100% satisfaction guarantee Immediately available after payment Both online and in PDF No strings attached
logo-home
Previously searched by you
Previously searched by you
logo
Solution Manual For Computer Organization and Design MIPS Edition The Hardware Software Interface 6th Edition By David Patterson, John Hennessy (All Chapters, 100% Original Verified, A+ Grade) CA$22.47   Add to cart
Quickly navigate to
Preview
  2.  
  3. Computer Organization And Design MIPS Edition The
  4.  
  5. Computer Organization and Design MIPS Edition The

Exam (elaborations)

Solution Manual For Computer Organization and Design MIPS Edition The Hardware Software Interface 6th Edition By David Patterson, John Hennessy (All Chapters, 100% Original Verified, A+ Grade)
 611 views  5 purchases
  • Course
  • Computer Organization and Design MIPS Edition The
  • Institution
  • Computer Organization And Design MIPS Edition The

Solution Manual For Computer Organization and Design MIPS Edition The Hardware Software Interface 6th Edition By David Patterson, John Hennessy (All Chapters, 100% Original Verified, A+ Grade) Solution Manual For Computer Organization and Design MIPS Edition The Hardware Software Interface 6th...

[Show more]

Preview 4 out of 96  pages

Document information

  • August 13, 2023
  • 96
  • 2023/2024
  • Exam (elaborations)
  • Questions & answers

Subjects

  • free solutions manual answer key download
  • test bank download free test bank download
  • test bank exam bank mcqs solutions manual

Written for

  • Computer Organization and Design MIPS Edition The
  • Computer Organization and Design MIPS Edition The

