In my models, one of the most repeated tasks to be done is counting the number of each element within an array. The counting is from a closed set, so I know there are X
types of elements, and all or some of them populate the array, along with zeros that represent 'empty' cells. The array is not sorted in any way, and could by quite long (about 1M elements), and this task is done thousands of times during one simulation (which is also part of hundreds of simulations). The result should be a vector r
of size X
, so r(k)
is the amount of k
in the array.
Example:
For X = 9
, if I have the following input vector:
v = [0 7 8 3 0 4 4 5 3 4 4 8 3 0 6 8 5 5 0 3]
I would like to get this result:
r = [0 0 4 4 3 1 1 3 0]
Note that I don't want the count of zeros, and that elements that don't appear in the array (like 2
) have a 0
in the corresponding position of the result vector (r(2) == 0
).
What would be the fastest way to achieve this goal?
tl;dr: The fastest method depend on the size of the array. For array smaller than 214 method 3 below (accumarray
) is faster. For arrays larger than that method 2 below (histcounts
) is better.
UPDATE: I tested this also with implicit broadcasting, that was introduced in 2016b, and the results are almost equal to the bsxfun
approach, with no significant difference in this method (relative to the other methods).
Let's see what are the available methods to perform this task. For the following examples we will assume X
has n
elements, from 1 to n
, and our array of interest is M
, which is a column array that can vary in size. Our result vector will be spp
1, such that spp(k)
is the number of k
s in M
. Although I write here about X
, there is no explicit implementation of it in the code below, I just define n = 500
and X
is implicitly 1:500
.
The naive for
loop
The most simple and straightforward way to cope this task is by a for
loop that iterate over the elements in X
and count the number of elements in M
that equal to it:
function spp = loop(M,n)
spp = zeros(n,1);
for k = 1:size(spp,1);
spp(k) = sum(M==k);
end
end
This is off course not so smart, especially if only little group of elements from X
is populating M
, so we better look first for those that are already in M
:
function spp = uloop(M,n)
u = unique(M); % finds which elements to count
spp = zeros(n,1);
for k = u(u>0).';
spp(k) = sum(M==k);
end
end
Usually, in MATLAB, it is advisable to take advantage of the built-in functions as much as possible, since most of the times they are much faster. I thought of 5 options to do so:
1. The function tabulate
The function tabulate
returns a very convenient frequency table that at first sight seem to be the perfect solution for this task:
function tab = tabi(M)
tab = tabulate(M);
if tab(1)==0
tab(1,:) = [];
end
end
The only fix to be done is to remove the first row of the table if it counts the 0
element (it could be that there are no zeros in M
).
2. The function histcounts
Another option that can be tweaked quite easily to our need it histcounts
:
function spp = histci(M,n)
spp = histcounts(M,1:n+1);
end
here, in order to count all different elements between 1 to n
separately, we define the edges to be 1:n+1
, so every element in X
has it's own bin. We could write also histcounts(M(M>0),'BinMethod','integers')
, but I already tested it, and it takes more time (though it makes the function independent of n
).
3. The function accumarray
The next option I'll bring here is the use of the function accumarray
:
function spp = accumi(M)
spp = accumarray(M(M>0),1);
end
here we give the function M(M>0)
as input, to skip the zeros, and use 1
as the vals
input to count all unique elements.
4. The function bsxfun
We can even use binary operation @eq
(i.e. ==
) to look for all elements from each type:
function spp = bsxi(M,n)
spp = bsxfun(@eq,M,1:n);
spp = sum(spp,1);
end
if we keep the first input M
and the second 1:n
in different dimensions, so one is a column vector the other is a row vector, then the function compares each element in M
with each element in 1:n
, and create a length(M)
-by-n
logical matrix than we can sum to get the desired result.
5. The function ndgrid
Another option, similar to the bsxfun
, is to explicitly create the two matrices of all possibilities using the ndgrid
function:
function spp = gridi(M,n)
[Mx,nx] = ndgrid(M,1:n);
spp = sum(Mx==nx);
end
then we compare them and sum over columns, to get the final result.
Benchmarking
I have done a little test to find the fastest method from all mentioned above, I defined n = 500
for all trails. For some (especially the naive for
) there is a great impact of n
on the time of execution, but this is not the issue here since we want to test it for a given n
.
We can notice several things:
- Interestingly, there is a shift in the fastest method. For arrays smaller than 214
accumarray
is the fastest. For arrays larger than 214histcounts
is the fastest. - As expected the naive
for
loops, in both versions are the slowest, but for arrays smaller than 28 the "unique & for" option is slower.ndgrid
become the slowest in arrays bigger than 211, probably because of the need to store very large matrices in memory. - There is some irregularity in the way
tabulate
works on arrays in size smaller than 29. This result was consistent (with some variation in the pattern) in all the trials I conducted.
(the bsxfun
and ndgrid
curves are truncated because it makes my computer stuck in higher values, and the trend is quite clear already)
Also, notice that the y-axis is in log10, so a decrease in unit (like for arrays in size 219, between accumarray
and histcounts
) means a 10-times faster operation.
