Class: Aws::MachineLearning::Types::MLModel
- Inherits:
-
Struct
- Object
- Struct
- Aws::MachineLearning::Types::MLModel
- Includes:
- Structure
- Defined in:
- lib/aws-sdk-machinelearning/types.rb
Overview
Represents the output of a ‘GetMLModel` operation.
The content consists of the detailed metadata and the current status of the ‘MLModel`.
Constant Summary collapse
- SENSITIVE =
[]
Instance Attribute Summary collapse
-
#algorithm ⇒ String
The algorithm used to train the ‘MLModel`.
-
#compute_time ⇒ Integer
Long integer type that is a 64-bit signed number.
-
#created_at ⇒ Time
The time that the ‘MLModel` was created.
-
#created_by_iam_user ⇒ String
The AWS user account from which the ‘MLModel` was created.
-
#endpoint_info ⇒ Types::RealtimeEndpointInfo
The current endpoint of the ‘MLModel`.
-
#finished_at ⇒ Time
A timestamp represented in epoch time.
-
#input_data_location_s3 ⇒ String
The location of the data file or directory in Amazon Simple Storage Service (Amazon S3).
-
#last_updated_at ⇒ Time
The time of the most recent edit to the ‘MLModel`.
-
#message ⇒ String
A description of the most recent details about accessing the ‘MLModel`.
-
#ml_model_id ⇒ String
The ID assigned to the ‘MLModel` at creation.
-
#ml_model_type ⇒ String
Identifies the ‘MLModel` category.
-
#name ⇒ String
A user-supplied name or description of the ‘MLModel`.
- #score_threshold ⇒ Float
-
#score_threshold_last_updated_at ⇒ Time
The time of the most recent edit to the ‘ScoreThreshold`.
-
#size_in_bytes ⇒ Integer
Long integer type that is a 64-bit signed number.
-
#started_at ⇒ Time
A timestamp represented in epoch time.
-
#status ⇒ String
The current status of an ‘MLModel`.
-
#training_data_source_id ⇒ String
The ID of the training ‘DataSource`.
-
#training_parameters ⇒ Hash<String,String>
A list of the training parameters in the ‘MLModel`.
Instance Attribute Details
#algorithm ⇒ String
The algorithm used to train the ‘MLModel`. The following algorithm is supported:
-
‘SGD` – Stochastic gradient descent. The goal of `SGD` is to minimize the gradient of the loss function.
^
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#compute_time ⇒ Integer
Long integer type that is a 64-bit signed number.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#created_at ⇒ Time
The time that the ‘MLModel` was created. The time is expressed in epoch time.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#created_by_iam_user ⇒ String
The AWS user account from which the ‘MLModel` was created. The account type can be either an AWS root account or an AWS Identity and Access Management (IAM) user account.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#endpoint_info ⇒ Types::RealtimeEndpointInfo
The current endpoint of the ‘MLModel`.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#finished_at ⇒ Time
A timestamp represented in epoch time.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#input_data_location_s3 ⇒ String
The location of the data file or directory in Amazon Simple Storage Service (Amazon S3).
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#last_updated_at ⇒ Time
The time of the most recent edit to the ‘MLModel`. The time is expressed in epoch time.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#message ⇒ String
A description of the most recent details about accessing the ‘MLModel`.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#ml_model_id ⇒ String
The ID assigned to the ‘MLModel` at creation.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#ml_model_type ⇒ String
Identifies the ‘MLModel` category. The following are the available types:
-
‘REGRESSION` - Produces a numeric result. For example, “What price should a house be listed at?”
-
‘BINARY` - Produces one of two possible results. For example, “Is this a child-friendly web site?”.
-
‘MULTICLASS` - Produces one of several possible results. For example, “Is this a HIGH-, LOW-, or MEDIUM-risk trade?”.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#name ⇒ String
A user-supplied name or description of the ‘MLModel`.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#score_threshold ⇒ Float
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#score_threshold_last_updated_at ⇒ Time
The time of the most recent edit to the ‘ScoreThreshold`. The time is expressed in epoch time.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#size_in_bytes ⇒ Integer
Long integer type that is a 64-bit signed number.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#started_at ⇒ Time
A timestamp represented in epoch time.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#status ⇒ String
The current status of an ‘MLModel`. This element can have one of the following values:
-
‘PENDING` - Amazon Machine Learning (Amazon ML) submitted a request to create an `MLModel`.
-
‘INPROGRESS` - The creation process is underway.
-
‘FAILED` - The request to create an `MLModel` didn’t run to completion. The model isn’t usable.
-
‘COMPLETED` - The creation process completed successfully.
-
‘DELETED` - The `MLModel` is marked as deleted. It isn’t usable.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#training_data_source_id ⇒ String
The ID of the training ‘DataSource`. The `CreateMLModel` operation uses the `TrainingDataSourceId`.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |
#training_parameters ⇒ Hash<String,String>
A list of the training parameters in the ‘MLModel`. The list is implemented as a map of key-value pairs.
The following is the current set of training parameters:
-
‘sgd.maxMLModelSizeInBytes` - The maximum allowed size of the model. Depending on the input data, the size of the model might affect its performance.
The value is an integer that ranges from ‘100000` to `2147483648`. The default value is `33554432`.
-
‘sgd.maxPasses` - The number of times that the training process traverses the observations to build the `MLModel`. The value is an integer that ranges from `1` to `10000`. The default value is `10`.
-
‘sgd.shuffleType` - Whether Amazon ML shuffles the training data. Shuffling the data improves a model’s ability to find the optimal solution for a variety of data types. The valid values are ‘auto` and `none`. The default value is `none`.
-
‘sgd.l1RegularizationAmount` - The coefficient regularization L1 norm, which controls overfitting the data by penalizing large coefficients. This parameter tends to drive coefficients to zero, resulting in sparse feature set. If you use this parameter, start by specifying a small value, such as `1.0E-08`.
The value is a double that ranges from ‘0` to `MAX_DOUBLE`. The default is to not use L1 normalization. This parameter can’t be used when ‘L2` is specified. Use this parameter sparingly.
-
‘sgd.l2RegularizationAmount` - The coefficient regularization L2 norm, which controls overfitting the data by penalizing large coefficients. This tends to drive coefficients to small, nonzero values. If you use this parameter, start by specifying a small value, such as `1.0E-08`.
The value is a double that ranges from ‘0` to `MAX_DOUBLE`. The default is to not use L2 normalization. This parameter can’t be used when ‘L1` is specified. Use this parameter sparingly.
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# File 'lib/aws-sdk-machinelearning/types.rb', line 2595 class MLModel < Struct.new( :ml_model_id, :training_data_source_id, :created_by_iam_user, :created_at, :last_updated_at, :name, :status, :size_in_bytes, :endpoint_info, :training_parameters, :input_data_location_s3, :algorithm, :ml_model_type, :score_threshold, :score_threshold_last_updated_at, :message, :compute_time, :finished_at, :started_at) SENSITIVE = [] include Aws::Structure end |