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I want to write a particular function which does some calculation but i have no idea what the algorithm should be:

Requirement I want to write a function in which you pass in a number and it returns a value from 0 to 1. if i pass in a 0, it returns a 1 and as you increase the value of the input the output gets closer to 0.

This is similar to a y = 1/x function

but i want to set markers such as if the input is 300, it returns a 0.75 and if it is 600 it returns a 0.5

Is there such a formula which can help me do this?

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closed as off topic by Kendall Frey, Raymond Chen, A. Webb, Matthew Strawbridge, hammar May 27 '13 at 19:01

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This would be more on-topic for mathematics.stackexchange.com. –  Kendall Frey May 27 '13 at 17:13
    
Also, the vague title is not going to be helpful to anyone else with the same problem. –  Raymond Chen May 27 '13 at 17:16
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Not sure I understand this. You mean you want it to behave like 1/x, but you want certain pre-defined values to give pre-defined results? Do you have an array of these pre-defined (x,y) pairs? And do the results need to be unique? (e.g., is the function intended to be a strictly decreasing function?) Does the array of pre-defined pairs change over time, or are they fixed? –  lurker May 27 '13 at 17:17

2 Answers 2

up vote 1 down vote accepted

I have come up with a function which does this!

I used Lagrangian Interpolation and the function I got was:

The equation

It's not very simple, but it works for x values from 0 to 99999999.

There is another (far more simple) answer that works only until 600.

              f(x)=-(x-1200)/1200
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There must be a less complex answer, but I can't think of any. –  user1949346 May 27 '13 at 17:29
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Oh good grief, your original answer, mistakes considered, was better. –  High Performance Mark May 27 '13 at 17:37
    
You're right, but the user probably needs it to take any value. –  user1949346 May 27 '13 at 17:55
    
I really like your first answer how did you derive these values? I just need to know that and i can mark your answer as an accepted answer –  Krimson May 27 '13 at 18:28
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@MRS (1200-x)/1200 will reduce number of operations down to 2. –  bjskishore123 May 29 '13 at 3:16

If you know range high value, say for example 1200

The output should be 1-(300/1200) = 1 - 0.25 = 0.75

For input x, Formula is 1 - (x/Rangehighvalue)

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