686 lines
19 KiB
Markdown
686 lines
19 KiB
Markdown
# Preparation:
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The unedited conversation with Chat GPT, concerning almost all of the aspects of this session:
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(optional): read this to get a better understanding of the topic:
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https://chatgpt.com/share/67f18460-1c1c-8010-bc57-9f3b683ec87a
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# Branching
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- [ ] Create the feature/transportation-search branch based on develop
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# DTO
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In order to develop transportation search flow, three DTOs need to be created in the application layer.
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- [ ] Create DTOs related to transportation search flow
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📂 Suggested Folder: Application/DTOs/City`
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```cs
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public class CityDto
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{
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public int Id { get; init; }
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public required string Title { get; init; }
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}
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```
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📂 Suggested Folder: Application/DTOs/Transportation
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```cs
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public class TransportationSearchRequestDto
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{
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public short? VehicleTypeId { get; init; }
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public int? FromCityId { get; init; }
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public int? ToCityId { get; init; }
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public DateTime? StartDate { get; init; }
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public DateTime? EndDate { get; init; }
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}
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```
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```cs
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public class TransportationSearchResultDto
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{
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public long Id { get; init; }
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public required string CompanyTitle { get; init; }
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public required string FromLocationTitle { get; init; }
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public required string ToLocationTitle { get; init; }
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public required string FromCityTitle { get; init; }
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public required string ToCityTitle { get; init; }
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public DateTime StartDateTime { get; init; }
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public DateTime? EndDateTime { get; init; }
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public decimal Price { get; init; }
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}
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```
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# Repository
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There are a few things to be add to some repositories for transportation search flow.
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- [ ] Create DTOs related to transportation search flow
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📂 Suggested Folder: Domain/Framework/Interfaces/Repositories/
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TransportationRepositories
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```cs
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public interface ITransportationRepository : IRepository<Transportation, long>
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{
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Task<IEnumerable<Transportation>> SearchTransportationsAsync(
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short? vehicleTypeId,
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int? fromCityId,
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int? toCityId,
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DateTime? startDate,
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DateTime? endDate);
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}
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```
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📂 Suggested Folder: Infrastructure/Services/Services/TransportationRepositories
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```cs
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public class TransportationRepository :
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BaseRepository<ApplicationDBContext, Transportation, long>,
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ITransportationRepository
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{
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public TransportationRepository(ApplicationDBContext dbContext) : base(dbContext)
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{
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}
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public async Task<IEnumerable<Transportation>> SearchTransportationsAsync(
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short? vehicleTypeId,
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int? fromCityId,
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int? toCityId,
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DateTime? startDate,
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DateTime? endDate)
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{
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var query = DbContext.Transportations
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.Include(x => x.Vehicle)
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.Include(x => x.FromLocation).ThenInclude(x => x.City)
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.Include(x => x.ToLocation).ThenInclude(x => x.City)
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.Include(x => x.Company)
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.AsQueryable();
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query = query.Where(x => vehicleTypeId == null || x.Vehicle.VehicleTypeId == vehicleTypeId.Value);
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query = query.Where(x => fromCityId == null || x.FromLocation.CityId == fromCityId.Value);
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query = query.Where(x => toCityId == null || x.ToLocation.CityId == toCityId.Value);
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query = query.Where(x => startDate == null || x.StartDateTime.Date == startDate.Value.Date);
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query = query.Where(x => endDate == null || (x.EndDateTime.HasValue && x.EndDateTime.Value == endDate.Value.Date));
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return await query.ToListAsync();
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}
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}
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```
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# Auto Mapper
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Auto Mapper simplifies mapping between aggregates and DTOs in both directions.
