How to similuate a coin flip with probablility p
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How do I simulate getting a result, either 0 or 1, with probability p. So if p=0.5 I should get an output of 0 half of the time, and 1 half of the time.
1 Commento
ali fadi
il 11 Apr 2022
probability and statics the probability function flipping 3 coins in matlab
Risposta accettata
Wayne King
il 9 Nov 2011
100 tosses with p=0.5.
x = round(rand(100,1));
If you want a probability other than p=0.5, then realize that rand() is uniform random number generator between [0,1], so you can assign the output of rand() accordingly. For example, for p=0.25:
y = zeros(100,1);
x = rand(100,1);
y(x<0.25) = 1;
Or if you just want to simulate the number of 0's or 1's in a certain number of trials. Say 100 for example. Here is a simulation of ten such experiments. Requires Statistics Toolbox.
R = binornd(100,0.5,10,1);
Più risposte (3)
Nick
il 9 Nov 2011
Alternatively you could use the randi function in MATLAB which generates random integers.
100 tosses with 0=heads, 1=tails
coin=randi([0:1], [100,1])
It should more or less give you 50 0's and 50 1's.
If there is more than 2 possible outcomes and they all occur with the same probability then just increase the integer range of the randi function.
4 Commenti
Evangelia Lo
il 13 Nov 2021
What if i want a program whick calculate how many times it will give 0000000000 (10×0)like that in a row ...How can i do it ?
Evangelia Lo
il 13 Nov 2021
Which *
Image Analyst
il 13 Nov 2021
Modificato: Image Analyst
il 13 Nov 2021
@Evangelia Lo, if you have the Image Processing Toolbox you can use bwareafilt() to extract runs of only the length you want and then bwlabel() or regionprops() to count them. If you want to find the index where each run starts, use regionprops():
coins = logical(randi([0, 1], 1, 30000)); % 30,000 coins
patternLength = 10; % Whatever you want
% Throw out all regions that don't match the length we want using bwareafilt(). Need to invert.
coins2 = bwareafilt(~coins, [patternLength, patternLength]);
% Count them
props = regionprops(coins2, 'PixelIdxList');
numPatternOccurrences = numel(props)
% For fun, find out where they occur.
indexes = vertcat(props.PixelIdxList); % All 10 indexes in a run
startingIndex = indexes(1 : patternLength : end) % Just the starting index.
Evangelia Lo
il 13 Nov 2021
How can i do it without the Image Processing Toolbox ?
Cory London
il 15 Nov 2018
This code is easily minupulated and works pretty well
Ntoss = 100;
x = rand(1, Ntoss); % what is the resulting size of x?
toss = (x < 0.5);
1 Commento
Umar Abdulhamid
il 6 Ott 2021
Can you briefly explain this for me please?
SARATHRAJ V
il 20 Feb 2021
0 voti
Ntoss = 100; x = rand(1, Ntoss); % what is the resulting size of x? toss = (x < 0.5);
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