Self {
self.scalable_dimension = input;
self
}
/// <p>The scalable dimension associated with the scalable target. This string consists of the service namespace, resource type, and scaling property.</p>
/// <ul>
/// <li>
/// <p><code>ecs:service:DesiredCount</code> - The task count of an ECS service.</p></li>
/// <li>
/// <p><code>elasticmapreduce:instancegroup:InstanceCount</code> - The instance count of an EMR Instance Group.</p></li>
/// <li>
/// <p><code>ec2:spot-fleet-request:TargetCapacity</code> - The target capacity of a Spot Fleet.</p></li>
/// <li>
/// <p><code>appstream:fleet:DesiredCapacity</code> - The capacity of an AppStream 2.0 fleet.</p></li>
/// <li>
/// <p><code>dynamodb:table:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:table:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB table.</p></li>
/// <li>
/// <p><code>dynamodb:index:ReadCapacityUnits</code> - The provisioned read capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>dynamodb:index:WriteCapacityUnits</code> - The provisioned write capacity for a DynamoDB global secondary index.</p></li>
/// <li>
/// <p><code>rds:cluster:ReadReplicaCount</code> - The count of Aurora Replicas in an Aurora DB cluster. Available for Aurora MySQL-compatible edition and Aurora PostgreSQL-compatible edition.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredInstanceCount</code> - The number of EC2 instances for a SageMaker model endpoint variant.</p></li>
/// <li>
/// <p><code>custom-resource:ResourceType:Property</code> - The scalable dimension for a custom resource provided by your own application or service.</p></li>
/// <li>
/// <p><code>comprehend:document-classifier-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend document classification endpoint.</p></li>
/// <li>
/// <p><code>comprehend:entity-recognizer-endpoint:DesiredInferenceUnits</code> - The number of inference units for an Amazon Comprehend entity recognizer endpoint.</p></li>
/// <li>
/// <p><code>lambda:function:ProvisionedConcurrency</code> - The provisioned concurrency for a Lambda function.</p></li>
/// <li>
/// <p><code>cassandra:table:ReadCapacityUnits</code> - The provisioned read capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>cassandra:table:WriteCapacityUnits</code> - The provisioned write capacity for an Amazon Keyspaces table.</p></li>
/// <li>
/// <p><code>kafka:broker-storage:VolumeSize</code> - The provisioned volume size (in GiB) for brokers in an Amazon MSK cluster.</p></li>
/// <li>
/// <p><code>elasticache:cache-cluster:Nodes</code> - The number of nodes for an Amazon ElastiCache cache cluster.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:NodeGroups</code> - The number of node groups for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>elasticache:replication-group:Replicas</code> - The number of replicas per node group for an Amazon ElastiCache replication group.</p></li>
/// <li>
/// <p><code>neptune:cluster:ReadReplicaCount</code> - The count of read replicas in an Amazon Neptune DB cluster.</p></li>
/// <li>
/// <p><code>sagemaker:variant:DesiredProvisionedConcurrency</code> - The provisioned concurrency for a SageMaker serverless endpoint.</p></li>
/// <li>
/// <p><code>sagemaker:inference-component:DesiredCopyCount</code> - The number of copies across an endpoint for a SageMaker inference component.</p></li>
/// <li>
/// <p><code>workspaces:workspacespool:DesiredUserSessions</code> - The number of user sessions for the WorkSpaces in the pool.</p></li>
/// </ul>
pub fn get_scalable_dimension(&self) -> &::std::option::Option<crate::types::ScalableDimension> {
&self.scalable_dimension
}
/// <p>The minimum value that you plan to scale in to. When a scaling policy is in effect, Application Auto Scaling can scale in (contract) as needed to the minimum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>For the following resources, the minimum value allowed is 0.</p>
/// <ul>
/// <li>
/// <p>AppStream 2.0 fleets</p></li>
/// <li>
/// <p>Aurora DB clusters</p></li>
/// <li>
/// <p>ECS services</p></li>
/// <li>
/// <p>EMR clusters</p></li>
/// <li>
/// <p>Lambda provisioned concurrency</p></li>
/// <li>
/// <p>SageMaker endpoint variants</p></li>
/// <li>
/// <p>SageMaker inference components</p></li>
/// <li>
/// <p>SageMaker serverless endpoint provisioned concurrency</p></li>
/// <li>
/// <p>Spot Fleets</p></li>
/// <li>
/// <p>custom resources</p></li>
/// </ul>
/// <p>It's strongly recommended that you specify a value greater than 0. A value greater than 0 means that data points are continuously reported to CloudWatch that scaling policies can use to scale on a metric like average CPU utilization.</p>
/// <p>For all other resources, the minimum allowed value depends on the type of resource that you are using. If you provide a value that is lower than what a resource can accept, an error occurs. In which case, the error message will provide the minimum value that the resource can accept.</p>
