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Изворен канал @pythonotes · Post #397 · 12 ное.

Использование Pydantic сегодня стало нормой, и это правильно. Но иногда на ревью вижу, что используют его не всегда корректно. Например, метод BaseModel.model_dump() по умолчанию не преобразует стандартные типы, такие как datetime, UUID или Decimal, в простой сериализуемый для JSON вид. Тогда пишут кастмоный сериализатор для этих типов чтобы функция json.dump() не падала с ошибкой. import uuid from datetime import datetime from decimal import Decimal from uuid import UUID from pydantic import BaseModel class MyModel(BaseModel): id: UUID date: datetime value: Decimal obj = MyModel( id=uuid.uuid4(), date=datetime.now(), value='1.23' ) print(obj.model_dump()) # не подходит для json.dump # { # 'id': UUID('4f8c1bc4-25fd-40cd-9dbe-2c73639b0dc1'), # 'date': datetime.datetime(2025, 12, 12, 12, 12, 12, 111111), # 'value': Decimal('1.23') # } # добавляем свой кастомный сериализатор json.dumps(obj.model_dump(), cls=MySerializer) # { # 'id': '4f8c1bc4-25fd-40cd-9dbe-2c73639b0dc1', # 'date': '2025-12-12T12:12:12.111111', # 'value': '1.23' # } В данном случае класс MySerializer обрабатывает datetime, UUID и Decimal. Например так: class MySerializer(json.JSONEncoder): def default(self, o): if isinstance(o, Decimal): return str(o) elif isinstance(o, datetime): return o.isoformat() elif isinstance(o, UUID): return str(o) return super().default(o) Специально для тех, кто всё еще так делает - в этом нет необходимости! Pydantic может это сделать сам, просто нужно добавить параметр mode="json". json.dumps(obj.model_dump(mode="json")) # { # 'id': '4f8c1bc4-25fd-40cd-9dbe-2c73639b0dc1', # 'date': '2012-12-12T12:12:12.111111', # 'value': '1.23' # } #pydantic#libs

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AI & Law

@ai_and_law · Post #56 · 14.07.2023 г., 07:04

Google takes steps towards responsible AI in the EU Hey there, AI and Law friends! 👋 We have an exciting update to share with you today. Google is making significant strides towards responsible AI in the EU. They are actively engaging in discussions with regulators about the AI Act, a crucial piece of legislation. Led by Thomas Kurian, Google's cloud computing division is addressing the concerns raised by the EU regarding artificial intelligence. One of the main challenges discussed is the ability to distinguish between human-generated and AI-generated content. But fear not! Google has come up with a clever solution. They have introduced a "watermarking" feature that labels AI-generated images, making it easier for users to identify them. On top of that, Google is actively working on developing innovative technologies to ensure that people can easily differentiate between content created by humans and content generated by AI. This move showcases how major tech companies like Google are taking the lead in implementing private sector-driven oversight of AI. They are not waiting for formal regulations to be in place; they are proactively working on solutions to ensure responsible and ethical AI practices. Now, here's a thought-provoking question for you all: Can technology companies and regulatory bodies effectively collaborate to ensure responsible and ethical AI practices? #AIRegulations#ResponsibleAI#TechIndustry#EthicsAndAI