I'll be glad to hear in the comments for improvements to this test, and if you have another, conceptually different method, you are most welcome to suggest it as an answer.
The code
Here are all the functions wrapped in a timing function:
function out = timing_hist(N,n)
M = randi([0 n],N,1);
func_times = {'for','unique & for','tabulate','histcounts','accumarray','bsxfun','ndgrid';
timeit(@() loop(M,n)),...
timeit(@() uloop(M,n)),...
timeit(@() tabi(M)),...
timeit(@() histci(M,n)),...
timeit(@() accumi(M)),...
timeit(@() bsxi(M,n)),...
timeit(@() gridi(M,n))};
out = cell2mat(func_times(2,:));
end
function spp = loop(M,n)
spp = zeros(n,1);
for k = 1:size(spp,1);
spp(k) = sum(M==k);
end
end
function spp = uloop(M,n)
u = unique(M);
spp = zeros(n,1);
for k = u(u>0).';
spp(k) = sum(M==k);
end
end
function tab = tabi(M)
tab = tabulate(M);
if tab(1)==0
tab(1,:) = [];
end
end
function spp = histci(M,n)
spp = histcounts(M,1:n+1);
end
function spp = accumi(M)
spp = accumarray(M(M>0),1);
end
function spp = bsxi(M,n)
spp = bsxfun(@eq,M,1:n);
spp = sum(spp,1);
end
function spp = gridi(M,n)
[Mx,nx] = ndgrid(M,1:n);
spp = sum(Mx==nx);
end
And here is the script to run this code and produce the graph:
N = 25; % it is not recommended to run this with N>19 for the `bsxfun` and `ndgrid` functions.
func_times = zeros(N,5);
for n = 1:N
func_times(n,:) = timing_hist(2^n,500);
end
% plotting:
hold on
mark = 'xo*^dsp';
for k = 1:size(func_times,2)
plot(1:size(func_times,1),log10(func_times(:,k).*1000),['-' mark(k)],...
'MarkerEdgeColor','k','LineWidth',1.5);
end
hold off
xlabel('Log_2(Array size)','FontSize',16)
ylabel('Log_{10}(Execution time) (ms)','FontSize',16)
legend({'for','unique & for','tabulate','histcounts','accumarray','bsxfun','ndgrid'},...
'Location','NorthWest','FontSize',14)
grid on
1The reason for this weird name comes from my field, Ecology. My models are a cellular-automata, that typically simulate individual organisms in a virtual space (the M
above). The individuals are of different species (hence spp
) and all together form what is called "ecological community". The "state" of the community is given by the number of individuals from each species, which is the spp
vector in this answer. In this models, we first define a species pool (X
above) for the individuals to be drawn from, and the community state take into account all species in the species pool, not only those present in M
We know that that the input vector always contains integers, so why not use this to "squeeze" a bit more performance out of the algorithm?
I've been experimenting with some optimizations of the the two best binning methods suggested by the OP, and this is what I came up with:
- The number of unique values (
X
in the question, orn
in the example) should be explicitly converted to an (unsigned) integer type. - It's faster to compute an extra bin and then discard it, than to "only process" valid values (see the
accumi_new
function below).
This function takes about 30sec to run on my machine. I'm using MATLAB R2016a.
function q38941694
datestr(now)
N = 25;
func_times = zeros(N,4);
for n = 1:N
func_times(n,:) = timing_hist(2^n,500);
end
% Plotting:
figure('Position',[572 362 758 608]);
hP = plot(1:n,log10(func_times.*1000),'-o','MarkerEdgeColor','k','LineWidth',2);
xlabel('Log_2(Array size)'); ylabel('Log_{10}(Execution time) (ms)')
legend({'histcounts (double)','histcounts (uint)','accumarray (old)',...
'accumarray (new)'},'FontSize',12,'Location','NorthWest')
grid on; grid minor;
set(hP([2,4]),'Marker','s'); set(gca,'Fontsize',16);
datestr(now)
end
function out = timing_hist(N,n)
% Convert n into an appropriate integer class:
if n < intmax('uint8')
classname = 'uint8';
n = uint8(n);
elseif n < intmax('uint16')
classname = 'uint16';
n = uint16(n);
elseif n < intmax('uint32')
classname = 'uint32';
n = uint32(n);
else % n < intmax('uint64')
classname = 'uint64';
n = uint64(n);
end
% Generate an input:
M = randi([0 n],N,1,classname);
% Time different options:
warning off 'MATLAB:timeit:HighOverhead'
func_times = {'histcounts (double)','histcounts (uint)','accumarray (old)',...
'accumarray (new)';
timeit(@() histci(double(M),double(n))),...
timeit(@() histci(M,n)),...
timeit(@() accumi(M)),...
timeit(@() accumi_new(M))
};
out = cell2mat(func_times(2,:));
end
function spp = histci(M,n)
spp = histcounts(M,1:n+1);
end
function spp = accumi(M)
spp = accumarray(M(M>0),1);
end
function spp = accumi_new(M)
spp = accumarray(M+1,1);
spp = spp(2:end);
end
来源:https://stackoverflow.com/questions/38941694/what-is-the-fastest-way-to-count-elements-in-an-array