※ 引述《just1016 (誰陪我玩五子棋?)》之銘言： : ※ 引述《aweila75 (David)》之銘言： : : 2.A multiplattered hard disk is divided into 40 sectors and 400 cylinders. : : There are four platter surfaces. The total capacity of the disk is 128MB. : : A cluster consists of 4 sectors. The disk is rotating at a rate of 5400rpm. : : The disk has an average seek time of 12 msec. : : (a) what is the capacity of a cluster for this disk? : : (b) what is the average access time before starting data transfer? : : (c) what is the maximal disk transfer rate in bytes per second? : : 想了很久，算不出來XD，高手請幫忙，感謝您。 : (a)4*400*40 = 64000 sectors : 一sector的capacity：128MB / 64000 = 2000 bytes : 一cluster的capacity：2000*4 = 8000 bytes : (b)（60*1000ms）/ 5400 = 11.11ms : 11.11ms / 2＝5.55ms : 12ms＋5.55ms = 17.55ms : (c)迴轉一圈所須時間：（60*1000ms）/ 5400 = 11.11ms = 0.01111second : 資料量:2000 bytes*40 = 80000 bytes ^^^^^^^^^^^^^^^ 為什麼資料量要用sector*40 ，又為什麼資料量是這樣算來的？ 看不太懂，麻煩高手解釋一下，謝謝。 : maximal disk transfer rate： : 80000 / 0.01111 = 7200720 bytes/second -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 218.162.129.136