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- [ ] Create a `MappingProfile` that inherits `Profile`, and use it to add configurations for mappings
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📂 Suggested Folder: Application/Mappers/Profiles
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```cs
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public class MappingProfile : Profile
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{
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public MappingProfile()
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{
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CreateMap<Transportation, TransportationSearchResultDto>()
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.ForMember(dest => dest.CompanyTitle,
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opt => opt.MapFrom(src => src.Company.Title))
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.ForMember(dest => dest.FromLocationTitle,
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opt => opt.MapFrom(src => src.FromLocation.Title))
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.ForMember(dest => dest.ToLocationTitle,
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opt => opt.MapFrom(src => src.ToLocation.Title))
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.ForMember(dest => dest.FromCityTitle,
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opt => opt.MapFrom(src => src.FromLocation.City.Title))
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.ForMember(dest => dest.ToCityTitle,
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opt => opt.MapFrom(src => src.ToLocation.City.Title));
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CreateMap<City, CityDto>();
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}
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}
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```
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- [ ] Register AutoMapper config file in `Program.cs`
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```cs
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.
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.
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.
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builder.Services.AddAutoMapper(typeof(MappingProfile));
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var app = builder.Build();
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.
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.
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.
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```
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# Result & Result Status
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- [ ] Create `ResultStatus` enum and `Result` class
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📂 Suggested Folder: Application/Result
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Result is a template to transfer data between services and controllers (in backend), so will use a generic type
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```cs
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public class Result<T>
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{
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public ResultStatus Status { get; set; }
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public string? ErrorMessage { get; set; }
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public T? Data { get; set; }
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public bool IsSuccess => Status == ResultStatus.Success;
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public static Result<T> Success(T data)
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{
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return new Result<T>
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{
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Status = ResultStatus.Success,
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Data = data
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};
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}
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public static Result<T> Error(T data)
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{
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return new Result<T>
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{
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Status = ResultStatus.Error,
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Data = data
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};
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}
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public static Result<T> NotFound(T data)
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{
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return new Result<T>
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{
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Status = ResultStatus.NotFound,
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Data = data
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};
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}
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}
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```
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As you can see, there's a property of type ResultStatus, which is a enum for status of request
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```cs
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public enum ResultStatus
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{
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Success,
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NotFound,
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ValidationError,
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Conflict,
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Unauthorized,
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Forbidden,
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Error
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}
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```
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You can read more about enums: [W3Schools](https://www.w3schools.com/cs/cs_enums.php)
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# IService & Service
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Now, use `I[Entity]Repositry` and `IUnitOfWork` in services to implement business logic
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- [ ] Create `I[Entity]Service` and `[Entity]Service` which implements it
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📂 Suggested Folder for `I[Entity]Service`: Application/Interfaces
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📂 Suggested Folder for Services: Application/Services
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- existence of an interface for each service class is optional
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- services can have multiple repositories in them -> logic-based structure
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An example of `I[Entity]Service`:
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```c#
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public interface ITransportationService
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{
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Task<Result<IEnumerable<TransportationSearchResultDto>>> SearchTransportationsAsync(TransportationSearchRequestDto searchRequest);
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}
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```
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An example of `[Entity]Service`:
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```cs
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public class TransportationService : ITransportationService
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{
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private readonly ITransportationRepository _transportationRepository;
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private readonly IMapper _mapper;
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private readonly IUnitOfWork _unitOfWork;
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public TransportationService(ITransportationRepository transportationRepository, IMapper mapper, IUnitOfWork unitOfWork)
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{
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_transportationRepository = transportationRepository;
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_mapper = mapper;
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_unitOfWork = unitOfWork;
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}
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public async Task<Result<IEnumerable<TransportationSearchResultDto>>> SearchTransportationsAsync(TransportationSearchRequestDto requestDto)
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{
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var result = await _transportationRepository.SearchTransportationsAsync(
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vehicleTypeId: requestDto.VehicleTypeId,
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fromCityId: requestDto.FromCityId,
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toCityId: requestDto.ToCityId,
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startDateTime: requestDto.StartDate,
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endDateTime: requestDto.EndDate);
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if (result.Any())
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{
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var dto = _mapper.Map<IEnumerable<TransportationSearchResultDto>>(result);
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return Result<IEnumerable<TransportationSearchResultDto>>.Success(dto);
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}
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return Result<IEnumerable<TransportationSearchResultDto>>.NotFound(null);
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}
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}
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```
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- [ ] Register services in `Program.cs`:
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```c#
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.
