1. intersection and ExoticaX
- Posted by Lewis Townsend <keroltarr at HOTMAIL.COM> Jul 04, 2001
- 417 views
Hello all, I thought I sent a message concerning this question already but haven't seen any responses yet so here goes again: I need a formula or an Euphoria function that can tell me where a line intersects with a polygon. I know that a line can intersect with a polygon more than once so I want the intersection that is closest to the line's starting point. Also, if it would make for faster code the line can be defined with starting point and directional vector rather than starting point and ending point. Here is a skeleton function: function IntersectPolygon( atom x, atom y, atom x2, atom y2, sequence poly ) return {x,y} -- coordinates of intersection point end function This looks like a job for Jiri Babor or any of the gurus around here. I mention Jiri simply becuase he is a master at writing fast executing code. Jiri, please don't feel obligated to write a function for me simply because I mentioned your name, I just thought this might be a pleasant challenge for you. Also I have some issues with ExoticaX that perhaps Chris Bensler can help me with. I thought I had his email saved or I wouldn't post this to the list but maybe others can help with this as well: In the ExoticaX docs gdi_get_charwodth( atom Char ) sould be:....^ gdi_get_charwidth( atom Char ) .............^ In Ddraw.ew line 921 uses a sprintf format %D instead of %d doesn't work with the captital D In creation or loading of a bitmap in ExoticaX the memory mode can be set to hardware or software memorry. what is hardware/software memory? Is it the difference between Video memory and regular RAM or RAM and virtual memory or what? I need a draw-line procedure (needs to work on bitmaps at least) draw_line_bitmap( BMP_ID, x1,y1,x2,y2, COLOR ) or draw_line_bitmap( atom BMP_ID, sequence points, atom color ) other basic drawing routines wouldn't go amiss either. 16bit colors work fine for loaded images but not for specifying color values. It seems it uses a different format for 16bit color in specifying a hex color value. For instance #888888 is a medium gray in truecolor modes. In 16 bit mode it is a dark pink. These things aught not to be! I don't want to have to programatically test for color depth and then convert to a different color value format every time I need to specify a color with a hex number. Thanks in advance for any help from anyone on either the polygon intersection problem or the ExoticaX issues.
2. Re: intersection and ExoticaX
- Posted by Jiri Babor <jbabor at PARADISE.NET.NZ> Jul 06, 2001
- 418 views
-- cut.ex : find all intersection points of a line and a polygon -- jiri babor -- jbabor at paradise.net.nz -- homepages.paradise.net.nz/~jbabor/euphoria.html -- 01-07-06 function round(object x) -- recursive if atom(x) then return floor(x+0.5) end if for i=1 to length(x) do x[i] = round(x[i]) end for return x end function function cut(sequence line, sequence poly) -- line is a two point line sequence {{x1, y1}, {x2, y2}} -- poly is a vertices sequence in the form {{x1, y1}, ... {xn, yn}} -- defining the polygon -- return sequence of intersection points sequence s atom a1,a2, b1,b2, c1,c2, D, x,x1,x2, y,y1,y2 integer n n = length(poly) -- number of vertices poly = append(poly, poly[1]) -- just convenience s = {} a1 = line[1][2] - line[2][2] b1 = line[2][1] - line[1][1] c1 = -a1*line[1][1] - b1*line[1][2] for i = 1 to n do x1 = poly[i][1] x2 = poly[i+1][1] y1 = poly[i][2] y2 = poly[i+1][2] a2 = y1 - y2 b2 = x2 - x1 D = a1*b2 - a2*b1 -- determinant if D then -- if line and side not parallel c2 = -a2*x1 - b2*y1 x = (b1*c2 - b2*c1)/D y = (a2*c1 - a1*c2)/D if b2 then -- if side not vertical if (x >= x1 and x <= x2) or (x <= x1 and x >= x2) then s = append(s, {x,y}) end if else -- vertical side if (y >= y1 and y <= y2) or (y <= y1 and y >= y2) then s = append(s, {x, y}) end if end if end if end for return round(s) -- rounding is optional end function include graphics.e include get.e -- wait_key() constant poly = {{200,160},{320,300},{440,120},{400,400},{180,320}} object