Advance Computer Architecture (CS501)
Total marks = 20
Deadline Date = 24-November-2015
Please carefully read the following instructions before attempting the assignment.
It should be clear that your assignment would not get any credit if:
1) You should consult recommended books to clarify your concepts as handouts are not sufficient.
2) You are supposed to submit your assignment in .doc or docx format. Any other formats like scan images, PDF, Zip, rar, bmp etc will not be accepted.
3) You are advised to upload your assignment at least two days before due date.
Assignment comprises of 20 Marks. Note that no assignment will be accepted after due date via email in any case (whether it is the case of load shedding or emergency electric failure or internet malfunctioning etc.). Hence, refrain from uploading assignment in the last hour of the deadline, and try to upload Solutions at least 02 days before the deadline to avoid inconvenience later on.
For any query please contact: CS501@vu.edu.pk
The objective of this assignment is:
You need to perform the comparison among 4address, 3address, 2address, 1address and 0address instruction formats with the help of code size and number of bytes accessed from memory. After that, find out the minimum code size and number of bytes memory accessed.
You are required to perform the above task with the help of following two steps:
a) First of all, calculate the code size and number of memory access for each 4address, 3address, 2address, 1address and 0address instruction formats separately from the following information:
b) At the last, perform the comparison among 4address, 3address, 2address, 1address and 0address instruction formats.
Note: Two parameters i.e. code size and numbers of bytes accessed from memory are used for comparison.
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tariq bhai mujhy to complate solution dy den plzzzzz
4address mai source 2 kon sa lyn gyn?
size of each source operand is 5
comparison mai just bta dyna hy ky kon sa instruction format bhetr hy? agr asa hy to wo count code size sy krna hy ya number of bytes access?
i m confused about 0-address because detail at page 24 and 26 are a little bit different. Where at page 24 0-address contains only single Op Code while at page 26 they accessed 10 bytes from memory (1 byte from instruction + 6 bytes from Source operand + 3 bytes for storing destination)
Plzzz some body explain it.
Bass comparson kaarna hai
ya koi program b bnana hai
Yeah,im also confused in it,but i think today seniors are also down,no help till now..
Op code = 2 bytes Destination = 5 bytes Source1=5 bytes Source2=5 bytes Next address=2 bytes