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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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Crypto M - Crypto News

@CryptoM · Post #64802 · 10.04.2026 г., 00:36

🚀 AI TRENDS | U.S. Officials Convene Wall Street Leaders Over AI Cybersecurity Concerns U.S. Treasury Secretary Scott Bessent and Federal Reserve Chair Jerome Powell have called an urgent meeting with Wall Street leaders to address concerns about the potential cybersecurity risks posed by the latest AI model from Anthropic. Bloomberg posted on X, highlighting the growing apprehension among financial regulators regarding the implications of advanced AI technologies on the security of financial systems. The meeting underscores the increasing focus on AI's role in cybersecurity, as financial institutions grapple with the challenges of integrating cutting-edge technologies while safeguarding sensitive data. The Anthropic AI model, known for its advanced capabilities, has raised alarms about its potential misuse in cyberattacks, prompting federal officials to seek input from industry leaders on mitigating these risks. This development comes amid a broader dialogue on the balance between technological innovation and security, as AI continues to transform various sectors. The discussions are expected to explore strategies for enhancing cybersecurity measures and ensuring that AI advancements do not compromise the integrity of financial systems. #AI#Cybersecurity#WallStreet#Finance#Anthropic#USOfficials#Technology#Innovation#DataSecurity#FinancialRegulation