pub fn min_capacity(mut self, input: i32) -> Self {
self.min_capacity = ::std::option::Option::Some(input);
self
}
/// <p>The minimum value that you plan to scale in to. When a scaling policy is in effect, Application Auto Scaling can scale in (contract) as needed to the minimum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>For the following resources, the minimum value allowed is 0.</p>
/// <ul>
/// <li>
/// <p>AppStream 2.0 fleets</p></li>
/// <li>
/// <p>Aurora DB clusters</p></li>
/// <li>
/// <p>ECS services</p></li>
/// <li>
/// <p>EMR clusters</p></li>
/// <li>
/// <p>Lambda provisioned concurrency</p></li>
/// <li>
/// <p>SageMaker endpoint variants</p></li>
/// <li>
/// <p>SageMaker inference components</p></li>
/// <li>
/// <p>SageMaker serverless endpoint provisioned concurrency</p></li>
/// <li>
/// <p>Spot Fleets</p></li>
/// <li>
/// <p>custom resources</p></li>
/// </ul>
/// <p>It's strongly recommended that you specify a value greater than 0. A value greater than 0 means that data points are continuously reported to CloudWatch that scaling policies can use to scale on a metric like average CPU utilization.</p>
/// <p>For all other resources, the minimum allowed value depends on the type of resource that you are using. If you provide a value that is lower than what a resource can accept, an error occurs. In which case, the error message will provide the minimum value that the resource can accept.</p>
pub fn set_min_capacity(mut self, input: ::std::option::Option<i32>) -> Self {
self.min_capacity = input;
self
}
/// <p>The minimum value that you plan to scale in to. When a scaling policy is in effect, Application Auto Scaling can scale in (contract) as needed to the minimum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>For the following resources, the minimum value allowed is 0.</p>
/// <ul>
/// <li>
/// <p>AppStream 2.0 fleets</p></li>
/// <li>
/// <p>Aurora DB clusters</p></li>
/// <li>
/// <p>ECS services</p></li>
/// <li>
/// <p>EMR clusters</p></li>
/// <li>
/// <p>Lambda provisioned concurrency</p></li>
/// <li>
/// <p>SageMaker endpoint variants</p></li>
/// <li>
/// <p>SageMaker inference components</p></li>
/// <li>
/// <p>SageMaker serverless endpoint provisioned concurrency</p></li>
/// <li>
/// <p>Spot Fleets</p></li>
/// <li>
/// <p>custom resources</p></li>
/// </ul>
/// <p>It's strongly recommended that you specify a value greater than 0. A value greater than 0 means that data points are continuously reported to CloudWatch that scaling policies can use to scale on a metric like average CPU utilization.</p>
/// <p>For all other resources, the minimum allowed value depends on the type of resource that you are using. If you provide a value that is lower than what a resource can accept, an error occurs. In which case, the error message will provide the minimum value that the resource can accept.</p>
pub fn get_min_capacity(&self) -> &::std::option::Option<i32> {
&self.min_capacity
}
/// <p>The maximum value that you plan to scale out to. When a scaling policy is in effect, Application Auto Scaling can scale out (expand) as needed to the maximum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>Although you can specify a large maximum capacity, note that service quotas might impose lower limits. Each service has its own default quotas for the maximum capacity of the resource. If you want to specify a higher limit, you can request an increase. For more information, consult the documentation for that service. For information about the default quotas for each service, see <a href="https://docs.aws.amazon.com/general/latest/gr/aws-service-information.html">Service endpoints and quotas</a> in the <i>Amazon Web Services General Reference</i>.</p>
pub fn max_capacity(mut self, input: i32) -> Self {
self.max_capacity = ::std::option::Option::Some(input);
self
}
/// <p>The maximum value that you plan to scale out to. When a scaling policy is in effect, Application Auto Scaling can scale out (expand) as needed to the maximum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>Although you can specify a large maximum capacity, note that service quotas might impose lower limits. Each service has its own default quotas for the maximum capacity of the resource. If you want to specify a higher limit, you can request an increase. For more information, consult the documentation for that service. For information about the default quotas for each service, see <a href="https://docs.aws.amazon.com/general/latest/gr/aws-service-information.html">Service endpoints and quotas</a> in the <i>Amazon Web Services General Reference</i>.</p>
pub fn set_max_capacity(mut self, input: ::std::option::Option<i32>) -> Self {
self.max_capacity = input;
