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Type annotations for boto3.MachineLearning 1.10.50 service.

Project description

mypy-boto3-machinelearning

Type annotations for boto3.MachineLearning 1.10.50 service compatible with mypy, VSCode, PyCharm and other tools.

More information can be found here.

How to use

Type checking

Make sure you have mypy installed and activated in your IDE.

Install boto3-stubs for MachineLearning service.

python -m pip install boto3-stubs[mypy-boto3-machinelearning]

Use boto3 with mypy_boto3 in your project and enjoy type checking and auto-complete.

import boto3

from mypy_boto3 import machinelearning
# alternative import if you do not want to install mypy_boto3 package
# import mypy_boto3_machinelearning as machinelearning

# Use this client as usual, now mypy can check if your code is valid.
# Check if your IDE supports function overloads,
# you probably do not need explicit type annotations
# client = boto3.client("machinelearning")
client: machinelearning.MachineLearningClient = boto3.client("machinelearning")

# works for session as well
session = boto3.session.Session(region="us-west-1")
session_client: machinelearning.MachineLearningClient = session.client("machinelearning")


# Waiters need type annotation on creation
batch_prediction_available_waiter: machinelearning.BatchPredictionAvailableWaiter = client.get_waiter("batch_prediction_available")
data_source_available_waiter: machinelearning.DataSourceAvailableWaiter = client.get_waiter("data_source_available")
evaluation_available_waiter: machinelearning.EvaluationAvailableWaiter = client.get_waiter("evaluation_available")
ml_model_available_waiter: machinelearning.MLModelAvailableWaiter = client.get_waiter("ml_model_available")

# Paginators need type annotation on creation
describe_batch_predictions_paginator: machinelearning.DescribeBatchPredictionsPaginator = client.get_paginator("describe_batch_predictions")
describe_data_sources_paginator: machinelearning.DescribeDataSourcesPaginator = client.get_paginator("describe_data_sources")
describe_evaluations_paginator: machinelearning.DescribeEvaluationsPaginator = client.get_paginator("describe_evaluations")
describe_ml_models_paginator: machinelearning.DescribeMLModelsPaginator = client.get_paginator("describe_ml_models")

How it works

Fully automated builder carefully generates type annotations for each service, patiently waiting for boto3 updates. It delivers a drop-in type annotations for you and makes sure that:

  • All available boto3 services are covered.
  • Each public class and method of every boto3 service gets valid type annotations extracted from the documentation (blame botocore docs if types are incorrect).
  • Type annotations include up-to-date documentation.
  • Link to documentation is provided for every method.
  • Code is processed by black for readability.

Project details


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