Only do the c no need of doing a and b do that c part 270,405 and 315
Solution;
Let us find the HCF of 270 and 315
Using Euclid's division Algorithm
315 = 270 × 1 + 45
Now, 270 = 45 × 6 + 0
Since, remainder is 0, so HCF(315,270) = 45
Let us find the HCF of 45 and 405.
405 = 45 × 9 + 0
Since, remainder is 0, so HCF = 45
Hence, HCF(315,270,405) = 45
Let us find the HCF of 270 and 315
Using Euclid's division Algorithm
315 = 270 × 1 + 45
Now, 270 = 45 × 6 + 0
Since, remainder is 0, so HCF(315,270) = 45
Let us find the HCF of 45 and 405.
405 = 45 × 9 + 0
Since, remainder is 0, so HCF = 45
Hence, HCF(315,270,405) = 45