tuat1.dvi

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1 ( 1 ) tutimura/ ( 1 ) 1 / 58

2 C ( 1 ) 2 / 58

3 T E X ptetex3, ptexlive pt E X UTF-8 xdvi-jp 3 ( 1 ) 3 / 58

4 ( 1 ) 4 / 58

5 C,... ( 1 ) 5 / 58

6 6/23( ) 7/7( ) 7/21( ) ( 1 ) 6 / 58

7 C C C C C ( 1 ) 7 / 58

8 C BASIC, COBOL, Pascal, FORTRAN 1972 D. M. Ritchie B. W. Kernighan AT&T C++, Java, C# ( 1 ) 8 / 58

9 C OS ( 1 ) 9 / 58

10 C K&R (1978 ) ANSI C (C89, 1989 ), void, enum C99 (1999 ),, long long,,, 1 (//) C11 (2011 ), gets gets s C99 (K&R C99 ) ( 1 ) 10 / 58

11 1 B.W. Kernighan, R. Pike,,, C/C++/Java 2 C ANSI 2 B.W. Kernighan, D.M. Ritchie,,, ( 1 ) 11 / 58

12 3 C,, scanf() 4 C,, C,, ( 1 ) 12 / 58

13 C (1), (2) (1) (2) 1 (2) 2 (3), (4) (5) (5 ) ( 1 ) 13 / 58

14 (1), (2) (1) Hello, world! (2) Hello, world!? 1 int? double? ( 1 ) 14 / 58

15 (1) #include <stdio.h> int main(void) { printf("hello,world!\n"); return 0; ( 1 ) 15 / 58

16 (2) 1 #include <stdio.h> #include <stdlib.h> int main(int argc, char *argv[]) { int i, num; num = atoi(argv[1]); for (i=0; i<num; i++) { printf("hello,world!\n"); return EXIT_SUCCESS; ( 1 ) 16 / 58

17 (2) 2 #include <stdio.h> #include <stdlib.h> int main(int argc, char *argv[]) { int i, num; scanf("%d", &num); for (i=0; i<num; i++) { printf("hello,world!\n"); return EXIT_SUCCESS; ( 1 ) 17 / 58

18 (3), (4) (3) 2? 1 int? double? (4)? (4 ) 3?? ( 1 ) 18 / 58

19 (5) (5) 2 2? 1 ( 1 ) 19 / 58

20 (5 ) (5 ) 5 2 (6) 2 1, 10, 100, 1000??? ( 1 ) 20 / 58

21 C (7) (8) (9) ( 1 ) 21 / 58

22 (yes/no, true/false) 2 bool, boolean, 2, TRUE FALSE C ANSI C89 int #define FALSE 0 C99 #include <bool.h> bool, true, false ( 1 ) 22 / 58

23 if/while TRUE FALSE TRUE FALSE flag is_prime,has_next,visited #include <ctype.h> if (isalpha(a)) printf("%c is an alphabet.\n", a); if (isdigit(a)) printf("%c is a number.\n", a); if (!isdigit(a)) printf("%c is not a number.\n", a); ( 1 ) 23 / 58

24 (7) (7) isupper(),islower() int main(void) { int c; while ((c=getchar())!= EOF) {... return EXIT_SUCCESS; Cygwin [Enter] [CTRL] [D] ( 1 ) 24 / 58

25 (8) (8) isupper(),islower() (8 ) TRUE ( 1 ) 25 / 58

26 (9) (9) (9 ) (9 ) ( 1 ) 26 / 58

27 C (10) (10) 1 (10) 2 (10) 3 (10 ), (11) (11) (12)(12 ), (12)(12 ) (12)(12 ) (13), (13) (14), ( 1 ) 27 / 58

28 ( 1 ) 28 / 58

29 (10) (10) , 3, 4 ( 1 ) 29 / 58

30 (10) 1 int main(void) { int i, j, is_prime; for (i=2; i<100; i++) { is_prime = TRUE; for (j=2; j<i; j++) { if (i % j == 0) { is_prime = FALSE; break; if (is_prime) printf("%d\n", i); return EXIT_SUCCESS; ( 1 ) 30 / 58

31 (10) 2 int main(void) { int i, j, is_prime; for (i=2; i<100; i++) { is_prime = TRUE; for (j=2; j<i && is_prime; j++) { if (i % j == 0) { is_prime = FALSE; if (is_prime) printf("%d\n", i); return EXIT_SUCCESS; ( 1 ) 31 / 58

32 (10) 3 int is_prime(int n) { int i; for (i=2; i<n; i++) { if (n % i == 0) return FALSE; return TRUE; int main(void) { for (int i=2; i<100; i++) { // C99 if (is_prime(i)) printf("%d\n", i); return EXIT_SUCCESS; ( 1 ) 32 / 58

33 Structured Programming (1967) Go to statement considered harmful (1968) goto ( 1 ) 33 / 58

34 1. break 1 goto (?) return ( 1 ) 34 / 58

35 (10 ), (10 ) int main(int argc, char *argv[]) { int num; num = atoi(argv[1]); if (is_prime(num)) printf("%d is prime.\n", num); else printf("%d is not prime.\n", num); return EXIT_SUCCESS; ( 1 ) 35 / 58

