Follow Us :

File and Input/Output System Q.25

0. A program P reads and processes 1000 consecutive records from a sequential file F stored on device D without using any file system facilities. Given the following:
(i) Size of each record = 3200 bytes.
(ii) Access time of D = 10 m secs.
(iii) Data transfer rate of D = 800 x 103 bytes/sec
(iv) CPU time to process each record = 3 m secs.
What is the elapsed time of P if F contains unblocked records and P does not use buffering?

  • Option : C
  • Explanation : In case P uses one 'Read ahead' buffer the processing and transferring of records can be overlapped.
    Elapsed time =(Access time+ Transfer time + Processing Time )x (Number of records)
    Here Access time = 10ms (given)
    Transfer time = (800 x 103 )/3200 sec = 0.004 sec = 4 ms
    Therefore Elapsed Time =  (10 + 4 +3 ) * 1000 m sec = 17 sec.
    Here processing time is less than transfer time.
Cancel reply

Your email address will not be published. Required fields are marked *


Cancel reply

Your email address will not be published. Required fields are marked *