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.
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.
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builder.Services.AddScoped<ITransportationService, TransportationService>();
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builder.Services.AddScoped<ICityService, CityService>();
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.
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.
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.
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```
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# Controller
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Now we're getting to endpoints, you should communicate with client side through web-api. So every controller uses Services in Application layer to receive requests and send responses with DTOs.
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- [ ] Create an APIController (right click on the folder, and then under Add, select Controller, and then make sure to select the APIController type)
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📂 Suggested Folder: WebAPI/Controller
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You should use ```[ApiController]``` attribute on top of them, route them and handle different status codes. TransportationController:
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```cs
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[ApiController]
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[Route("api/[controller]")]
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public class TransportationController : ControllerBase
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{
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private readonly ITransportationService _transportationService;
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public TransportationController(ITransportationService transportationService)
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{
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_transportationService = transportationService;
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}
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[HttpGet("search")]
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public async Task<IActionResult> SearchTransportations([FromQuery] TransportationSearchRequestDto searchRequest)
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{
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if (searchRequest == null)
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{
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return BadRequest("Invalid search request");
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}
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var result = await _transportationService.SearchTransportationsAsync(searchRequest);
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if (result.IsSuccess)
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{
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return Ok(result);
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}
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// any unsuccessful status
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return result.Status switch
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{
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ResultStatus.NotFound => NotFound(result.ErrorMessage),
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ResultStatus.ValidationError => BadRequest(result.ErrorMessage),
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_ => StatusCode(500, result.ErrorMessage),
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};
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}
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}
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```
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- HttpGet: handles a GET request from client -> important for routing
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- Ok, BadRequest, NotFound and StatusCode are Json results to send through api
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- Use TransportationService to communicate with Application
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# Inserting Sample Data
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For testing purposes, add some data into the related tables.
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You are provided with a SQL script, that adds some sample data into the following tables
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**Important Notes:** Note that different database names, and different table names will produce errors while executing the script. Consider adjusting these names before executing the script
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- Cities
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- Companies
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- LocationTypes
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- Locations
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- VehicleTypes
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- Vehicles
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- Transportation
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- [ ] Open `TransportationRelatedSampleData.sql` with SSMS, and execute the query
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# Merge
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- [ ] Create a PR and merge the current branch with develop
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# Additional Info
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### 1. **Should I have an `IEntityService` and then `EntityService` for each of my entities?**
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Not necessarily **for _every_** entity — only if it **makes sense**.
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- The Application Layer should expose **use cases** — not just CRUD logic for each entity.
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- If an entity has business logic or interactions that need orchestration (e.g., validations, aggregations, calling repositories, etc.), then **yes**, create a service.
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- Otherwise, for basic operations, **directly using a repository (via a unit of work or interface)** from the use case handler might be fine.
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### 2. **Is it OK to have services not related to a specific entity?**
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Absolutely, **yes**. In fact, that’s expected in a Clean Architecture setup.
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Examples:
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- A `ReportGenerationService` that combines bookings, customers, and payments.
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- A `TokenService` for authentication tokens.
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- A `CurrencyConversionService` that hits an external API.
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- A `NotificationService` that sends emails or SMS.
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👉 As long as these services **live in the Application Layer** and follow **dependency inversion** (i.e., they depend only on interfaces, not implementations), you’re doing great.
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### 3. **Is it necessary to have an interface for each service?**
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### 🔹 **What’s the Difference Between Services and Repositories?**
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| Aspect | **Service** | **Repository** |
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| ------------------ | ---------------------------------------------------------------------- | --------------------------------------------------------------- |
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| **Layer** | Application Layer | Domain Layer (interface), Infrastructure Layer (implementation) |
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| **Responsibility** | **Orchestrates business logic** / use cases | **Data access abstraction** |
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| **Focus** | Coordinates multiple domain/repo operations, validation, business flow | Fetching/storing data for a specific entity |
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| **Example** | `PlaceOrderService`, `ReportService` | `ICustomerRepository`, `IOrderRepository` |
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### What does `init` mean?
