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							- import logging
 - from argparse import ArgumentTypeError
 - from typing import Literal, cast
 - 
 - from flask import request
 - from flask_login import current_user
 - from flask_restx import Resource, marshal, marshal_with, reqparse
 - from sqlalchemy import asc, desc, select
 - from werkzeug.exceptions import Forbidden, NotFound
 - 
 - import services
 - from controllers.console import api
 - from controllers.console.app.error import (
 -     ProviderModelCurrentlyNotSupportError,
 -     ProviderNotInitializeError,
 -     ProviderQuotaExceededError,
 - )
 - from controllers.console.datasets.error import (
 -     ArchivedDocumentImmutableError,
 -     DocumentAlreadyFinishedError,
 -     DocumentIndexingError,
 -     IndexingEstimateError,
 -     InvalidActionError,
 -     InvalidMetadataError,
 - )
 - from controllers.console.wraps import (
 -     account_initialization_required,
 -     cloud_edition_billing_rate_limit_check,
 -     cloud_edition_billing_resource_check,
 -     setup_required,
 - )
 - from core.errors.error import (
 -     LLMBadRequestError,
 -     ModelCurrentlyNotSupportError,
 -     ProviderTokenNotInitError,
 -     QuotaExceededError,
 - )
 - from core.indexing_runner import IndexingRunner
 - from core.model_manager import ModelManager
 - from core.model_runtime.entities.model_entities import ModelType
 - from core.model_runtime.errors.invoke import InvokeAuthorizationError
 - from core.plugin.impl.exc import PluginDaemonClientSideError
 - from core.rag.extractor.entity.extract_setting import ExtractSetting
 - from extensions.ext_database import db
 - from fields.document_fields import (
 -     dataset_and_document_fields,
 -     document_fields,
 -     document_status_fields,
 -     document_with_segments_fields,
 - )
 - from libs.datetime_utils import naive_utc_now
 - from libs.login import login_required
 - from models import Dataset, DatasetProcessRule, Document, DocumentSegment, UploadFile
 - from services.dataset_service import DatasetService, DocumentService
 - from services.entities.knowledge_entities.knowledge_entities import KnowledgeConfig
 - 
 - logger = logging.getLogger(__name__)
 - 
 - 
 - class DocumentResource(Resource):
 -     def get_document(self, dataset_id: str, document_id: str) -> Document:
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 - 
 -         try:
 -             DatasetService.check_dataset_permission(dataset, current_user)
 -         except services.errors.account.NoPermissionError as e:
 -             raise Forbidden(str(e))
 - 
 -         document = DocumentService.get_document(dataset_id, document_id)
 - 
 -         if not document:
 -             raise NotFound("Document not found.")
 - 
 -         if document.tenant_id != current_user.current_tenant_id:
 -             raise Forbidden("No permission.")
 - 
 -         return document
 - 
 -     def get_batch_documents(self, dataset_id: str, batch: str) -> list[Document]:
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 - 
 -         try:
 -             DatasetService.check_dataset_permission(dataset, current_user)
 -         except services.errors.account.NoPermissionError as e:
 -             raise Forbidden(str(e))
 - 
 -         documents = DocumentService.get_batch_documents(dataset_id, batch)
 - 
 -         if not documents:
 -             raise NotFound("Documents not found.")
 - 
 -         return documents
 - 
 - 
 - class GetProcessRuleApi(Resource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self):
 -         req_data = request.args
 - 
 -         document_id = req_data.get("document_id")
 - 
 -         # get default rules
 -         mode = DocumentService.DEFAULT_RULES["mode"]
 -         rules = DocumentService.DEFAULT_RULES["rules"]
 -         limits = DocumentService.DEFAULT_RULES["limits"]
 -         if document_id:
 -             # get the latest process rule
 -             document = db.get_or_404(Document, document_id)
 - 
 -             dataset = DatasetService.get_dataset(document.dataset_id)
 - 
 -             if not dataset:
 -                 raise NotFound("Dataset not found.")
 - 
 -             try:
 -                 DatasetService.check_dataset_permission(dataset, current_user)
 -             except services.errors.account.NoPermissionError as e:
 -                 raise Forbidden(str(e))
 - 
 -             # get the latest process rule
 -             dataset_process_rule = (
 -                 db.session.query(DatasetProcessRule)
 -                 .where(DatasetProcessRule.dataset_id == document.dataset_id)
 -                 .order_by(DatasetProcessRule.created_at.desc())
 -                 .limit(1)
 -                 .one_or_none()
 -             )
 -             if dataset_process_rule:
 -                 mode = dataset_process_rule.mode
 -                 rules = dataset_process_rule.rules_dict
 - 
 -         return {"mode": mode, "rules": rules, "limits": limits}
 - 
 - 
 - class DatasetDocumentListApi(Resource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id):
 -         dataset_id = str(dataset_id)
 -         page = request.args.get("page", default=1, type=int)
 -         limit = request.args.get("limit", default=20, type=int)
 -         search = request.args.get("keyword", default=None, type=str)
 -         sort = request.args.get("sort", default="-created_at", type=str)
 -         # "yes", "true", "t", "y", "1" convert to True, while others convert to False.
