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#include<iostream>
using namespace std;
int count(float v[100],int n)
{
    int i,nr=0;
    float m;
    m=(v[0]+v[n-1])/2;
    for(i=0;i<n;i++)
        if(v[i]>=m)
            nr++;
    return nr;
}
int main()
{
    int i,n,ok=0;
    float v[100];
    cin>>n;
    for(i=0;i<n;i++)
        cin>>v[i];
    if(v[0]==v[n-1])
        ok=1;
    if(count(v,n)==2 && ok==1)
        cout<<"YES";
    else
        if(ok==0 && count(v,n)==1)
            cout<<"YES";
        else
            cout<<"NO";
}

This program supposedly checks if the first and last numbers from within an array are the lowest values that are in that respective array. This is done , as the title states, by comparing the numbers to the arithmetic mean of the first and last numbers

The problem is, it doesn't. Whatever values I input, it only displays "NO" (meaning that these numbers are not the lowest). Gone through it a hundred times, but can't really figure out what's wrong...any help would be appreciated.

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2  
For starters, floats don't do any good when compared using ==. –  user529758 Jun 7 '13 at 16:53
    
Could you please elaborate...? Why would it not work, and what operator should I use instead ? –  Juggl3r Jun 7 '13 at 16:55
1  
Whats your input data? (The line @H2CO3 is referring to is v[0] == v[n-1]. Floats aren't perfect representations, so there's some instances like 5.0 * 0.1 == 0.5 is false) –  Mr. Llama Jun 7 '13 at 16:57
2  
@GîdeiCodrin It's a long story. –  user529758 Jun 7 '13 at 16:57
    
6 for n, then 12 245 654 23 652 11 –  Juggl3r Jun 7 '13 at 16:58
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2 Answers

The line if(ok==0 && count(v,n)==1) should be if(ok==0 && count(v,n)== n-1).

If the first and last are not equal, but one of them is the lowest number, then count(v,n) will return n-1.

With your example data with 6 input: 12 245 654 23 652 11.
(first + last) / 2 = 11.5
12, 245, 654, 23, and 652 are all greater than 11.5, so count(v,n) returns 5 (e.g. n-1), which indicates that "either the first of the last number is the lowest".


edit: The simplest solution would be fixing count() to check if(v[i]<=m) instead of >=. That way it returns the quantity of datum that are less than (first+last)/2. If first==last, it will return 2, if first!==last, it should return 1.

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Your algorithm is fundamentally flawed and won't do what you want (check if the first and last numbers are the two lowest). Consider this array:

2, 19, 19, 19, 19, 20

Every element except the first is greater than the mean (11) but the last item is the largest not one of the smallest two.

I think the actual simplest way to solve this is to partial_sort the first two elements (in a temporary container if needed) and check if they match the first and last elements of the original data.

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Altough I understand what the flaw was...I am unsure as to what partial_sort is, or how to do what you call "the simplest way"...could you explain/elaborate please? –  Juggl3r Jun 7 '13 at 20:27
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