I have 3 components, TypeList, ConnectedType (=connect(mapStateToProps)(Type), and Type. Type will receive props from both TypeList (onClick, name) passing props to ConnectedType as well as ConnectedType's mapStateToProps (onMiniPokemonClick, miniPokemon). How do I do a check to see if miniPokemon exists before mapping it out? Is it possible to do logic on a functional component or do I have to make it a class and create a helper function inside?

const Type = ({onClick, name, onMiniPokemonClick, miniPokemon}) => (
  <li
    onClick={onClick}
  >
    {name}
    <ul>
      {
        if (miniPokemon) {
          miniPokemon.map(function (pokemon, idx) {
            return (<MiniPokemon onClick={() => onMiniPokemonClick(pokemon.name)} name={pokemon.name}/>)
          })
        }
      }
    </ul>
  </li>
)
up vote 1 down vote accepted

All you need to do is use brackets to allow a multiline function body

const Type = ({onClick, name, onMiniPokemonClick, miniPokemon}) => {
   // some logic   
   return (
      <li
        onClick={onClick}
      >...
      </li>
   )
}

Or if you just need to ensure that miniPokemon is an array when a null/undefined value comes through - you could supply a default argument:

({onClick, name, onMiniPokemonClick, miniPokemon = []})
  • THANKS! I know that {} only lets you evaluate expressions that are only 1liners, but how does putting this inside a return with () rather than the implicit return of es6's () in a function change it? – mangocaptain Aug 27 '16 at 8:44
  • btw I put that in but seems like react's not going thru my if statement at all and still trying to map out miniPokemon regardless if it exists or not – mangocaptain Aug 27 '16 at 8:50
  • 1
    I was thinking you may want to do some sort of logic prior to iteration and possibly return null or something if miniPokemon is empty or unset: if you are getting an array or undefined and want to ensure you have an array to iterate over you can use a default argument as noted in my updated answer – Rob M. Aug 27 '16 at 8:54

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.