0

I'm writing a SPA in Svelte. Now I'm fairly new to the concepts of ES6 so I'm having difficulties wrapping my head around som basic concepts.

I have a store:

import { writable } from "svelte/store";

function selectedOptions() {
    const selection = writable([
        {
            id: 1,
            title: "Title 1",
            selections: []
        },
        {
            id: 2,
            title: "Title 2",
            selections: []
        },
        {
            id: 3,
            title: "Title 3",
            selections: []
        },
        {
            id: 4,
            title: "Title 4",
            selections: []
        },
        {
            id: 5,
            title: "Title 5",
            selections: []
        },
        {
            id: 6,
            title: "Title 6",
            selections: []
        }
    ]);

    return {
        subscribe: selection.subscribe,
        updateSelection: item => {
            selection.update((items) => {
                //I want to update the object with the same id as the object 
                //I'm passing in to the method.
           });
        };
    }
}
export default selectedOptions();

In my component I want't to pass in a object and update corresponding object in my array with provided values:

function handleChange(e) {
    selectedOptions.updateSelection({
        id: 1, title: "Title 1", selections: ["Option 1, Option 2"]
    });
}

How do I "replace" an existing object with a new one thus triggering an update to all components that are subscribing to the store?

1

Use the spread syntax to copy all the original keys, then add the one you want to modify:

selection.update(items => {
  return {
     ...items,
     [item.id]: item
  }
});
1

You could use the array method map and merge the new and old object if the id matches or just return the old object as-is if the id doesn't match.

updateSelection: item => {
  selection.update(items => {
    return items.map(i => (i.id === item.id ? { ...i, ...item } : i));
  });
};

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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