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`init` is an **access modifier for properties** that allows you to **set a property only during object initialization**, **but not after**.
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## Should I use `class` or `record` for DTOs in Clean Architecture?
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### 🔵 Short answer:
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> **Use `record` for DTOs when possible** — it's clean, immutable by default, and semantically perfect for data transfer.
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---
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### 🔍 Why `record` is a great fit for DTOs
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| Feature | `record` | `class` |
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| ----------------------- | ----------------- | ---------------------------- |
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| Immutable by default | ✅ (with `init`) | ❌ (need manual setup) |
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| Value-based equality | ✅ | ❌ (ref-based by default) |
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| Concise syntax | ✅ | ❌ (more boilerplate) |
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| Use for data containers | ✅ (perfect fit) | ✅ (but more verbose) |
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| Custom behavior/logic | ❌ (less suitable) | ✅ (better for rich behavior) |
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### But when should you prefer `class`?
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Use `class` if your DTO or model:
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- Needs to be **mutable** after creation
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- Has to **interact with legacy APIs/libraries**
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- Needs **inheritance or polymorphism** (not well supported in `record`)
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- Has **rich behavior** (logic, methods, validation, etc.)
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> For example, in the Domain Layer (Entities, ValueObjects), you'll usually stick to **`class`** — because that's where behavior lives.
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## RESTful APIs:
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https://aws.amazon.com/what-is/restful-api/#:~:text=RESTful%20API%20is%20an%20interface,applications%20to%20perform%20various%20tasks.
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## What Conditions Make an API RESTful?
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### Key Principles of REST:
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1. **Statelessness**:
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- Each API call must contain all the information the server needs to fulfill the request (no session state). Each request is independent.
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2. **Resource Identification**:
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- Resources (e.g., customers, orders) should be identified using URIs. Use nouns in URIs, not verbs.
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3. **HTTP Methods**:
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- Use standard HTTP methods to represent actions:
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- **GET**: Retrieve a resource.
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- **POST**: Create a new resource.
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- **PUT**: Update a resource entirely.
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- **PATCH**: Update a resource partially.
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- **DELETE**: Remove a resource.
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4. **Use of Standard Status Codes**:
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- Return appropriate HTTP status codes (e.g., `200 OK`, `201 Created`, `404 Not Found`, `500 Internal Server Error`).
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5. **HATEOAS**:
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- (Hypermedia as the Engine of Application State) - Provide links to related resources within the responses.
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### Multiple GET Methods in One Controller:
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- **Yes, you can have multiple GET methods in one controller**. The key is to differentiate them based on routes and parameters.
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- For example:
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```c#
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[ApiController]
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[Route("api/[controller]")]
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public class CustomerController : ControllerBase {
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[HttpGet("{id}")]
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public IActionResult GetCustomerById(int id) { /*...*/ }
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[HttpGet]
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public IActionResult GetAllCustomers() { /*...*/ }
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[HttpGet("{id}/orders")]
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public IActionResult GetCustomerOrders(int id) { /*...*/ }
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}
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```
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- **Routing**: ASP.NET Core uses route templates to differentiate these actions. The combination of route parameters, query strings, and action names can help separate the GET requests.
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## List-like stuff in `C#`
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Absolutely, let’s go over the main “list-like” data types in C#. They all serve similar purposes—holding multiple items—but differ in functionality, performance, and use cases. Here’s a detailed breakdown:
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🔷 1. `IEnumerable`
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- Namespace: System.Collections.Generic
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- Most basic "list-like" abstraction.
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- Read-only (forward-only iteration).
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- You can use foreach on it.
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- Doesn’t support indexing (no .Count, no [i]).
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- Often used as the return type to expose a stream of data without giving full collection control.
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Example:
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```csharp
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IEnumerable<int> numbers = GetNumbers(); // Lazy-loaded maybe
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foreach (var num in numbers)
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Console.WriteLine(num);
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```
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💡 Ideal when:
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- You want to return a sequence without exposing modification.
