Let's take a look at a sample histogram. I'm using rng default to create the sample data so the histogram created when you run this code exactly matches the one I create by running the code here in Answers.
rng default
x = randn(1, 100);
h = histogram(x)
yline(32, 'r:')
The Values properties are of particular interest. These are the actual counts (in this case, since the Normalization property is set to 'count'). How many bins contain more than 5 values?
nnz(h.Values > 5)
Which bin is the highest and what are the edges of that bin?
[maxHeight, maxLocation] = max(h.Values)
% Value(n) counts data falling between BinEdges(n) and BinEdges(n+1)
edgesOfMaxBin = h.BinEdges(maxLocation + [0, 1])
You can confirm by looking at the picture that this is correct. The red dotted line is at y = 32 and the top of the bin representing [0, 1) exactly touches that dotted line.
If you don't want the picture you can do these same types of operations on the outputs of histcounts. Some of the properties of the histogram object aren't returned by histcounts and so if you want them you'd need to compute them.
[theValues, theEdges] = histcounts(x)
theBinWidth = diff(theEdges) % Not returned by histcounts, but easy to compute
theNumBins = numel(theValues) % Ditto
Instead of h.Values use theValues and instead of h.BinEdges use theEdges.