 -         try:
 -             fetch_val = request.args.get("fetch", default="false")
 -             if isinstance(fetch_val, bool):
 -                 fetch = fetch_val
 -             else:
 -                 if fetch_val.lower() in ("yes", "true", "t", "y", "1"):
 -                     fetch = True
 -                 elif fetch_val.lower() in ("no", "false", "f", "n", "0"):
 -                     fetch = False
 -                 else:
 -                     raise ArgumentTypeError(
 -                         f"Truthy value expected: got {fetch_val} but expected one of yes/no, true/false, t/f, y/n, 1/0 "
 -                         f"(case insensitive)."
 -                     )
 -         except (ArgumentTypeError, ValueError, Exception):
 -             fetch = False
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 - 
 -         try:
 -             DatasetService.check_dataset_permission(dataset, current_user)
 -         except services.errors.account.NoPermissionError as e:
 -             raise Forbidden(str(e))
 - 
 -         query = select(Document).filter_by(dataset_id=str(dataset_id), tenant_id=current_user.current_tenant_id)
 - 
 -         if search:
 -             search = f"%{search}%"
 -             query = query.where(Document.name.like(search))
 - 
 -         if sort.startswith("-"):
 -             sort_logic = desc
 -             sort = sort[1:]
 -         else:
 -             sort_logic = asc
 - 
 -         if sort == "hit_count":
 -             sub_query = (
 -                 db.select(DocumentSegment.document_id, db.func.sum(DocumentSegment.hit_count).label("total_hit_count"))
 -                 .group_by(DocumentSegment.document_id)
 -                 .subquery()
 -             )
 - 
 -             query = query.outerjoin(sub_query, sub_query.c.document_id == Document.id).order_by(
 -                 sort_logic(db.func.coalesce(sub_query.c.total_hit_count, 0)),
 -                 sort_logic(Document.position),
 -             )
 -         elif sort == "created_at":
 -             query = query.order_by(
 -                 sort_logic(Document.created_at),
 -                 sort_logic(Document.position),
 -             )
 -         else:
 -             query = query.order_by(
 -                 desc(Document.created_at),
 -                 desc(Document.position),
 -             )
 - 
 -         paginated_documents = db.paginate(select=query, page=page, per_page=limit, max_per_page=100, error_out=False)
 -         documents = paginated_documents.items
 -         if fetch:
 -             for document in documents:
 -                 completed_segments = (
 -                     db.session.query(DocumentSegment)
 -                     .where(
 -                         DocumentSegment.completed_at.isnot(None),
 -                         DocumentSegment.document_id == str(document.id),
 -                         DocumentSegment.status != "re_segment",
 -                     )
 -                     .count()
 -                 )
 -                 total_segments = (
 -                     db.session.query(DocumentSegment)
 -                     .where(DocumentSegment.document_id == str(document.id), DocumentSegment.status != "re_segment")
 -                     .count()
 -                 )
 -                 document.completed_segments = completed_segments
 -                 document.total_segments = total_segments
 -             data = marshal(documents, document_with_segments_fields)
 -         else:
 -             data = marshal(documents, document_fields)
 -         response = {
 -             "data": data,
 -             "has_more": len(documents) == limit,
 -             "limit": limit,
 -             "total": paginated_documents.total,
 -             "page": page,
 -         }
 - 
 -         return response
 - 
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @marshal_with(dataset_and_document_fields)
 -     @cloud_edition_billing_resource_check("vector_space")
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def post(self, dataset_id):
 -         dataset_id = str(dataset_id)
 - 
 -         dataset = DatasetService.get_dataset(dataset_id)
 - 
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 - 
 -         # The role of the current user in the ta table must be admin, owner, or editor
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 - 
 -         try:
 -             DatasetService.check_dataset_permission(dataset, current_user)
 -         except services.errors.account.NoPermissionError as e:
 -             raise Forbidden(str(e))
 - 
 -         parser = reqparse.RequestParser()
 -         parser.add_argument(
 -             "indexing_technique", type=str, choices=Dataset.INDEXING_TECHNIQUE_LIST, nullable=False, location="json"
 -         )
 -         parser.add_argument("data_source", type=dict, required=False, location="json")
 -         parser.add_argument("process_rule", type=dict, required=False, location="json")
 -         parser.add_argument("duplicate", type=bool, default=True, nullable=False, location="json")
 -         parser.add_argument("original_document_id", type=str, required=False, location="json")
 -         parser.add_argument("doc_form", type=str, default="text_model", required=False, nullable=False, location="json")
 -         parser.add_argument("retrieval_model", type=dict, required=False, nullable=False, location="json")
 -         parser.add_argument("embedding_model", type=str, required=False, nullable=True, location="json")
 -         parser.add_argument("embedding_model_provider", type=str, required=False, nullable=True, location="json")
 -         parser.add_argument(
 -             "doc_language", type=str, default="English", required=False, nullable=False, location="json"
 -         )
 -         args = parser.parse_args()
 -         knowledge_config = KnowledgeConfig(**args)
 - 
 -         if not dataset.indexing_technique and not knowledge_config.indexing_technique:
 -             raise ValueError("indexing_technique is required.")
