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I can't figure this interview question.

You have an array of integers. You need to provide another Data structure that will have these functions:

int get(int index)
void set (int index, int value)
void setall(int value)

They all do what you guess they're suppose to do. The limitation is that every function is in O(1).

How can you design it so that setAll will be O(1).

I thought about adding another field to each integer, that will point to an integer that will be changed every time setAll is called. the problem comes when someone call setAll and then set then get.

Edit: I changed the names of the variables so it would be clearer. Also, since you asked, get is suppose to return array[i], set(index, value) suppose to put the value value in array[index].

After setall(index, value) you should get (get(i) == get(j) == value) for every i,j in the array.

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What is i in set and setall ? –  Felix Kling May 2 '11 at 12:35
    
I assume that n = length of the array, where efficiency is O(n)? –  Nathan Fig May 2 '11 at 12:35
    
why would there be a problem if someone callet setAll, then set, and then get? (in that order, appearantly) Also, it feels like this is a homework-question, rather than one that belongs in the interview questions section. –  Timothy Groote May 2 '11 at 12:37

2 Answers 2

up vote 8 down vote accepted

Keep a DateTime field ( or simply a counter ) with each element in the array, a setAllValue variable and setAllDateTime variable. With each set, update the DateTime/counter of the element. With SetAll, update the value and DateTime of setAllDateTime.

In get, compare the DateTime of SetAll with DateTime of the element, whichever is newer, return that.

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Thanks! So simple.. –  Eyal May 2 '11 at 14:41
4  
@Hammar's solution using a version number is probably better. The issue with timestamps is that you rely on not having two changes with the same timestamp. This definitely depend on the frequency of the changes AND the resolution of your timestamp. For example Windows is reknown for its low accuracy. –  Matthieu M. May 2 '11 at 14:51
1  
@Matthieu @Hammer I think that in general, you get to choose the answer that helped you most because you asked the question, and you are looking for something specific. In this case, Hammer did gave a very good solution, a complete answer, I agree. But all I needed was what Sanrag Sood said. Only the idea :) Again, this is not to say that Hammer's answer wasn't good :) It is great! –  Eyal May 4 '11 at 6:04

How about storing a "version number" with each variable, i.e.

 int globalValue, globalVersion;
 int nextVersion;
 int[] localValue, localVersion;

 int get(int i) {
     if (localVersion[i] > globalVersion)
         return localValue[i];
     else
         return globalValue;
 }


 void set(int i, int value) {
     localValue[i] = value;
     localVersion[i] = nextVersion++;
 }

 void setAll(int value) {
     globalValue = value;
     globalVersion = nextVersion++;
 }
share|improve this answer
    
Thanks! That's just great.. –  Eyal May 2 '11 at 14:40
2  
@Eyal: depending on the number of updates, don't forget to deal with the version looping (back to 0 for unsigned, and becoming negative for signed). –  Matthieu M. May 2 '11 at 14:49
    
The problem says set(i) not set(i,value) :-) –  Aryabhatta May 2 '11 at 17:06
    
you can combine both answers by using the timestamp of the epoch time down to nanosecond precision since no 2 commands will complete on the same nanosecond. this is basically just a simple MVCC –  Asaf May 2 '11 at 19:17
    
@Moron: I'm assuming that was a typo. –  hammar May 2 '11 at 21:18

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