>> m1{1,1} = [0.34463,0.3276,0.3615,0.3446,0.3559,0.3389,0.3389,0.3446];
>> m1{1,2} = [0.36723,0.3333,0.3615,0.3615,0.3446,0.3559,0.3163,0.3333];
>> m1{2,1} = [0.3390];
>> m1{2,2} = 5:9;
An efficient method is to use min once:
>> [val,idx] = min([m1{:}]);
>> len = [0;cumsum(cellfun('length',m1(:)))];
>> idc = find(len>=idx,1,'first')-1; % cell index
>> idv = idx-len(idc); % vector index
The minimum is thus:
>> val
val = 0.31630
and the minimum can be obtained using those indices:
>> m1{idc}(idv)
ans = 0.31630
You can get the cell array row and column indices by using ind2sub:
>> [row,col] = ind2sub(size(m1),idc)
row = 1
col = 2