 - 
 -         # validate args
 -         DocumentService.document_create_args_validate(knowledge_config)
 - 
 -         try:
 -             documents, batch = DocumentService.save_document_with_dataset_id(dataset, knowledge_config, current_user)
 -             dataset = DatasetService.get_dataset(dataset_id)
 - 
 -         except ProviderTokenNotInitError as ex:
 -             raise ProviderNotInitializeError(ex.description)
 -         except QuotaExceededError:
 -             raise ProviderQuotaExceededError()
 -         except ModelCurrentlyNotSupportError:
 -             raise ProviderModelCurrentlyNotSupportError()
 - 
 -         return {"dataset": dataset, "documents": documents, "batch": batch}
 - 
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def delete(self, dataset_id):
 -         dataset_id = str(dataset_id)
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if dataset is None:
 -             raise NotFound("Dataset not found.")
 -         # check user's model setting
 -         DatasetService.check_dataset_model_setting(dataset)
 - 
 -         try:
 -             document_ids = request.args.getlist("document_id")
 -             DocumentService.delete_documents(dataset, document_ids)
 -         except services.errors.document.DocumentIndexingError:
 -             raise DocumentIndexingError("Cannot delete document during indexing.")
 - 
 -         return {"result": "success"}, 204
 - 
 - 
 - class DatasetInitApi(Resource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @marshal_with(dataset_and_document_fields)
 -     @cloud_edition_billing_resource_check("vector_space")
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def post(self):
 -         # The role of the current user in the ta table must be admin, owner, dataset_operator, or editor
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 - 
 -         parser = reqparse.RequestParser()
 -         parser.add_argument(
 -             "indexing_technique",
 -             type=str,
 -             choices=Dataset.INDEXING_TECHNIQUE_LIST,
 -             required=True,
 -             nullable=False,
 -             location="json",
 -         )
 -         parser.add_argument("data_source", type=dict, required=True, nullable=True, location="json")
 -         parser.add_argument("process_rule", type=dict, required=True, nullable=True, location="json")
 -         parser.add_argument("doc_form", type=str, default="text_model", required=False, nullable=False, location="json")
 -         parser.add_argument(
 -             "doc_language", type=str, default="English", required=False, nullable=False, location="json"
 -         )
 -         parser.add_argument("retrieval_model", type=dict, required=False, nullable=False, location="json")
 -         parser.add_argument("embedding_model", type=str, required=False, nullable=True, location="json")
 -         parser.add_argument("embedding_model_provider", type=str, required=False, nullable=True, location="json")
 -         args = parser.parse_args()
 - 
 -         # The role of the current user in the ta table must be admin, owner, or editor, or dataset_operator
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 -         knowledge_config = KnowledgeConfig(**args)
 -         if knowledge_config.indexing_technique == "high_quality":
 -             if knowledge_config.embedding_model is None or knowledge_config.embedding_model_provider is None:
 -                 raise ValueError("embedding model and embedding model provider are required for high quality indexing.")
 -             try:
 -                 model_manager = ModelManager()
 -                 model_manager.get_model_instance(
 -                     tenant_id=current_user.current_tenant_id,
 -                     provider=args["embedding_model_provider"],
 -                     model_type=ModelType.TEXT_EMBEDDING,
 -                     model=args["embedding_model"],
 -                 )
 -             except InvokeAuthorizationError:
 -                 raise ProviderNotInitializeError(
 -                     "No Embedding Model available. Please configure a valid provider in the Settings -> Model Provider."
