Thanks! I've replaced the images with the pdf.
Isn’t question 10 B since it’s (4c2+4c3)(10C1*9C1)
(10C1*9C1/2)(4C2+2*4C3)
That counts codes like 2211 twice?
why would you divide by 2? Isn’t 4455 differ to 5544
I got A for question 10 (10C2)(4!/3! + 4!/2!2! + 4!/3!)
Isn’t it counting 2211 and then 1122?
No, what you're saying is you're either choosing any two of the 4 possible spots for one digit (e.g. you're choosing the last two digits to be 1 if your initial 2 digits are 2, 1) and iterating over all possible ordered pairs of numbers, meaning you also count the time you choose the first two digits to be 2, which is identical to the previous case. As a result, you double count these numbers, resulting in too many numbers. I have verified with a Python program and it has also given 630 as the answer:
count = 0
numbers = [str(a) + str(b) + str(c) + str(d) for a in range(0, 10) for b in range(0, 10) for c in range(0, 10) for d in range(0, 10)]
for x in numbers:
if len(set(list(x))) == 2:
count += 1
print(count)Probs 97
Wouldn’t u need 10P2 coz these two numbers can swap their positions
No because that swapping is taken into account in 2^4 - 2
The question said without calculus so I don't think stationary point is important.
Oh right, that makes sense. I'll edit that.
You don't need calculus to work that out. But I didn't notice that as well
