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The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.
- a)1.26
- b)1.68
- c)2.46
- d)4.5
Correct answer is option 'B'. Can you explain this answer?
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The memory access time is 1 nanosecond for a read operation with a hit...
The question is to find the time taken for, "100 fetch operation and 60 operand red operations and 40 memory operand write operations"/"total number of instructions".
Total number of instructions= 100+60+40 =200 Time taken for 100 fetch operations(fetch =read) = 100*((0.9*1)+(0.1*5)) // 1 corresponds to time taken for read // when there is cache hit = 140 ns //0.9 is cache hit rate
Time taken for 60 read operations = 60*((0.9*1)+(0.1*5)) = 84ns
Time taken for 40 write operations = 40*((0.9*2)+(0.1*10)) = 112 ns
// Here 2 and 10 the time taken for write when there is cache
// hit and no cahce hit respectively So,the total time taken for 200 operations is = 140+84+112 = 336ns
Average time taken = time taken per operation = 336/200 = 1.68 ns
Total number of instructions= 100+60+40 =200 Time taken for 100 fetch operations(fetch =read) = 100*((0.9*1)+(0.1*5)) // 1 corresponds to time taken for read // when there is cache hit = 140 ns //0.9 is cache hit rate
Time taken for 60 read operations = 60*((0.9*1)+(0.1*5)) = 84ns
Time taken for 40 write operations = 40*((0.9*2)+(0.1*10)) = 112 ns
// Here 2 and 10 the time taken for write when there is cache
// hit and no cahce hit respectively So,the total time taken for 200 operations is = 140+84+112 = 336ns
Average time taken = time taken per operation = 336/200 = 1.68 ns
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The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer?
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The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer? for Computer Science Engineering (CSE) 2024 is part of Computer Science Engineering (CSE) preparation. The Question and answers have been prepared according to the Computer Science Engineering (CSE) exam syllabus. Information about The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer? covers all topics & solutions for Computer Science Engineering (CSE) 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer?.
The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer? for Computer Science Engineering (CSE) 2024 is part of Computer Science Engineering (CSE) preparation. The Question and answers have been prepared according to the Computer Science Engineering (CSE) exam syllabus. Information about The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer? covers all topics & solutions for Computer Science Engineering (CSE) 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for The memory access time is 1 nanosecond for a read operation with a hit in cache, 5 nanoseconds for a read operation with a miss in cache, 2 nanoseconds for a write operation with a hit in cache and 10 nanoseconds for a write operation with a miss in cache. Execution of a sequence of instructions involves 100 instruction fetch operations, 60 memory operand read operations and 40 memory operand write operations. The cache hit-ratio is 0.9. The average memory access time (in nanoseconds) in executing the sequence of instructions is __________.a)1.26b)1.68c)2.46d)4.5Correct answer is option 'B'. Can you explain this answer?.
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