use std::sync::Arc; use crate::application::dtos::file_dto::FileDto; use crate::application::ports::file_ports::FileManagementUseCase; use crate::application::ports::storage_ports::{CopyFolderTreeResult, FileReadPort, FileWritePort}; use crate::application::ports::trash_ports::TrashUseCase; use crate::application::services::trash_service::TrashService; use crate::common::errors::DomainError; use crate::infrastructure::repositories::pg::file_blob_read_repository::FileBlobReadRepository; use crate::infrastructure::repositories::pg::file_blob_write_repository::FileBlobWriteRepository; use tracing::{error, info, warn}; /// Service for file management operations (move, delete). /// /// Blob ref_count bookkeeping on deletion is handled by the PG trigger /// `trg_files_decrement_blob_ref` (fires on DELETE FROM storage.files). /// This service only orchestrates trash vs. permanent delete — it never /// touches ref_count directly. pub struct FileManagementService { file_repository: Arc, file_read: Option>, trash_service: Option>, } impl FileManagementService { /// Creates a new FileManagementService. pub fn new(file_repository: Arc) -> Self { Self { file_repository, file_read: None, trash_service: None, } } /// Creates a FileManagementService with a trash service and read repo for ownership checks. pub fn with_trash( file_repository: Arc, trash_service: Option>, file_read: Option>, ) -> Self { Self { file_repository, file_read, trash_service, } } /// Verifies ownership via the read repository. async fn verify_owner(&self, file_id: &str, caller_id: &str) -> Result<(), DomainError> { if let Some(read) = &self.file_read { read.verify_file_owner(file_id, caller_id).await } else { // Fallback: no read repo injected — deny by default (fail-closed) Err(DomainError::internal_error( "FileManagement", "Ownership verification unavailable", )) } } } impl FileManagementUseCase for FileManagementService { async fn move_file( &self, file_id: &str, folder_id: Option, ) -> Result { info!( "Moving file with ID: {} to folder: {:?}", file_id, folder_id ); let moved_file = self .file_repository .move_file(file_id, folder_id) .await .map_err(|e| { error!("Error moving file (ID: {}): {}", file_id, e); e })?; info!( "File moved successfully: {} (ID: {}) to folder: {:?}", moved_file.name(), moved_file.id(), moved_file.folder_id() ); Ok(FileDto::from(moved_file)) } async fn move_file_owned( &self, file_id: &str, caller_id: &str, folder_id: Option, ) -> Result { self.verify_owner(file_id, caller_id).await?; self.move_file(file_id, folder_id).await } async fn copy_file( &self, file_id: &str, target_folder_id: Option, ) -> Result { info!( "Copying file with ID: {} to folder: {:?}", file_id, target_folder_id ); let copied_file = self .file_repository .copy_file(file_id, target_folder_id) .await .map_err(|e| { error!("Error copying file (ID: {}): {}", file_id, e); e })?; info!( "File copied successfully: {} (ID: {}) to folder: {:?}", copied_file.name(), copied_file.id(), copied_file.folder_id() ); Ok(FileDto::from(copied_file)) } async fn rename_file(&self, file_id: &str, new_name: &str) -> Result { info!("Renaming file with ID: {} to \"{}\"", file_id, new_name); let renamed_file = self .file_repository .rename_file(file_id, new_name) .await .map_err(|e| { error!("Error renaming file (ID: {}): {}", file_id, e); e })?; info!( "File renamed successfully: {} (ID: {})", renamed_file.name(), renamed_file.id() ); Ok(FileDto::from(renamed_file)) } async fn rename_file_owned( &self, file_id: &str, caller_id: &str, new_name: &str, ) -> Result { self.verify_owner(file_id, caller_id).await?; self.rename_file(file_id, new_name).await } async fn delete_file(&self, id: &str) -> Result<(), DomainError> { self.file_repository.delete_file(id).await } /// Smart delete: trash-first with dedup reference cleanup. /// /// Blob ref_count bookkeeping is handled entirely by the PG trigger /// `trg_files_decrement_blob_ref` which fires on DELETE FROM storage.files. /// We do NOT decrement here — trashing is a soft-delete (UPDATE, not DELETE) /// so the blob must remain referenced until the file is permanently deleted. async fn delete_with_cleanup(&self, id: &str, user_id: &str) -> Result { // Step 1: Try trash (soft delete — file row stays, blob stays referenced) if let Some(trash) = &self.trash_service { info!("Moving file to trash: {}", id); match trash.move_to_trash(id, "file", user_id).await { Ok(_) => { info!("File successfully moved to trash: {}", id); // Do NOT decrement blob ref here — the file row still exists // (is_trashed = TRUE). The trigger will decrement when the // row is actually DELETEd during trash emptying. return Ok(true); // trashed } Err(err) => { error!("Could not move file to trash: {:?}", err); warn!("Falling back to permanent delete"); // fall through } } } else { warn!("Trash service not available, using permanent delete"); } // Step 2: Permanent delete — trigger handles blob ref_count warn!("Permanently deleting file: {}", id); self.file_repository.delete_file(id).await?; info!("File permanently deleted: {}", id); Ok(false) // permanently deleted } async fn copy_folder_tree( &self, source_folder_id: &str, target_parent_id: Option, dest_name: Option, ) -> Result { info!( "Copying folder tree: source={}, target_parent={:?}, dest_name={:?}", source_folder_id, target_parent_id, dest_name ); let result = self .file_repository .copy_folder_tree(source_folder_id, target_parent_id, dest_name) .await .map_err(|e| { error!( "Error copying folder tree (source: {}): {}", source_folder_id, e ); e })?; info!( "Folder tree copied: {} folders, {} files (new root: {})", result.folders_copied, result.files_copied, result.new_root_folder_id ); Ok(result) } }