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The arrangement of a minimum number of N flip-flops can be used to construct any counter with a modulus given by the equation

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UPSC ESE (Prelims) Electronics and Telecommunication Engineering 19 Feb 2023 Official Paper
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  1. 2- 1 ≤ modulus ≤ 2N-1
  2. 2N-1+1 ≤ modulus ≤ 2N
  3. 2+ 1 ≤ modulus < 2N+1
  4. 2N+1 + 1 ≤ modulus ≤ 2N

Answer (Detailed Solution Below)

Option 2 : 2N-1+1 ≤ modulus ≤ 2N
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The modulus of a counter is determined by the number of flip-flop (N) in its circuit. Each flip-flop contributes a binary digit to the counting sequence. The total number of possible states for the counter is given by 2N

N = 4

\(B\cdot 33 \le Mod \le 15 \)

\(D\cdot 33\le Mod\le 16\)

highest 2N

lowest 2N - (2N-1) +1

2N(1-2-1) + 1

= 2N-1 + 1

Here, option 2 is correct.

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