You could do something like this and leave it running overnight :| Obviously you'd define your histogram edges to be relevant to the vectors you were using. The disp statement is purely there as a primitive progress bar
n = 70000;
x = rand(300,n);
edges = linspace(0, 10, 100);
edges2 = edges.^2;
h = zeros(1, numel(edges));
for i = 1:n-1;
d2 = sum(bsxfun(@minus, x(:, i+1:n), x(:, i)).^2);
h = h + histc(d2, edges2);
disp(100*i/n)
end
And then to display it,
bar(edges, h, 'histc')
EDIT Adjusted to reflect Walter Roberson's comment below to eliminate the use of sqrt