Seller

avatar-seller
tutorsection

Reviews received

Content preview

Chapter 1 Solutions S-3To protect the rights of the author(s) and publisher we inform you that this PDF is an uncorrected proof for internal business use only by the author(s), editor(s), reviewer(s), Elsevier and typesetter MPS. It is not allowed to publish this proof online or in print. Th is proof copy is the copyright property of the publisher and is confi dential until formal publication.
1.1 Personal computer: Computer that emphasizes delivery of good performance to a single user at low cost and usually executes third-party soft ware.
Server: Computer used for large workloads and usually accessed via a network.
Embedded computer: Computer designed to run one application or one set of related applications and integrated into a single system.
1.2 a. Performance via Pipelining
b. Dependability via Redundancy
c. Performance via Prediction
d. Make the Common Case Fast
e. Hierarchy of Memories
f. Performance via Parallelism
g. Use Abstraction to Simplify Design
1.3 Th e program is compiled into an assembly language program, which is itself assembled into a machine language program.
1.4 a. 1280 × 1024 pixels = 1,310,720 pixels => 1,310,720 × 3 = 3,932,160 bytes/
frame.
b. 3,932,160 bytes × (8 bits/byte) /100E6 bits/second = 0.31 seconds
1.5 Desktop
Processor Year TechMax. Clock Speed (GHz)Integer IPC/
core CoresMax. DRAM Bandwidth (GB/s)SP Floating Point (Gfl op/s) MiB
Westmere i7-6202010 32 3.33 4 2 17.1 107 4
Ivy Bridge i7-3770K2013 22 3.90 6 4 25.6 250 8
Broadwell i7-6700K2015 14 4.20 8 4 34.1 269 8
Kaby Lake i7-7700K2017 14 4.50 8 4 38.4 288 8
Coffee Lake i7-9700K2019 14 4.90 8 8 42.7 627 12
Imp./year 20% 4% 7% 15% 10% 19% 12%
Doubles every 4 years 18 years 10 years 5 years 7 years 4 years 6 years
solution 1123.indd 3solution 1123.indd 3 22-09-2021 20:52:2222-09-2021 20:52:22Computer Organization and Design MIPS Edition The Hardware Software Interface, 6e David Patterson, John
Hennessy
Solution Manual all Chapters S-4 Chapter 1 SolutionsTo protect the rights of the author(s) and publisher we inform you that this PDF is an uncorrected proof for internal business use only by the author(s), editor(s), reviewer(s), Elsevier and typesetter MPS. It is not allowed to publish this proof online or in print. Th is proof copy is the copyright property of the publisher and is confi dential until formal publication.
1.6 a. performance of P1 (instructions/sec) = 3 × 109/1.5 = 2 × 109
performance of P2 (instructions/sec) = 2.5 × 109/1.0 = 2.5 × 109
performance of P3 (instructions/sec) = 4 × 109/2.2 = 1.8 × 109
b. cycles(P1) = 10 × 3 × 109 = 30 × 109 s
cycles(P2) = 10 × 2.5 × 109 = 25 × 109 s
cycles(P3) = 10 × 4 × 109 = 40 × 109 s
c. No. instructions(P1) = 30 × 109/1.5 = 20 × 109
No. instructions(P2) = 25 × 109/1 = 25 × 109
No. instructions(P3) = 40 × 109/2.2 = 18.18 × 109
CPInew = CPIold × 1.2, then CPI(P1) = 1.8, CPI(P2) = 1.2, CPI(P3) = 2.6
f = No. instr. × CPI/time, then
f(P1) = 20 × 109 × 1.8/7 = 5.14 GHz
f(P2) = 25 × 109 × 1.2/7 = 4.28 GHz
f(P3) = 18.18 × 109 × 2.6/7 = 6.75 GHz
1.7 a. Class A: 105 instr. Class B: 2 × 105 instr. Class C: 5 × 105 instr. Class D: 2 × 105 instr.
Time = No. instr. × CPI/clock rate
Total time P1 = (105 + 2 × 105 × 2 + 5 × 105 × 3 + 2 × 105 × 3)/(2.5 × 109) = 10.4 × 10−4 s
Total time P2 = (105 × 2 + 2 × 105 × 2 + 5 × 105 × 2 + 2 × 105 × 2)/(3 × 109) = 6.66 × 10−4 s
CPI(P1) = 10.4 × 10−4 × 2.5 × 109/106 = 2.6
CPI(P2) = 6.66 × 10−4 × 3 × 109/106 = 2.0
b. clock cycles(P1) = 105 × 1+ 2 × 105 × 2 + 5 × 105 × 3 + 2 × 105 × 3 = 26 × 105
clock cycles(P2) = 105 × 2+ 2 × 105 × 2 + 5 × 105 × 2 + 2 × 105 × 2 = 20 × 105
1.8 a. CPI = Texec × f/No. instr.
Compiler A CPI = 1.1
Compiler B CPI = 1.25
solution 1123.indd 4 solution 1123.indd 4 22-09-2021 20:52:22 22-09-2021 20:52:22 Chapter 1 Solutions S-5To protect the rights of the author(s) and publisher we inform you that this PDF is an uncorrected proof for internal business use only by the author(s), editor(s), reviewer(s), Elsevier and typesetter MPS. It is not allowed to publish this proof online or in print. Th is proof copy is the copyright property of the publisher and is confi dential until formal publication.
b. fB/fA = (No. instr.(B) × CPI(B))/(No. instr.(A) × CPI(A)) = 1.37
c. TA/Tnew = 1.67
TB/Tnew = 2.27
1.9 1.9.1 C = 2 × DP/(V
2 × F)
Pentium 4: C = 3.2E–8F
Core i5 Ivy Bridge: C = 2.9E–8F
1.9.2 Pentium 4: 10/100 = 10%
Core i5 Ivy Bridge: 30/70 = 42.9%
1.9.3 (Snew + Dnew)/(Sold + Dold) = 0.90
Dnew = C × Vnew 2 × F
Sold = Vold × I
Snew = Vnew × I
Th erefore:
Vnew = [Dnew/(C × F)]1/2
Dnew = 0.90 × (Sold + Dold) − Snew
Snew = Vnew × (Sold/Vold)
Pentium 4:S
new = Vnew × (10/1.25) = Vnew × 8
Dnew = 0.90 × 100 − Vnew × 8 = 90 − Vnew × 8
Vnew = [(90 − Vnew × 8)/(3.2E8 × 3.6E9)]1/2
Vnew = 0.85 V
Core i5:S
new = Vnew × (30/0.9) = Vnew × 33.3
Dnew = 0.90 × 70 − Vnew × 33.3 = 63 − Vnew × 33.3
Vnew = [(63 − Vnew × 33.3)/(2.9E8 × 3.4E9)]1/2
Vnew = 0.64 V
solution 1123.indd 5 solution 1123.indd 5 22-09-2021 20:52:22 22-09-2021 20:52:22 S-6 Chapter 1 SolutionsTo protect the rights of the author(s) and publisher we inform you that this PDF is an uncorrected proof for internal business use only by the author(s), editor(s), reviewer(s), Elsevier and typesetter MPS. It is not allowed to publish this proof online or in print. Th is proof copy is the copyright property of the publisher and is confi dential until formal publication.
1.10 1.10.1
p # arith inst. # L/S inst. # branch inst. cycles ex. time speedup
1 2.56E9 1.28E9 2.56E8 1.92E10 9.60 1.00
2 1.83E9 9.14E8 2.56E8 1.41E10 7.04 1.364 9.14E8 4.57E8 2.56E8 7.68E9 3.84 2.508 4.57E8 2.29E8 2.56E8 4.48E9 2.24 4.29
1.10.2
p ex. time
1 41.02 29.34 14.68 7.33
1.10.3 3
1.11 1.11.1 die area15cm = wafer area/dies per wafer = π × 7. = 2.10 cm2
yield15cm = 1/(1 + (0.020 × 2.10/2))2 = 0.9593
die area20cm = wafer area/dies per wafer = π × 102/100 = 3.14 cm2
yield20cm = 1/(1 + (0.031 × 3.14/2))2 = 0.9093
1.11.2 cost/die15cm = 12/(84 × 0.9593) = 0.1489
cost/die20cm = 15/(100 × 0.9093) = 0.1650
1.11.3 die area15cm = wafer area/dies per wafer = π × 7.52/(84 × 1.1) = 1.91 cm2
yield15cm = 1/(1 + (0.020 × 1.15 × 1.91/2))2 = 0.9575
die area20cm = wafer area/dies per wafer = π × 102/(100 × 1.1) = 2.86 cm2
yield20cm = 1/(1 + (0.03 × 1.15 × 2.86/2))2 = 0.9082
1.11.4 defects per area0.92 = (1–y .5)/(y .5 × die_area/2) = (1 − 0.92.5)/
(0.92.5 × 2/2) = 0.043 defects/cm2
defects per area0.95 = (1–y .5)/(y .5 × die_area/2) = (1 − 0.95.5)/
(0.95.5 × 2/2) = 0.026 defects/cm2
1.12 1.12.1 CPI = clock rate × CPU time/instr. count
clock rate = 1/cycle time = 3 GHz
CPI(bzip2) = 3 × 109 × 750/(2389 × 109)= 0.94
solution 1123.indd 6 solution 1123.indd 6 22-09-2021 20:52:22 22-09-2021 20:52:22

