In reply to @katebook
@katebook yes, no. of factors is (a_1+1)*(a_2+1)*...*(a_k+1). It's called the tau function, or the divisor function: planetmath.org/TauFunction.ht…
In reply to @katebook
@katebook yes, no. of factors is (a_1+1)*(a_2+1)*...*(a_k+1). It's called the tau function, or the divisor function: planetmath.org/TauFunction.ht…