 -                 )
 -             except ProviderTokenNotInitError as ex:
 -                 raise ProviderNotInitializeError(ex.description)
 - 
 -         # validate args
 -         DocumentService.document_create_args_validate(knowledge_config)
 - 
 -         try:
 -             dataset, documents, batch = DocumentService.save_document_without_dataset_id(
 -                 tenant_id=current_user.current_tenant_id, knowledge_config=knowledge_config, account=current_user
 -             )
 -         except ProviderTokenNotInitError as ex:
 -             raise ProviderNotInitializeError(ex.description)
 -         except QuotaExceededError:
 -             raise ProviderQuotaExceededError()
 -         except ModelCurrentlyNotSupportError:
 -             raise ProviderModelCurrentlyNotSupportError()
 - 
 -         response = {"dataset": dataset, "documents": documents, "batch": batch}
 - 
 -         return response
 - 
 - 
 - class DocumentIndexingEstimateApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id, document_id):
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         document = self.get_document(dataset_id, document_id)
 - 
 -         if document.indexing_status in {"completed", "error"}:
 -             raise DocumentAlreadyFinishedError()
 - 
 -         data_process_rule = document.dataset_process_rule
 -         data_process_rule_dict = data_process_rule.to_dict()
 - 
 -         response = {"tokens": 0, "total_price": 0, "currency": "USD", "total_segments": 0, "preview": []}
 - 
 -         if document.data_source_type == "upload_file":
 -             data_source_info = document.data_source_info_dict
 -             if data_source_info and "upload_file_id" in data_source_info:
 -                 file_id = data_source_info["upload_file_id"]
 - 
 -                 file = (
 -                     db.session.query(UploadFile)
 -                     .where(UploadFile.tenant_id == document.tenant_id, UploadFile.id == file_id)
 -                     .first()
 -                 )
 - 
 -                 # raise error if file not found
 -                 if not file:
 -                     raise NotFound("File not found.")
 - 
 -                 extract_setting = ExtractSetting(
 -                     datasource_type="upload_file", upload_file=file, document_model=document.doc_form
 -                 )
 - 
 -                 indexing_runner = IndexingRunner()
 - 
 -                 try:
 -                     estimate_response = indexing_runner.indexing_estimate(
 -                         current_user.current_tenant_id,
 -                         [extract_setting],
 -                         data_process_rule_dict,
 -                         document.doc_form,
 -                         "English",
 -                         dataset_id,
 -                     )
 -                     return estimate_response.model_dump(), 200
 -                 except LLMBadRequestError:
 -                     raise ProviderNotInitializeError(
 -                         "No Embedding Model available. Please configure a valid provider "
 -                         "in the Settings -> Model Provider."
 -                     )
 -                 except ProviderTokenNotInitError as ex:
 -                     raise ProviderNotInitializeError(ex.description)
 -                 except PluginDaemonClientSideError as ex:
 -                     raise ProviderNotInitializeError(ex.description)
 -                 except Exception as e:
 -                     raise IndexingEstimateError(str(e))
 - 
 -         return response, 200
 - 
 - 
 - class DocumentBatchIndexingEstimateApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id, batch):
 -         dataset_id = str(dataset_id)
 -         batch = str(batch)
 -         documents = self.get_batch_documents(dataset_id, batch)
 -         if not documents:
 -             return {"tokens": 0, "total_price": 0, "currency": "USD", "total_segments": 0, "preview": []}, 200
 -         data_process_rule = documents[0].dataset_process_rule
 -         data_process_rule_dict = data_process_rule.to_dict()
 -         extract_settings = []
 -         for document in documents:
 -             if document.indexing_status in {"completed", "error"}:
 -                 raise DocumentAlreadyFinishedError()
 -             data_source_info = document.data_source_info_dict
 - 
 -             if document.data_source_type == "upload_file":
 -                 file_id = data_source_info["upload_file_id"]
 -                 file_detail = (
 -                     db.session.query(UploadFile)
 -                     .where(UploadFile.tenant_id == current_user.current_tenant_id, UploadFile.id == file_id)
 -                     .first()
 -                 )
 - 
 -                 if file_detail is None:
 -                     raise NotFound("File not found.")
