/* Arithmos: recaman * Compile: cc -std=c11 -O2 recaman.c -lm -o recaman * Run: ./recaman * Output: recaman.svg (open this file in a browser) * Optional output path: ./recaman my-image.svg * Edit the constants in draw() to explore another case. */ #include #include #include #include #include static FILE *nt_out; #define NT_PI 3.14159265358979323846 /* The small SVG writer keeps this program free of graphics dependencies. * Coordinates are pixels on a 1000 x 700 drawing surface. * t runs from 0 to 1 through mint, blue, rose, and gold. */ static inline void nt_color(double t, char hex[8]) { const double stops[4][3] = { {91,227,201}, {128,146,240}, {218,138,220}, {244,200,127} }; t = fmax(0.0, fmin(1.0,t)) * 3.0; int band = (int)fmin(2.0,floor(t)); double blend = t - band; int r[3]; for (int k=0;k<3;k++) r[k]=(int)lround(stops[band][k]*(1.0-blend)+stops[band+1][k]*blend); snprintf(hex,8,"#%02x%02x%02x",r[0],r[1],r[2]); } static inline void nt_line(double x,double y,double X,double Y,double t,double alpha,double width) { char color[8];nt_color(t,color); fprintf(nt_out,"\n",x,y,X,Y,color,alpha,width); } static inline void nt_dot(double x,double y,double r,double t,double alpha) { char color[8];nt_color(t,color); fprintf(nt_out,"\n",x,y,r,color,alpha); } static inline void nt_circle(double x,double y,double r,double t,double alpha,double width) { char color[8];nt_color(t,color); fprintf(nt_out,"\n",x,y,r,color,alpha,width); } static inline void nt_rect(double x,double y,double w,double h,double t,double alpha) { char color[8];nt_color(t,color); fprintf(nt_out,"\n",x,y,w,h,color,alpha); } static inline void nt_text(double x,double y,const char *text) { fprintf(nt_out,"",x,y); for (;*text;text++) { if (*text=='&') fputs("&",nt_out); else if (*text=='<') fputs("<",nt_out); else if (*text=='>') fputs(">",nt_out); else fputc(*text,nt_out); } fputs("\n",nt_out); } static inline int nt_gcd(int a,int b) {a=abs(a);b=abs(b);while(b){int r=a%b;a=b;b=r;}return a;} static inline int nt_prime(int n) {if(n<2)return 0;for(int d=2;d<=n/d;d++)if(n%d==0)return 0;return 1;} /* Recaman: subtract the step number if the result is positive and unseen; otherwise add it. Forward moves CAN repeat. Edit STEPS. */ static void draw(void) { enum { STEPS=160 };int a[STEPS+1];a[0]=0;int maximum=0; for(int n=1;n<=STEPS;++n) { int back=a[n-1]-n,allowed=back>0; for(int j=0;jmaximum)maximum=a[n]; } double scale=fmin(900.0/fmax(1,maximum),560.0/STEPS),left=500-maximum*scale/2; nt_line(50,340,950,340,.1,.2,1); for(int n=1;n<=STEPS;++n) { double x1=left+fmin(a[n-1],a[n])*scale,x2=left+fmax(a[n-1],a[n])*scale; double radius=(x2-x1)/2;char color[8];nt_color(n/(double)STEPS,color); /* From left to right: SVG sweep 0 gives the lower semicircle. */ fprintf(nt_out,"\n", x1,radius,radius,n%2==0?1:0,x2,color); } nt_text(50,675,"Arc diameter at step n equals n. The no-repeat test applies only to backward moves."); } int main(int argc, char **argv) { if (argc > 2) { fprintf(stderr, "Usage: %s [OUTPUT.svg]\n", argv[0]); return EXIT_FAILURE; } const char *filename = argc == 2 ? argv[1] : "recaman.svg"; nt_out = fopen(filename, "wb"); if (!nt_out) { perror(filename); return EXIT_FAILURE; } fputs("\n" "\n", nt_out); draw(); fputs("\n", nt_out); int failed = ferror(nt_out); if (fclose(nt_out) != 0) failed = 1; if (failed) { fputs("Could not finish writing the image.\n", stderr); return EXIT_FAILURE; } printf("Wrote %s\n", filename); return EXIT_SUCCESS; }