MARK SCHEME for the October/November 2011 question paper for the guidance
of teachers. 0580 MATHEMATICS. 0580/ ... IGCSE – October/November 2011.
UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS International General Certificate of Secondary Education
MARK SCHEME for the October/November 2011 question paper for the guidance of teachers
0580 MATHEMATICS 0580/21
Paper 2 (Extended), maximum raw mark 70
This mark scheme is published as an aid to teachers and candidates, to indicate the requirements of the examination. It shows the basis on which Examiners were instructed to award marks. It does not indicate the details of the discussions that took place at an Examiners’ meeting before marking began, which would have considered the acceptability of alternative answers. Mark schemes must be read in conjunction with the question papers and the report on the examination.
• Cambridge will not enter into discussions or correspondence in connection with these mark schemes.
Cambridge is publishing the mark schemes for the October/November 2011 question papers for most IGCSE, GCE Advanced Level and Advanced Subsidiary Level syllabuses and some Ordinary Level syllabuses.
Page 2
Mark Scheme: Teachers’ version IGCSE – October/November 2011
Syllabus 0580
Paper 21
Abbreviations cao correct answer only cso correct solution only dep dependent ft follow through after error isw ignore subsequent working oe or equivalent SC Special Case www without wrong working Qu.
Answers
1
7.5(0) cao
2
Mark
Part Marks
258.75 4.6
2
M1 for
5.92 × 108
2
M1 figs 592 on answer line or M1 296 × 106 oe in working
3
cos38 sin38 sin158 cos158
2
M1 correct decimals seen 0.3(74..) –0.9(271..) 0.7(88..) 0.6(15..)
4
Answer given
3
M1
19 6 15 M1 or × seen 15 15 6
E1 = 5
(a) 7853 to 7855 or 7850 or 7860 www (b) 0.7853 to 0.7855 or 0.785 or 0.786
2 1ft
6
135 cao
3
7
(a) (y =) 80
1
(b) (z =) 40
1
(c) (t =) 10
1ft
19 1 =3 6 6
M1 for π × 502 Their (a) ÷ 10 000 evaluated M1 for 720 or (6 – 2) × 180 oe seen in working and M1 for equation 180 + 4x = their 720 or M1 for (360 − 180) ÷ 4 (= 45) oe seen in working and M1 dep for 180 − their 45
Follow through 90 − their y or 50 − their z M1 V = (k d ) A1 k = 20.25
8
2.81(25)
3
M1 V = k d or A1 k = 4.5
9
(a) Correct perpendicular bisector with arcs
2
B1 correct line B1 correct construction arcs
(b) 60°
1
10
0.38 or
19 50
4
B1 0.8, 0.6 or 0.55 then M1 0.45 × their 0.6 M1 0.2 × their 0.55 or M2 1 – (0.45 × 0.4 + 0.55 × their 0.8)