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- You’re using LINQ chains.
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- You’re returning data from a database query.
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---
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🔷 2. ICollection
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- Extends IEnumerable.
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- Adds Count and Add/Remove/Clear methods.
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- Still abstract—List and HashSet implement it.
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💡 Useful when:
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- You want to expose a collection that can be modified (e.g. Add or Remove).
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- You care about the Count.
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---
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🔷 3. IList
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- Extends ICollection and IEnumerable.
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- Adds index access: list[0] etc.
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- Think of it like a mutable array with dynamic size.
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💡 Use when:
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- You want ordered collection with indexing.
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- You need to insert, remove, or replace items at specific positions.
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---
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||
|
||
🔷 4. List
|
||
|
||
- A concrete class (not interface).
|
||
|
||
- Implements IList, ICollection, IEnumerable.
|
||
|
||
- Backed by an array (auto-resizes).
|
||
|
||
- Fast read and write.
|
||
|
||
- Supports Add, Remove, Insert, IndexOf, etc.
|
||
|
||
|
||
Example:
|
||
|
||
```csharp
|
||
var list = new List<string>();
|
||
list.Add("One");
|
||
list.Add("Two");
|
||
var second = list[1]; // "Two"
|
||
```
|
||
|
||
💡 Go-to general purpose collection.
|
||
|
||
---
|
||
|
||
🔷 5. IReadOnlyCollection & IReadOnlyList
|
||
|
||
- IReadOnlyCollection: Just Count and IEnumerable.
|
||
|
||
- IReadOnlyList: Adds indexing without modification.
|
||
|
||
- Used to expose lists safely (read-only).
|
||
|
||
|
||
💡 Used when:
|
||
|
||
- You want to return a list, but prevent any changes.
|
||
|
||
|
||
---
|
||
|
||
🔷 6. Array (T[])
|
||
|
||
- Fixed-size.
|
||
|
||
- Fastest for indexing.
|
||
|
||
- Cannot change size.
|
||
|
||
- Implements IList (via Array).
|
||
|
||
|
||
Example:
|
||
|
||
```csharp
|
||
int[] numbers = new int[5];
|
||
numbers[0] = 42;
|
||
```
|
||
|
||
💡 Great for performance-sensitive or fixed-size data.
|
||
|
||
---
|
||
|
||
🔷 7. ObservableCollection
|
||
|
||
- For WPF/Blazor/WinForms data-binding.
|
||
|
||
- Notifies UI when items are added/removed.
|
||
|
||
- Implements IList.
|
||
|
||
|
||
💡 Use in UI apps when the view needs to react to collection changes.
|
||
|
||
---
|
||
|
||
🔷 8. HashSet
|
||
|
||
- Unordered, no duplicates.
|
||
|
||
- Implements ICollection, not IList.
|
||
|
||
- No index access.
|
||
|
||
|
||
💡 Best for fast membership checking (contains x).
|
||
|
||
---
|
||
|
||
🔷 Summary Table
|
||
|
||
|Type|Indexing|Modifiable|Ordered|Duplicates|Use Case|
|
||
|---|---|---|---|---|---|
|
||
|IEnumerable|❌|❌|✔️|✔️|Basic read-only stream or LINQ chaining|
|
||
|ICollection|❌|✔️|✔️|✔️|Expose modifiable group of items|
|
||
|IList|✔️|✔️|✔️|✔️|Full-featured list abstraction|
|
||
|List|✔️|✔️|✔️|✔️|Standard go-to collection|
|
||
|IReadOnlyList|✔️|❌|✔️|✔️|Return data safely from service or repo|
|
||
|Array (T[])|✔️|✔️|✔️|✔️|Fixed-size, performant indexing|
|
||
|ObservableCollection|✔️|✔️|✔️|✔️|UI binding for collections|
|
||
|HashSet|❌|✔️|❌|❌|Fast lookup, uniqueness enforcement|
|
||
|
||
—
|
||
|
||
If you tell me the scenario (e.g. search results, modifying a cart, populating a drop-down), I can recommend the best type for it. Want that?
|