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I spend the last hour doing trial and error with this problem with no avail. We have to, using general coding guidelines (like scan.nextDouble) instead of actual numbers, find the max of a certain number of double values. The only catch is that we can only add code at a certain point. (where the ... is)

double value, valMax;
    int n;
    n = scan.nextInt();
    for(int j = 0; j < n; j++)
    {
       value = scan.nextDouble();
        ...
    }

Where the first value read in is an int and that is the amount of doubles to be entered.

It is difficult because I have to find a way to initialize valMax inside the loop without messing up anything else.

This is what I have been working with, but with nothing working for me.

for(int j = 0; j < n; j++)
   {
      value = scan.nextDouble();
      if(j == 0)
      {
       valMax = scan.nextDouble();
       j++;
      }
      else
      {
       continue;
      }
      if(value >= valMax)
      {
       valMax = value;
      }
   }

Example input:

5    -4.7  -9.2  -3.1  -8.6  -5.0

Where -3.1 is the max and 5 is the count of following numbers.

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2  
I must say, this is a pretty weird homework problem. Because of the contraints you won't actually be able to use valMax anywhere after the loop (i.e. print it out) because it may not have been initialized. –  Catchwa Nov 7 '10 at 23:28
    
Well the problem does not state it has to be printed out, just that it has to store the maximum value into valMax. A note on the bottom of the problem states "How valMax is initialized is important." –  Mike Nov 7 '10 at 23:36
    
+1 for using the homework tag (:D) –  jcolebrand Nov 7 '10 at 23:51
    
@drachenstern: Actually, "the homework tag, like other so-called 'meta' tags, is now discouraged." –  Roger Pate Nov 8 '10 at 1:38
    
@Roger Page ~ /facepalm then. Thanks for the headsup. –  jcolebrand Nov 8 '10 at 1:43

2 Answers 2

Your code seems like a good start.

To help solve your problem, consider:

  • Why did you put in the extra j++? Do you really need it? (Hint: no ;-) )
  • What will the loop do for j>0 (i.e. after the first iteration)?

That should quickly give you a working solution.

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i put the extra j++ because i used two values in the first run. Like i said it was me doing trial and error. (i think this was try #8) –  Mike Nov 7 '10 at 23:18
1  
(Blind) trial and error is not a good programming technique... –  sleske Nov 7 '10 at 23:22
    
I only resort to trial and error when my books, notes, previous knowledge, and friends fail. –  Mike Nov 7 '10 at 23:24

Are you allowed to set the valMax before the loop? Because in that case you can just do

valMax = Double.MIN_VALUE

and just forget about strange things by doing a normal comparison value > valMax.

If you are not your approach is how you should do but two things:

  • you shouldn't care about incrementing with j++ since the for loop will care about it by itself..
  • having a else { continue; } will make the body of the for jump to next iteration without caring about code that is after the continue. Are you sure that is what you want to do?

I think that you can initialize to Double.MIN_VALUE at first iteration (j == 0) and just behave normally afterwards: the only thing you need is that valMax is initialized before the first comparison with value, not before the scan from stdin..

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No we cannot exit any existing code, only add code where the ... is. –  Mike Nov 7 '10 at 23:20
    
Check my last edit (last paragraph) –  Jack Nov 7 '10 at 23:20
    
@John ~ You may consider the check if valMax has not been set to any value, then what might it be? Or in other words, is there a value valMax may have that would indicate it has not been intialized? Can you test to see if it is currently set to that value, and would therefore need to be initialized? [don't think this is impossible, it's really a simple two lines of code that needs to be inserted] –  jcolebrand Nov 7 '10 at 23:40
1  
I have no idea. I have no idea why he would assign this and not talk about it in class. I might try going to his office hour tomorrow. I am stumped. –  Mike Nov 8 '10 at 0:16
1  
Actually, you don't need Double.MIN_VALUE, at j==0 the max known value is the current number in value. –  Mark Elliot Nov 8 '10 at 1:42

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