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authorzlg <zlg@zlg.space>2013-09-21 04:39:09 -0500
committerzlg <zlg@zlg.space>2013-09-21 04:39:09 -0500
commitcbfac3701fa8b7a1e3233f9fa437d6e3347710c7 (patch)
treee426628cc132da026fcba5c291c0a5f7fb124c42 /ch5
parentSolve Exercise 5-8: Checking for errors (diff)
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Solve Exercise 5-9: day of year functions with pointers
This exercise was fun and taught me a bit about initializing arrays and working with pointers.
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diff --git a/ch5/5-09_yearday-pointers.c b/ch5/5-09_yearday-pointers.c
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+#include <stdio.h>
+
+/* The C Programming Language: 2nd Edition
+ *
+ * Exercise 5-9: Rewrite the routines day_of_year() and month_day() with
+ * pointers instead of indexing.
+ */
+
+static char daytab[] = {
+ 0, 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
+};
+
+int day_of_year(int year, int month, int day);
+void month_day(int year, int yearday, int *pmonth, int *pday);
+
+int main() {
+ int i, m, d, doy;
+ int tvals[][4] = {
+ { 2012, 2, 29, 60 },
+ { 2013, 3, 1, 60 },
+ { 1985, 10, 22, 295 }
+ };
+ m = d = 0;
+ doy = 0;
+
+ // It said nothing about avoiding indexing in main()!
+ for (i = 0; i < 3; i++) {
+ doy = day_of_year(tvals[i][0], tvals[i][1], tvals[i][2]);
+ month_day(tvals[i][0], doy, &m, &d);
+ if (doy > 0 && m != 0 && d != 0) {
+ printf("%4d-%02d-%02d is day %3d of the year. ", tvals[i][0], tvals[i][1], tvals[i][2], doy);
+ printf("Day %3d of %4d is month %2d and day %3d.\n", doy, tvals[i][0], m, d);
+ } else {
+ printf("Out of range\n");
+ }
+ }
+ return 0;
+}
+
+int day_of_year(int year, int month, int day) {
+ int i, leap;
+ leap = (year % 4 == 0 && year % 100 != 0) || year % 400 == 0;
+
+ if (month < 1 || month > 12) {
+ return -1;
+ }
+ // Slightly complicated pointer math is needed to account for leap years
+ if (day > *(daytab + month) + ((month == 2) ? leap : 0) || day < 1) {
+ return -1;
+ }
+ for (i = 1; i < month; i++) {
+ // here, too
+ day += *(daytab + i) + ((i ==2) ? leap : 0);
+ }
+ return day;
+}
+
+void month_day(int year, int yearday, int *pmonth, int *pday) {
+ int i, leap;
+ leap = (year % 4 == 0 && year % 100 != 0) || year % 400 == 0;
+
+ if (yearday > 365 + leap || yearday < 1) {
+ *pmonth = 0;
+ *pday = 0;
+ return;
+ }
+ // ...and here. :P
+ for (i = 1; yearday > *(daytab + i) + ((i == 2) ? leap : 0); i++) {
+ yearday -= *(daytab + i) + ((i == 2) ? leap : 0);
+ }
+ *pmonth = i;
+ *pday = yearday;
+}
+