o sequence s, line integer co, key procedure draw_circles(sequence s) integer x,y for i = 1 to length(s) do x = s[i][1] y = s[i][2] ellipse(co,1, {x-3,y-3}, {x+3, y+3}) end for end procedure o = graphics_mode(18) -- 640x480x16 polygon(15, 0, poly) co = YELLOW text_color(co) line = {{0,180}, {600,0}} -- yellow line draw_line(co, line) s = cut(line, poly) ? s draw_circles(s) co = BRIGHT_BLUE text_color(co) line = {{0,220},{639,300}} -- blue line draw_line(co, line) s = cut(line, poly) ? s draw_circles(s) co = GREEN text_color(co) line = {{0,400}, {639,320}} -- green line draw_line(co, line) s = cut(line, poly) ? s draw_circles(s) key = wait_key() -- waste time o = graphics_mode(-1) -- return to text mode ----- Original Message ----- From: "Lewis Townsend" <keroltarr at HOTMAIL.COM> To: "EUforum" <EUforum at topica.com> Sent: Thursday, 5 July 2001 09:45 Subject: intersection and ExoticaX > Hello all, > > I thought I sent a message concerning this question already but haven't seen > any responses yet so here goes again: I need a formula or an Euphoria > function that can tell me where a line intersects with a polygon. I know > that a line can intersect with a polygon more than once so I want the > intersection that is closest to the line's starting point. Also, if it would > make for faster code the line can be defined with starting point and > directional vector rather than starting point and ending point. Here is a > skeleton function: > > function IntersectPolygon( atom x, atom y, atom x2, > atom y2, sequence poly ) > return {x,y} -- coordinates of intersection point > end function > > This looks like a job for Jiri Babor or any of the gurus around here. I > mention Jiri simply becuase he is a master at writing fast executing code. > Jiri, please don't feel obligated to write a function for me simply because > I mentioned your name, I just thought this might be a pleasant challenge for > you. <snip>
3. Re: intersection and ExoticaX
- Posted by Jeffrey Fielding <jjprog at earthlink.net> Jul 06, 2001
- 407 views
4. Re: intersection and ExoticaX
- Posted by martin.stachon at worldonline.cz Jul 06, 2001
- 412 views
> > Hello all, > > I thought I sent a message concerning this question already but haven't seen > any responses yet so here goes again: I need a formula or an Euphoria > function that can tell me where a line intersects with a polygon. I know > that a line can intersect with a polygon more than once so I want the > intersection that is closest to the line's starting point. Also, if it would > make for faster code the line can be defined with starting point and > directional vector rather than starting point and ending point. Here is a > skeleton function: > > function IntersectPolygon( atom x, atom y, atom x2, > atom y2, sequence poly ) > return {x,y} -- coordinates of intersection point > end function > > This looks like a job for Jiri Babor or any of the gurus around here. I > mention Jiri simply becuase he is a master at writing fast executing code. > Jiri, please don't feel obligated to write a function for me simply because > I mentioned your name, I just thought this might be a pleasant challenge for > you. > > Hello, I've written this Intersection routine, it has some unfinished parts and sometimes do not give intersection where it should be. Maybe I will improve it if you are interested. It is based on converting lines into linear functions (y = ax + b) and then finding their common point. Martin *-CODE BEGINS-* include graphics.e function ersectPolygon( atom x1, atom y1, atom x2, atom y2, sequence poly ) atom a1, a2, b1, b2 atom x, y sequence result result = {} if x1 = x2 then --! SPECIAL CASE : a= inf => VERTICAL LINE -- ADD CODE HERE else a1 = (y2-y1)/(x2-x1) b1 = y1-a1*x1 for i=1 to length(poly)-1 by 2 do -- ADD CHECHING FOR DIVIDER NOT TO BE ZERO - VERTICAL LINE a2 = (poly[i+1][2]-poly[i][2]) / (poly[i+1][1]-poly[i][1]) if a1 = a2 then -- this lines can never meet else b2 = poly[i][2] - a2*poly[i][1] x = (b2-b1)/(a1-a2) if poly[i][1] > poly[i+1][1] then if x < poly[i][1] and x > poly[i+1][1] then y = a1*x + b1 result &= {{x,y}} end if else if x > poly[i][1] and x < poly[i+1][1] then y = a1*x + b1 result &= {{x,y}} end if end if end if end for end if return result end function atom x1,y1,x2,y2 sequence poly sequence inter x1 = rand(320) y1 = rand(200) x2 = x1 + rand(50) - 25 y2 = y1 + rand(50) - 25 poly = {} for i=1 to 5 + rand(5) do poly &= {{rand(320),rand(200)}} end for poly &= {poly[1]} if graphics_mode(19) then end if draw_line(BLUE, {{x1,y1},{x2,y2}}) draw_line(WHITE, poly) inter = IntersectPolygon(x1,y1,x2,y2,poly) for i=1 to length(inter) do pixel(RED, inter[i]) end for