self
}
/// <p>The maximum value that you plan to scale out to. When a scaling policy is in effect, Application Auto Scaling can scale out (expand) as needed to the maximum capacity limit in response to changing demand. This property is required when registering a new scalable target.</p>
/// <p>Although you can specify a large maximum capacity, note that service quotas might impose lower limits. Each service has its own default quotas for the maximum capacity of the resource. If you want to specify a higher limit, you can request an increase. For more information, consult the documentation for that service. For information about the default quotas for each service, see <a href="https://docs.aws.amazon.com/general/latest/gr/aws-service-information.html">Service endpoints and quotas</a> in the <i>Amazon Web Services General Reference</i>.</p>
pub fn get_max_capacity(&self) -> &::std::option::Option<i32> {
&self.max_capacity
}
/// <p>This parameter is required for services that do not support service-linked roles (such as Amazon EMR), and it must specify the ARN of an IAM role that allows Application Auto Scaling to modify the scalable target on your behalf.</p>
/// <p>If the service supports service-linked roles, Application Auto Scaling uses a service-linked role, which it creates if it does not yet exist. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/security_iam_service-with-iam.html">How Application Auto Scaling works with IAM</a>.</p>
pub fn role_arn(mut self, input: impl ::std::convert::Into<::std::string::String>) -> Self {
self.role_arn = ::std::option::Option::Some(input.into());
self
}
/// <p>This parameter is required for services that do not support service-linked roles (such as Amazon EMR), and it must specify the ARN of an IAM role that allows Application Auto Scaling to modify the scalable target on your behalf.</p>
/// <p>If the service supports service-linked roles, Application Auto Scaling uses a service-linked role, which it creates if it does not yet exist. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/security_iam_service-with-iam.html">How Application Auto Scaling works with IAM</a>.</p>
pub fn set_role_arn(mut self, input: ::std::option::Option<::std::string::String>) -> Self {
self.role_arn = input;
self
}
/// <p>This parameter is required for services that do not support service-linked roles (such as Amazon EMR), and it must specify the ARN of an IAM role that allows Application Auto Scaling to modify the scalable target on your behalf.</p>
/// <p>If the service supports service-linked roles, Application Auto Scaling uses a service-linked role, which it creates if it does not yet exist. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/security_iam_service-with-iam.html">How Application Auto Scaling works with IAM</a>.</p>
pub fn get_role_arn(&self) -> &::std::option::Option<::std::string::String> {
&self.role_arn
}
/// <p>An embedded object that contains attributes and attribute values that are used to suspend and resume automatic scaling. Setting the value of an attribute to <code>true</code> suspends the specified scaling activities. Setting it to <code>false</code> (default) resumes the specified scaling activities.</p>
/// <p><b>Suspension Outcomes</b></p>
/// <ul>
/// <li>
/// <p>For <code>DynamicScalingInSuspended</code>, while a suspension is in effect, all scale-in activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>DynamicScalingOutSuspended</code>, while a suspension is in effect, all scale-out activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>ScheduledScalingSuspended</code>, while a suspension is in effect, all scaling activities that involve scheduled actions are suspended.</p></li>
/// </ul>
/// <p>For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/application-auto-scaling-suspend-resume-scaling.html">Suspend and resume scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn suspended_state(mut self, input: crate::types::SuspendedState) -> Self {
self.suspended_state = ::std::option::Option::Some(input);
self
}
/// <p>An embedded object that contains attributes and attribute values that are used to suspend and resume automatic scaling. Setting the value of an attribute to <code>true</code> suspends the specified scaling activities. Setting it to <code>false</code> (default) resumes the specified scaling activities.</p>
/// <p><b>Suspension Outcomes</b></p>
/// <ul>
/// <li>
/// <p>For <code>DynamicScalingInSuspended</code>, while a suspension is in effect, all scale-in activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>DynamicScalingOutSuspended</code>, while a suspension is in effect, all scale-out activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>ScheduledScalingSuspended</code>, while a suspension is in effect, all scaling activities that involve scheduled actions are suspended.</p></li>
