Using normrnd for generating natural values (without decimal values)

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Sahar khalili on 14 Jun 2022

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Edited: Walter Roberson on 15 Jun 2022

I would like to generate data with average of 27 and standard deviation of 1.41, but I would like the data have no decimal values, ex to be like this 12, 24, 27 ... . Could you please help me how I can do so?

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Walter Roberson on 14 Jun 2022

You cannot use the fact that the sum of identically distributed uniform distribution approximates normal. You can generate 54 binary values and sum them. That will have a mean of 27, but the std will be 3.67.

Sahar khalili on 14 Jun 2022

As I mentioned I do not care about the distributation of data, I need 6 numbers that just have the mean of 27 and std deviation of 1.41, and what matters for me is just data has no decimal values.

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Answer 1

Sam Chak on 14 Jun 2022

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Edited: Sam Chak on 14 Jun 2022

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@Sahar khalili

How about this data set {25, 26, 27, 27, 28, 29}?

A = [25, 26, 27, 27, 28, 29]
A = 1×6
    25    26    27    27    28    29
M = mean(A)
M = 27
S = std(A)
S = 1.4142

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Walter Roberson on 14 Jun 2022

Edited: Walter Roberson on 15 Jun 2022

std is sqrt(2). std() involves sqrt(N-1). N=6 so that is division by sqrt(5). In order for that to give sqrt(2) it follows that the numerator must be sqrt(10) and so the sum of exactly 6 squares of values minus mean must be 10.

Can any of the differences from the mean be 4 or more? No that would give a term of 4*4 which exceeds 10.

Can any of the differences be 3? 3*3 = 9 which is less than 10, but that requires that the total sum of squares for the other 5 terms is 1. But you cannot balance a difference of 3 with a single difference of 1 to get the right mean.

Can any of the differences be 2? Yes, make one be -2 and another be +2 and one be -1 and another be +1 and you get a mean balance and sum of squares 2*2 + 2*2 + 1*1 + 1*1 = 10, which works out.

Can exactly one be difference of 2? That contributes 4 to the sum of squares, leaving 6 to be distributed among the remaining 5 values. But under hypothesis none are 2 (squared) and so you have a pigeon-hole problem of distribution of 6 in 5 values that are 0 or 1, and that cannot fit.

Can all the differences be 0 or 1? No, sum of squares for 6 values like that cannot reach 10.

So we conclude that Sam's arrangement (possibly permuted) is the only solution.

Walter Roberson on 14 Jun 2022

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[x1, x2, x3, x4, x5, x6] = ndgrid(27-4:27+4);
meanmask = (x1 + x2 + x3 + x4 + x5 + x6)/6 == 27;
sx1 = x1(meanmask); sx2 = x2(meanmask); sx3 = x3(meanmask);
sx4 = x4(meanmask); sx5 = x5(meanmask); sx6 = x6(meanmask);
sx = [sx1, sx2, sx3, sx4, sx5, sx6];
st = std(sx, [], 2);
inrange = st >= 1.405 & st < 1.415;
values_that_work = sx(inrange,:);
whos values_that_work
  Name                    Size            Bytes  Class     Attributes

  values_that_work      360x6             17280  double              
unique(sort(values_that_work, 2), 'rows')
ans = 1×6
    25    26    27    27    28    29

360 matches... but to within permutations they are all the same.

Notice that, as predicted by my analysis, no deviations of 4 or 3 match, only -2, -1, 0, 0, +1, +2

Sam Chak on 15 Jun 2022

Many thanks to @Walter Roberson for explaning and showing the Permutation search procedure. The permutation-based method is effective.

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Using normrnd for generating natural values (without decimal values)

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Using normrnd for generating natural values (without decimal values)

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