 - 
 -                 extract_setting = ExtractSetting(
 -                     datasource_type="upload_file", upload_file=file_detail, document_model=document.doc_form
 -                 )
 -                 extract_settings.append(extract_setting)
 - 
 -             elif document.data_source_type == "notion_import":
 -                 extract_setting = ExtractSetting(
 -                     datasource_type="notion_import",
 -                     notion_info={
 -                         "notion_workspace_id": data_source_info["notion_workspace_id"],
 -                         "notion_obj_id": data_source_info["notion_page_id"],
 -                         "notion_page_type": data_source_info["type"],
 -                         "tenant_id": current_user.current_tenant_id,
 -                     },
 -                     document_model=document.doc_form,
 -                 )
 -                 extract_settings.append(extract_setting)
 -             elif document.data_source_type == "website_crawl":
 -                 extract_setting = ExtractSetting(
 -                     datasource_type="website_crawl",
 -                     website_info={
 -                         "provider": data_source_info["provider"],
 -                         "job_id": data_source_info["job_id"],
 -                         "url": data_source_info["url"],
 -                         "tenant_id": current_user.current_tenant_id,
 -                         "mode": data_source_info["mode"],
 -                         "only_main_content": data_source_info["only_main_content"],
 -                     },
 -                     document_model=document.doc_form,
 -                 )
 -                 extract_settings.append(extract_setting)
 - 
 -             else:
 -                 raise ValueError("Data source type not support")
 -             indexing_runner = IndexingRunner()
 -             try:
 -                 response = indexing_runner.indexing_estimate(
 -                     current_user.current_tenant_id,
 -                     extract_settings,
 -                     data_process_rule_dict,
 -                     document.doc_form,
 -                     "English",
 -                     dataset_id,
 -                 )
 -                 return response.model_dump(), 200
 -             except LLMBadRequestError:
 -                 raise ProviderNotInitializeError(
 -                     "No Embedding Model available. Please configure a valid provider in the Settings -> Model Provider."
 -                 )
 -             except ProviderTokenNotInitError as ex:
 -                 raise ProviderNotInitializeError(ex.description)
 -             except PluginDaemonClientSideError as ex:
 -                 raise ProviderNotInitializeError(ex.description)
 -             except Exception as e:
 -                 raise IndexingEstimateError(str(e))
 - 
 - 
 - class DocumentBatchIndexingStatusApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id, batch):
 -         dataset_id = str(dataset_id)
 -         batch = str(batch)
 -         documents = self.get_batch_documents(dataset_id, batch)
 -         documents_status = []
 -         for document in documents:
 -             completed_segments = (
 -                 db.session.query(DocumentSegment)
 -                 .where(
 -                     DocumentSegment.completed_at.isnot(None),
 -                     DocumentSegment.document_id == str(document.id),
 -                     DocumentSegment.status != "re_segment",
 -                 )
 -                 .count()
 -             )
 -             total_segments = (
 -                 db.session.query(DocumentSegment)
 -                 .where(DocumentSegment.document_id == str(document.id), DocumentSegment.status != "re_segment")
 -                 .count()
 -             )
 -             # Create a dictionary with document attributes and additional fields
 -             document_dict = {
 -                 "id": document.id,
 -                 "indexing_status": "paused" if document.is_paused else document.indexing_status,
 -                 "processing_started_at": document.processing_started_at,
 -                 "parsing_completed_at": document.parsing_completed_at,
 -                 "cleaning_completed_at": document.cleaning_completed_at,
 -                 "splitting_completed_at": document.splitting_completed_at,
 -                 "completed_at": document.completed_at,
 -                 "paused_at": document.paused_at,
 -                 "error": document.error,
 -                 "stopped_at": document.stopped_at,
 -                 "completed_segments": completed_segments,
 -                 "total_segments": total_segments,
 -             }
 -             documents_status.append(marshal(document_dict, document_status_fields))
 -         data = {"data": documents_status}
 -         return data
 - 
 - 
 - class DocumentIndexingStatusApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id, document_id):
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         document = self.get_document(dataset_id, document_id)
 - 
 -         completed_segments = (
 -             db.session.query(DocumentSegment)
 -             .where(
 -                 DocumentSegment.completed_at.isnot(None),
 -                 DocumentSegment.document_id == str(document_id),
 -                 DocumentSegment.status != "re_segment",
 -             )
 -             .count()
 -         )
 -         total_segments = (
 -             db.session.query(DocumentSegment)
 -             .where(DocumentSegment.document_id == str(document_id), DocumentSegment.status != "re_segment")
 -             .count()
 -         )
 - 
 -         # Create a dictionary with document attributes and additional fields
 -         document_dict = {
 -             "id": document.id,
 -             "indexing_status": "paused" if document.is_paused else document.indexing_status,
 -             "processing_started_at": document.processing_started_at,
 -             "parsing_completed_at": document.parsing_completed_at,
 -             "cleaning_completed_at": document.cleaning_completed_at,
 -             "splitting_completed_at": document.splitting_completed_at,
 -             "completed_at": document.completed_at,
 -             "paused_at": document.paused_at,
 -             "error": document.error,