The benefits of buying summaries with Stuvia:

Guaranteed quality through customer reviews

Guaranteed quality through customer reviews

Stuvia customers have reviewed more than 700,000 summaries. This how you know that you are buying the best documents.

Quick and easy check-out

Quick and easy check-out

You can quickly pay through credit card or Stuvia-credit for the summaries. There is no membership needed.

Focus on what matters

Focus on what matters

Your fellow students write the study notes themselves, which is why the documents are always reliable and up-to-date. This ensures you quickly get to the core!

Frequently asked questions

What do I get when I buy this document?

You get a PDF, available immediately after your purchase. The purchased document is accessible anytime, anywhere and indefinitely through your profile.

Satisfaction guarantee: how does it work?

Our satisfaction guarantee ensures that you always find a study document that suits you well. You fill out a form, and our customer service team takes care of the rest.

Who am I buying these notes from?

Stuvia is a marketplace, so you are not buying this document from us, but from seller tutorsection. Stuvia facilitates payment to the seller.

Will I be stuck with a subscription?

No, you only buy these notes for CA$22.47. You're not tied to anything after your purchase.

Can Stuvia be trusted?

4.6 stars on Google & Trustpilot (+1000 reviews)

75632 documents were sold in the last 30 days

Founded in 2010, the go-to place to buy study notes for 14 years now

Start selling
CA$22.47  5x  sold
  • (0)
  Add to cart