/// </ul>
/// <p>For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/application-auto-scaling-suspend-resume-scaling.html">Suspend and resume scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn set_suspended_state(mut self, input: ::std::option::Option<crate::types::SuspendedState>) -> Self {
self.suspended_state = input;
self
}
/// <p>An embedded object that contains attributes and attribute values that are used to suspend and resume automatic scaling. Setting the value of an attribute to <code>true</code> suspends the specified scaling activities. Setting it to <code>false</code> (default) resumes the specified scaling activities.</p>
/// <p><b>Suspension Outcomes</b></p>
/// <ul>
/// <li>
/// <p>For <code>DynamicScalingInSuspended</code>, while a suspension is in effect, all scale-in activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>DynamicScalingOutSuspended</code>, while a suspension is in effect, all scale-out activities that are triggered by a scaling policy are suspended.</p></li>
/// <li>
/// <p>For <code>ScheduledScalingSuspended</code>, while a suspension is in effect, all scaling activities that involve scheduled actions are suspended.</p></li>
/// </ul>
/// <p>For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/application-auto-scaling-suspend-resume-scaling.html">Suspend and resume scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn get_suspended_state(&self) -> &::std::option::Option<crate::types::SuspendedState> {
&self.suspended_state
}
/// Adds a key-value pair to `tags`.
///
/// To override the contents of this collection use [`set_tags`](Self::set_tags).
///
/// <p>Assigns one or more tags to the scalable target. Use this parameter to tag the scalable target when it is created. To tag an existing scalable target, use the <code>TagResource</code> operation.</p>
/// <p>Each tag consists of a tag key and a tag value. Both the tag key and the tag value are required. You cannot have more than one tag on a scalable target with the same tag key.</p>
/// <p>Use tags to control access to a scalable target. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/resource-tagging-support.html">Tagging support for Application Auto Scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn tags(mut self, k: impl ::std::convert::Into<::std::string::String>, v: impl ::std::convert::Into<::std::string::String>) -> Self {
let mut hash_map = self.tags.unwrap_or_default();
hash_map.insert(k.into(), v.into());
self.tags = ::std::option::Option::Some(hash_map);
self
}
/// <p>Assigns one or more tags to the scalable target. Use this parameter to tag the scalable target when it is created. To tag an existing scalable target, use the <code>TagResource</code> operation.</p>
/// <p>Each tag consists of a tag key and a tag value. Both the tag key and the tag value are required. You cannot have more than one tag on a scalable target with the same tag key.</p>
/// <p>Use tags to control access to a scalable target. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/resource-tagging-support.html">Tagging support for Application Auto Scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn set_tags(mut self, input: ::std::option::Option<::std::collections::HashMap<::std::string::String, ::std::string::String>>) -> Self {
self.tags = input;
self
}
/// <p>Assigns one or more tags to the scalable target. Use this parameter to tag the scalable target when it is created. To tag an existing scalable target, use the <code>TagResource</code> operation.</p>
/// <p>Each tag consists of a tag key and a tag value. Both the tag key and the tag value are required. You cannot have more than one tag on a scalable target with the same tag key.</p>
/// <p>Use tags to control access to a scalable target. For more information, see <a href="https://docs.aws.amazon.com/autoscaling/application/userguide/resource-tagging-support.html">Tagging support for Application Auto Scaling</a> in the <i>Application Auto Scaling User Guide</i>.</p>
pub fn get_tags(&self) -> &::std::option::Option<::std::collections::HashMap<::std::string::String, ::std::string::String>> {
&self.tags
}
/// Consumes the builder and constructs a [`RegisterScalableTargetInput`](crate::operation::register_scalable_target::RegisterScalableTargetInput).
pub fn build(
self,
) -> ::std::result::Result<
crate::operation::register_scalable_target::RegisterScalableTargetInput,
::aws_smithy_types::error::operation::BuildError,
> {
::std::result::Result::Ok(crate::operation::register_scalable_target::RegisterScalableTargetInput {
service_namespace: self.service_namespace,
resource_id: self.resource_id,
scalable_dimension: self.scalable_dimension,
min_capacity: self.min_capacity,
max_capacity: self.max_capacity,
role_arn: self.role_arn,
suspended_state: self.suspended_state,
tags: self.tags,
})
}
}