 -             "stopped_at": document.stopped_at,
 -             "completed_segments": completed_segments,
 -             "total_segments": total_segments,
 -         }
 -         return marshal(document_dict, document_status_fields)
 - 
 - 
 - class DocumentApi(DocumentResource):
 -     METADATA_CHOICES = {"all", "only", "without"}
 - 
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id, document_id):
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         document = self.get_document(dataset_id, document_id)
 - 
 -         metadata = request.args.get("metadata", "all")
 -         if metadata not in self.METADATA_CHOICES:
 -             raise InvalidMetadataError(f"Invalid metadata value: {metadata}")
 - 
 -         if metadata == "only":
 -             response = {"id": document.id, "doc_type": document.doc_type, "doc_metadata": document.doc_metadata_details}
 -         elif metadata == "without":
 -             dataset_process_rules = DatasetService.get_process_rules(dataset_id)
 -             document_process_rules = document.dataset_process_rule.to_dict()
 -             data_source_info = document.data_source_detail_dict
 -             response = {
 -                 "id": document.id,
 -                 "position": document.position,
 -                 "data_source_type": document.data_source_type,
 -                 "data_source_info": data_source_info,
 -                 "dataset_process_rule_id": document.dataset_process_rule_id,
 -                 "dataset_process_rule": dataset_process_rules,
 -                 "document_process_rule": document_process_rules,
 -                 "name": document.name,
 -                 "created_from": document.created_from,
 -                 "created_by": document.created_by,
 -                 "created_at": document.created_at.timestamp(),
 -                 "tokens": document.tokens,
 -                 "indexing_status": document.indexing_status,
 -                 "completed_at": int(document.completed_at.timestamp()) if document.completed_at else None,
 -                 "updated_at": int(document.updated_at.timestamp()) if document.updated_at else None,
 -                 "indexing_latency": document.indexing_latency,
 -                 "error": document.error,
 -                 "enabled": document.enabled,
 -                 "disabled_at": int(document.disabled_at.timestamp()) if document.disabled_at else None,
 -                 "disabled_by": document.disabled_by,
 -                 "archived": document.archived,
 -                 "segment_count": document.segment_count,
 -                 "average_segment_length": document.average_segment_length,
 -                 "hit_count": document.hit_count,
 -                 "display_status": document.display_status,
 -                 "doc_form": document.doc_form,
 -                 "doc_language": document.doc_language,
 -             }
 -         else:
 -             dataset_process_rules = DatasetService.get_process_rules(dataset_id)
 -             document_process_rules = document.dataset_process_rule.to_dict()
 -             data_source_info = document.data_source_detail_dict
 -             response = {
 -                 "id": document.id,
 -                 "position": document.position,
 -                 "data_source_type": document.data_source_type,
 -                 "data_source_info": data_source_info,
 -                 "dataset_process_rule_id": document.dataset_process_rule_id,
 -                 "dataset_process_rule": dataset_process_rules,
 -                 "document_process_rule": document_process_rules,
 -                 "name": document.name,
 -                 "created_from": document.created_from,
 -                 "created_by": document.created_by,
 -                 "created_at": document.created_at.timestamp(),
 -                 "tokens": document.tokens,
 -                 "indexing_status": document.indexing_status,
 -                 "completed_at": int(document.completed_at.timestamp()) if document.completed_at else None,
 -                 "updated_at": int(document.updated_at.timestamp()) if document.updated_at else None,
 -                 "indexing_latency": document.indexing_latency,
 -                 "error": document.error,
 -                 "enabled": document.enabled,
 -                 "disabled_at": int(document.disabled_at.timestamp()) if document.disabled_at else None,
 -                 "disabled_by": document.disabled_by,
 -                 "archived": document.archived,
 -                 "doc_type": document.doc_type,
 -                 "doc_metadata": document.doc_metadata_details,
 -                 "segment_count": document.segment_count,
 -                 "average_segment_length": document.average_segment_length,
 -                 "hit_count": document.hit_count,
 -                 "display_status": document.display_status,
 -                 "doc_form": document.doc_form,
 -                 "doc_language": document.doc_language,
 -             }
 - 
 -         return response, 200
 - 
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def delete(self, dataset_id, document_id):
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if dataset is None:
 -             raise NotFound("Dataset not found.")
 -         # check user's model setting
 -         DatasetService.check_dataset_model_setting(dataset)
 - 
 -         document = self.get_document(dataset_id, document_id)
 - 
 -         try:
 -             DocumentService.delete_document(document)
 -         except services.errors.document.DocumentIndexingError:
 -             raise DocumentIndexingError("Cannot delete document during indexing.")
 - 
 -         return {"result": "success"}, 204
 - 
 - 
 - class DocumentProcessingApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def patch(self, dataset_id, document_id, action: Literal["pause", "resume"]):
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         document = self.get_document(dataset_id, document_id)
 - 
 -         # The role of the current user in the ta table must be admin, owner, dataset_operator, or editor
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 - 
 -         if action == "pause":
 -             if document.indexing_status != "indexing":
 -                 raise InvalidActionError("Document not in indexing state.")
