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When I grab an element from an array using the arc4random_uniform() method, the same element the array is often grabbed more than once. I am trying to make it so each element in the array is grabbed only once. The reason I'm trying to do this is so more than one cells in a UITableView don't have the same text. Here's the array for the text of the cells in the UITableView:

var definitions = ["Used to carry the pharoah","Used to carry bodies as a ceremony","Had a flat deck to carry a farmer's treasure","Daily, it made a trip around the world to carry Ra","Towed by smaller boats, carrying heavy objects","Used for business and pleasure by officials/nobles","Carried most Egyptians and some goods"]

In my viewDidLoad() method, I have done this to call random elements of definitions:

self.boats = [Boats(name: definitions[Int(arc4random_uniform(7))]),Boats(name: definitions[Int(arc4random_uniform(7))]),Boats(name: definitions[Int(arc4random_uniform(7))]),Boats(name: definitions[Int(arc4random_uniform(7))]),Boats(name: definitions[Int(arc4random_uniform(7))]),Boats(name: definitions[Int(arc4random_uniform(7))]),Boats(name: definitions[Int(arc4random_uniform(7))])]

How can I alter my code so two elements aren't displayed twice in my UITableView? Thank you!

marked as duplicate by Martin R swift Dec 14 '14 at 21:04

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Do you want to randomly sort the array? – Leo Dabus Dec 14 '14 at 21:01
  • What you are looking for is called "random shuffle" or "random permutation". The Fisher-Yates shuffle is one possible implementation. – Martin R Dec 14 '14 at 21:05
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Keep a list of the random index values and if a subsequent random index is in that list, then skip it and generate another random index.

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    This is not the best way to do this, if you want to get all of the elements it gets very inefficient towards the end. – pjs Dec 15 '14 at 1:38
  • Agreed. An alternative would be to use a linked list with n elements. Generate a random index i, 1 <= i <= n (assuming a 1 offset), grab the value, remove the item from the list (so the list is now n-1 elements) and do it again, this time generating a random index i between 1 and n-1. Or some variation on that theme. – mbmast Dec 16 '14 at 21:28
  • Better alternatives would be to shuffle the set of values and iterate through the shuffled set (to get the entire set), or to use Floyd's unique subset algorithm if you want a subset. – pjs Dec 16 '14 at 21:41

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