36 (11) (11) ( ) (11 ) 1000 static or malloc() ( 1 ) 36 / 58

37 (11) int main(void) { int i, j, is_prime[100]; for (i=2; i<100; i++) is_prime[i] = TRUE; for (i=2; i<100; i++) { if (is_prime[i]){ printf("%d\n",i); for (j=i*2; j<100; j+=i) is_prime[j] = FALSE; return EXIT_SUCCESS; ( 1 ) 37 / 58

38 (12)(12 ), (12) (12 ) 100 2? ( 1 ) 38 / 58

39 (12)(12 ) int is_prime_flag[100]; void prime_init(void){ int i, j; is_prime_flag[0] = is_prime_flag[1] = FALSE; for (i=2; i<100; i++) is_prime_flag[i] = TRUE; for (i=2; i<100; i++) { if (is_prime_flag[i]){ for (j=i*2; j<100; j+=i) { is_prime_flag[j] = FALSE; ( 1 ) 39 / 58

40 (12)(12 ) int is_prime(int i) { if (0 <= i && i < 100) return is_prime_flag[i]; printf("is_prime: out of range (%d)\n", i); exit(1); int main(void) { int i; prime_init(); for (i=2; i<=100/2; i++) { if (is_prime(i)&& is_prime(100-i)){ printf("100 = %d + %d\n", i, 100-i); return EXIT_SUCCESS; ( 1 ) 40 / 58

41 (13), (13) ( 1 ) 41 / 58

42 (13) int main(void) { int i; prime_init(); for (i=1; i<100; i++) { int p1 = is_prime(i); int p2 = is_prime2(i); if ((p1 &&!p2) (!p1 && p2)) { printf("error: i=%d, %d!= %d\n", i, p1, p2); return EXIT_SUCCESS; ( 1 ) 42 / 58

43 (14), (14) ( 1 ) 43 / 58

44 (14) #define PRIME_MAX 100 static int is_prime_flag[prime_max]; void prime_init(void){ int i, j; is_prime_flag[0] = is_prime_flag[1] = FALSE; for (i=2; i<prime_max; i++) is_prime_flag[i] = TRUE; for (i=2; i<prime_max; i++) { if (is_prime_flag[i]){ for (j=i*2; j<prime_max; j+=i) { is_prime_flag[j] = FALSE; ( 1 ) 44 / 58

45 (14) void sum_prime(int n) { int i; for (i=2; i<=n/2; i++) { if (is_prime(i)&& is_prime(n-i)){ printf("%d = %d + %d\n", n, i, n-i); int main(void) { prime_init(); sum_prime(100); sum_prime(98); return 0; ( 1 ) 45 / 58

46 C (20) (21), (22) (23) (24) (25),(25 ), (1) (2) ( 1 ) 46 / 58

47 (call by value) (call by reference) ( 1 ) 47 / 58

48 y m d ( 1 ) 48 / 58

49 ( 1 ) 49 / 58

50 (20) int is_leap_year(int year) 2001, 2002, 2003, 2005, 2100, 2200, , 2004, 2008,... ( 1 ) 50 / 58

51 (21), (22) (21) int is_valid_date(int year, int month, int day) (22) int date_to_number(int year, int month, int day) date_to_number(1900,1,1) 1 ( 1 ) 51 / 58

52 (23) (23) (22) void number_to_date(int number, int *year, int *month, int *day) int main() { int year, month, day; number_to_date(12345,&year, &month, &day); printf("%d %d %d \n", year, month, day); return 0; ( 1 ) 52 / 58

53 1 void let_five(int *a) { *a = 5; void foo(void) { int i = 1; /* 1 */ let_five(&i); /* */ printf("%d\n",i); /* 5 */ 1 ( 1 ) 53 / 58

54 (24) date_to_number() number_to_date() yesterday() tomorrow() ( 1 ) 54 / 58

55 (25),(25 ), (25) int day_of_week(int year, int month, int day) 0=, 1=,..., 6= (25 ) $ cal June 2012 Su Mo Tu We Th Fr Sa ( 1 ) 55 / 58

56 int day_of_week(int year, int month, int day) { if (month < 3) { year--; month += 12; return (year + year / 4 - year / year / (13 * month + 8) / 5 + day) % 7; mktime(),localtime() ( 1 ) 56 / 58

57 (1) OS ( 1 ) 57 / 58

58 (2) (=1), (=2), (=3), (=4) 7/2( ), tutimura/tuat/ ( 1 ) 58 / 58

tuat2.dvi

tuat2.dvi ( 2 ) http://ist.ksc.kwansei.ac.jp/ tutimura/ 2012 7 7 ( 2 ) 1 / 54 (1) (2) (?) (1) (2) 2 ( 2 ) 2 / 54 1. 30 2. 2012 6 30 25 OS ( 2 ) 3 / 54 10 20 1993 1996 2000 2003 = 30 ( 2 ) 4 / 54 1 2 2 ( 2 ) 5 /