 - 
 -             document.paused_by = current_user.id
 -             document.paused_at = naive_utc_now()
 -             document.is_paused = True
 -             db.session.commit()
 - 
 -         elif action == "resume":
 -             if document.indexing_status not in {"paused", "error"}:
 -                 raise InvalidActionError("Document not in paused or error state.")
 - 
 -             document.paused_by = None
 -             document.paused_at = None
 -             document.is_paused = False
 -             db.session.commit()
 - 
 -         return {"result": "success"}, 200
 - 
 - 
 - class DocumentMetadataApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def put(self, dataset_id, document_id):
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         document = self.get_document(dataset_id, document_id)
 - 
 -         req_data = request.get_json()
 - 
 -         doc_type = req_data.get("doc_type")
 -         doc_metadata = req_data.get("doc_metadata")
 - 
 -         # The role of the current user in the ta table must be admin, owner, dataset_operator, or editor
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 - 
 -         if doc_type is None or doc_metadata is None:
 -             raise ValueError("Both doc_type and doc_metadata must be provided.")
 - 
 -         if doc_type not in DocumentService.DOCUMENT_METADATA_SCHEMA:
 -             raise ValueError("Invalid doc_type.")
 - 
 -         if not isinstance(doc_metadata, dict):
 -             raise ValueError("doc_metadata must be a dictionary.")
 -         metadata_schema: dict = cast(dict, DocumentService.DOCUMENT_METADATA_SCHEMA[doc_type])
 - 
 -         document.doc_metadata = {}
 -         if doc_type == "others":
 -             document.doc_metadata = doc_metadata
 -         else:
 -             for key, value_type in metadata_schema.items():
 -                 value = doc_metadata.get(key)
 -                 if value is not None and isinstance(value, value_type):
 -                     document.doc_metadata[key] = value
 - 
 -         document.doc_type = doc_type
 -         document.updated_at = naive_utc_now()
 -         db.session.commit()
 - 
 -         return {"result": "success", "message": "Document metadata updated."}, 200
 - 
 - 
 - class DocumentStatusApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_resource_check("vector_space")
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def patch(self, dataset_id, action: Literal["enable", "disable", "archive", "un_archive"]):
 -         dataset_id = str(dataset_id)
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if dataset is None:
 -             raise NotFound("Dataset not found.")
 - 
 -         # The role of the current user in the ta table must be admin, owner, or editor
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 - 
 -         # check user's model setting
 -         DatasetService.check_dataset_model_setting(dataset)
 - 
 -         # check user's permission
 -         DatasetService.check_dataset_permission(dataset, current_user)
 - 
 -         document_ids = request.args.getlist("document_id")
 - 
 -         try:
 -             DocumentService.batch_update_document_status(dataset, document_ids, action, current_user)
 -         except services.errors.document.DocumentIndexingError as e:
 -             raise InvalidActionError(str(e))
 -         except ValueError as e:
 -             raise InvalidActionError(str(e))
 -         except NotFound as e:
 -             raise NotFound(str(e))
 - 
 -         return {"result": "success"}, 200
 - 
 - 
 - class DocumentPauseApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def patch(self, dataset_id, document_id):
 -         """pause document."""
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 - 
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 - 
 -         document = DocumentService.get_document(dataset.id, document_id)
 - 
 -         # 404 if document not found
 -         if document is None:
 -             raise NotFound("Document Not Exists.")
 - 
 -         # 403 if document is archived
 -         if DocumentService.check_archived(document):
 -             raise ArchivedDocumentImmutableError()
 - 
 -         try:
 -             # pause document
 -             DocumentService.pause_document(document)
 -         except services.errors.document.DocumentIndexingError:
 -             raise DocumentIndexingError("Cannot pause completed document.")
 - 
 -         return {"result": "success"}, 204
 - 
 - 
 - class DocumentRecoverApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def patch(self, dataset_id, document_id):
 -         """recover document."""
 -         dataset_id = str(dataset_id)
 -         document_id = str(document_id)
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 -         document = DocumentService.get_document(dataset.id, document_id)
 - 
 -         # 404 if document not found
 -         if document is None:
 -             raise NotFound("Document Not Exists.")
 - 
 -         # 403 if document is archived
 -         if DocumentService.check_archived(document):
 -             raise ArchivedDocumentImmutableError()
 -         try:
 -             # pause document
 -             DocumentService.recover_document(document)
 -         except services.errors.document.DocumentIndexingError:
 -             raise DocumentIndexingError("Document is not in paused status.")
