turash/bugulma/backend/internal/repository/resource_flow_repository.go
Damir Mukimov 000eab4740
Major repository reorganization and missing backend endpoints implementation
Repository Structure:
- Move files from cluttered root directory into organized structure
- Create archive/ for archived data and scraper results
- Create bugulma/ for the complete application (frontend + backend)
- Create data/ for sample datasets and reference materials
- Create docs/ for comprehensive documentation structure
- Create scripts/ for utility scripts and API tools

Backend Implementation:
- Implement 3 missing backend endpoints identified in gap analysis:
  * GET /api/v1/organizations/{id}/matching/direct - Direct symbiosis matches
  * GET /api/v1/users/me/organizations - User organizations
  * POST /api/v1/proposals/{id}/status - Update proposal status
- Add complete proposal domain model, repository, and service layers
- Create database migration for proposals table
- Fix CLI server command registration issue

API Documentation:
- Add comprehensive proposals.md API documentation
- Update README.md with Users and Proposals API sections
- Document all request/response formats, error codes, and business rules

Code Quality:
- Follow existing Go backend architecture patterns
- Add proper error handling and validation
- Match frontend expected response schemas
- Maintain clean separation of concerns (handler -> service -> repository)
2025-11-25 06:01:16 +01:00

123 lines
4.0 KiB
Go

package repository
import (
"context"
"bugulma/backend/internal/domain"
"gorm.io/gorm"
)
// ResourceFlowRepository implements domain.ResourceFlowRepository with GORM
type ResourceFlowRepository struct {
*BaseRepository[domain.ResourceFlow]
}
// NewResourceFlowRepository creates a new GORM-based resource flow repository
func NewResourceFlowRepository(db *gorm.DB) domain.ResourceFlowRepository {
return &ResourceFlowRepository{
BaseRepository: NewBaseRepository[domain.ResourceFlow](db),
}
}
// GetBySiteID retrieves resource flows at a specific site
func (r *ResourceFlowRepository) GetBySiteID(ctx context.Context, siteID string) ([]*domain.ResourceFlow, error) {
return r.FindWhereWithContext(ctx, "site_id = ?", siteID)
}
// GetByOrganizationID retrieves resource flows owned by a specific organization
func (r *ResourceFlowRepository) GetByOrganizationID(ctx context.Context, organizationID string) ([]*domain.ResourceFlow, error) {
return r.FindWhereWithContext(ctx, "organization_id = ?", organizationID)
}
// GetByTypeAndDirection retrieves resource flows by type and direction
func (r *ResourceFlowRepository) GetByTypeAndDirection(ctx context.Context, resType domain.ResourceType, direction domain.ResourceDirection) ([]*domain.ResourceFlow, error) {
return r.FindWhereWithContext(ctx, "type = ? AND direction = ?", resType, direction)
}
// GetOutputsInRadius retrieves output resource flows within a geographic radius
func (r *ResourceFlowRepository) GetOutputsInRadius(ctx context.Context, lat, lng, radiusKm float64, resType domain.ResourceType) ([]*domain.ResourceFlow, error) {
var flows []*domain.ResourceFlow
dialector := r.DB().Dialector.Name()
if dialector == "postgres" {
query := `
SELECT rf.* FROM resource_flows rf
JOIN sites s ON rf.site_id = s.id
WHERE rf.direction = 'output'
AND rf.type = ?
AND s.latitude IS NOT NULL AND s.longitude IS NOT NULL
AND (
6371 * acos(
cos(radians(?)) * cos(radians(s.latitude)) *
cos(radians(s.longitude) - radians(?)) +
sin(radians(?)) * sin(radians(s.latitude))
)
) <= ?
`
result := r.DB().WithContext(ctx).Raw(query, resType, lat, lng, lat, radiusKm).Scan(&flows)
if result.Error != nil {
return nil, result.Error
}
} else {
// Fallback to simple bounding box for SQLite
query := `
SELECT rf.* FROM resource_flows rf
JOIN sites s ON rf.site_id = s.id
WHERE rf.direction = 'output'
AND rf.type = ?
AND s.latitude IS NOT NULL AND s.longitude IS NOT NULL
AND abs(s.latitude - ?) <= 0.09
AND abs(s.longitude - ?) <= 0.15
`
result := r.DB().WithContext(ctx).Raw(query, resType, lat, lng).Scan(&flows)
if result.Error != nil {
return nil, result.Error
}
}
return flows, nil
}
// GetInputsInRadius retrieves input resource flows within a geographic radius
func (r *ResourceFlowRepository) GetInputsInRadius(ctx context.Context, lat, lng, radiusKm float64, resType domain.ResourceType) ([]*domain.ResourceFlow, error) {
var flows []*domain.ResourceFlow
dialector := r.DB().Dialector.Name()
if dialector == "postgres" {
query := `
SELECT rf.* FROM resource_flows rf
JOIN sites s ON rf.site_id = s.id
WHERE rf.direction = 'input'
AND rf.type = ?
AND s.latitude IS NOT NULL AND s.longitude IS NOT NULL
AND (
6371 * acos(
cos(radians(?)) * cos(radians(s.latitude)) *
cos(radians(s.longitude) - radians(?)) +
sin(radians(?)) * sin(radians(s.latitude))
)
) <= ?
`
result := r.DB().WithContext(ctx).Raw(query, resType, lat, lng, lat, radiusKm).Scan(&flows)
if result.Error != nil {
return nil, result.Error
}
} else {
// Fallback to simple bounding box for SQLite
query := `
SELECT rf.* FROM resource_flows rf
JOIN sites s ON rf.site_id = s.id
WHERE rf.direction = 'input'
AND rf.type = ?
AND s.latitude IS NOT NULL AND s.longitude IS NOT NULL
AND abs(s.latitude - ?) <= 0.09
AND abs(s.longitude - ?) <= 0.15
`
result := r.DB().WithContext(ctx).Raw(query, resType, lat, lng).Scan(&flows)
if result.Error != nil {
return nil, result.Error
}
}
return flows, nil
}