 - 
 -         return {"result": "success"}, 204
 - 
 - 
 - class DocumentRetryApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @cloud_edition_billing_rate_limit_check("knowledge")
 -     def post(self, dataset_id):
 -         """retry document."""
 - 
 -         parser = reqparse.RequestParser()
 -         parser.add_argument("document_ids", type=list, required=True, nullable=False, location="json")
 -         args = parser.parse_args()
 -         dataset_id = str(dataset_id)
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         retry_documents = []
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 -         for document_id in args["document_ids"]:
 -             try:
 -                 document_id = str(document_id)
 - 
 -                 document = DocumentService.get_document(dataset.id, document_id)
 - 
 -                 # 404 if document not found
 -                 if document is None:
 -                     raise NotFound("Document Not Exists.")
 - 
 -                 # 403 if document is archived
 -                 if DocumentService.check_archived(document):
 -                     raise ArchivedDocumentImmutableError()
 - 
 -                 # 400 if document is completed
 -                 if document.indexing_status == "completed":
 -                     raise DocumentAlreadyFinishedError()
 -                 retry_documents.append(document)
 -             except Exception:
 -                 logger.exception("Failed to retry document, document id: %s", document_id)
 -                 continue
 -         # retry document
 -         DocumentService.retry_document(dataset_id, retry_documents)
 - 
 -         return {"result": "success"}, 204
 - 
 - 
 - class DocumentRenameApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     @marshal_with(document_fields)
 -     def post(self, dataset_id, document_id):
 -         # The role of the current user in the ta table must be admin, owner, editor, or dataset_operator
 -         if not current_user.is_dataset_editor:
 -             raise Forbidden()
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         DatasetService.check_dataset_operator_permission(current_user, dataset)
 -         parser = reqparse.RequestParser()
 -         parser.add_argument("name", type=str, required=True, nullable=False, location="json")
 -         args = parser.parse_args()
 - 
 -         try:
 -             document = DocumentService.rename_document(dataset_id, document_id, args["name"])
 -         except services.errors.document.DocumentIndexingError:
 -             raise DocumentIndexingError("Cannot delete document during indexing.")
 - 
 -         return document
 - 
 - 
 - class WebsiteDocumentSyncApi(DocumentResource):
 -     @setup_required
 -     @login_required
 -     @account_initialization_required
 -     def get(self, dataset_id, document_id):
 -         """sync website document."""
 -         dataset_id = str(dataset_id)
 -         dataset = DatasetService.get_dataset(dataset_id)
 -         if not dataset:
 -             raise NotFound("Dataset not found.")
 -         document_id = str(document_id)
 -         document = DocumentService.get_document(dataset.id, document_id)
 -         if not document:
 -             raise NotFound("Document not found.")
 -         if document.tenant_id != current_user.current_tenant_id:
 -             raise Forbidden("No permission.")
 -         if document.data_source_type != "website_crawl":
 -             raise ValueError("Document is not a website document.")
 -         # 403 if document is archived
 -         if DocumentService.check_archived(document):
 -             raise ArchivedDocumentImmutableError()
 -         # sync document
 -         DocumentService.sync_website_document(dataset_id, document)
 - 
 -         return {"result": "success"}, 200
 - 
 - 
 - api.add_resource(GetProcessRuleApi, "/datasets/process-rule")
 - api.add_resource(DatasetDocumentListApi, "/datasets/<uuid:dataset_id>/documents")
 - api.add_resource(DatasetInitApi, "/datasets/init")
 - api.add_resource(
 -     DocumentIndexingEstimateApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/indexing-estimate"
 - )
 - api.add_resource(DocumentBatchIndexingEstimateApi, "/datasets/<uuid:dataset_id>/batch/<string:batch>/indexing-estimate")
 - api.add_resource(DocumentBatchIndexingStatusApi, "/datasets/<uuid:dataset_id>/batch/<string:batch>/indexing-status")
 - api.add_resource(DocumentIndexingStatusApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/indexing-status")
 - api.add_resource(DocumentApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>")
 - api.add_resource(
 -     DocumentProcessingApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/processing/<string:action>"
 - )
 - api.add_resource(DocumentMetadataApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/metadata")
 - api.add_resource(DocumentStatusApi, "/datasets/<uuid:dataset_id>/documents/status/<string:action>/batch")
 - api.add_resource(DocumentPauseApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/processing/pause")
 - api.add_resource(DocumentRecoverApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/processing/resume")
 - api.add_resource(DocumentRetryApi, "/datasets/<uuid:dataset_id>/retry")
 - api.add_resource(DocumentRenameApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/rename")
 - 
 - api.add_resource(WebsiteDocumentSyncApi, "/datasets/<uuid:dataset_id>/documents/<uuid:document_id>/website-sync")
 
 
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