5. Re: intersection and ExoticaX
- Posted by Jiri Babor <jbabor at PARADISE.NET.NZ> Jul 06, 2001
- 429 views
Jeff, if the line and side are parallel, or even identical, the case can be ignored, because the entry and exit points will be obtained as intersections with the adjacent sides. BTW, Jeff, I would like to have a look at your solution, unfortunately Lewis' note with it was truncated. jiri ----- Original Message ----- From: "Jeffrey Fielding" <jjprog at earthlink.net> To: "EUforum" <EUforum at topica.com> Sent: Saturday, 7 July 2001 06:15 Subject: Re: intersection and ExoticaX > > > On 2001.07.06 07:52 Jiri Babor wrote: > <snip> > > if D then -- if line and side not > > parallel > > c2 = -a2*x1 - b2*y1 > > x = (b1*c2 - b2*c1)/D > > y = (a2*c1 - a1*c2)/D > > if b2 then -- if side not vertical > > if (x >= x1 and x <= x2) or (x <= x1 and x >= x2) then > > s = append(s, {x,y}) > > end if > > else -- vertical side > > if (y >= y1 and y <= y2) or (y <= y1 and y >= y2) then > > s = append(s, {x, y}) > > end if > > end if > > end if > </snip> > > Nice. But what if the line and side are parallel? > > Jeff > > > > > >
6. Re: intersection and ExoticaX
- Posted by Lewis Townsend <keroltarr at HOTMAIL.COM> Jul 07, 2001
- 425 views
Hello Martin, >Hello, >I've written this Intersection routine, >it has some unfinished parts and sometimes >do not give intersection where it should be. >Maybe I will improve it if you are interested. Thanks for this solution. I am interested in you improving it. I need a function that always works. Thanks. :) later, Lewis Townsend
7. Re: intersection and ExoticaX
- Posted by Lewis Townsend <keroltarr at HOTMAIL.COM> Jul 07, 2001
- 426 views
Hello Jiri, Jeff, >BTW, Jeff, I would like to have a look at your solution, unfortunately >Lewis' note with it was truncated. > >jiri Oops, I wonder how that happened. Here it is again. It looks whole to me right now, so if it is truncated again it must be hotmail or Topica that is doing it. later, Lewis Townsend function poly_to_lines(sequence poly) sequence lines lines = repeat(0, length(poly)) for i = 1 to length(poly)-1 do lines[i] = {poly[i],poly[i+1]} end for lines[length(lines)] = {poly[length(poly)],poly[1]} return lines end function function distance(atom x1, atom y1, atom x2, atom y2) atom dx, dy dx = x2-x1 dy = y2-y1 return sqrt((dx*dx)+(dy*dy)) end function function round(atom x) if x-floor(x) >= 0.5 then return floor(x)+1 else return floor(x) end if end function function fix(atom x) return round(x * 1000) end function function between(atom v, atom top, atom bottom) v = fix(v) top = fix(top) bottom = fix(bottom) return ((v <= top) and (v >= bottom)) or ((v >= top) and (v <= bottom)) end function function IntersectPolygon(atom x1, atom y1, atom x2, atom y2, sequence poly) sequence lines atom dx, dy, ray_slope, line_slope, tmp2, lx1, lx2, ly1, ly2 object tmp, best atom best_distance, dst best = 0 best_distance = -1 if x1 = x2 then for i = 1 to length(poly) do poly[i] = {poly[i][2],poly[i][1]} end for tmp = IntersectPolygon(y1,x1,y2,x2,poly) if sequence(tmp) then return {tmp[2],tmp[1]} else return 0 end if end if dx = x2-x1 dy = y2-y1 ray_slope = dy/dx lines = poly_to_lines(poly) for i = 1 to length(lines) do lx1 = lines[i][1][1] ly1 = lines[i][1][2] lx2 = lines[i][2][1] ly2 = lines[i][2][2] if lx1 = lx2 and ((lx1-x1)*dx) >= 0 then tmp = y1 + (ray_slope * (lx1 - x1)) if between(tmp,ly1,ly2) then dst = distance(x1,y1,lx1,tmp) if integer(best) or dst < best_distance then best = {lx1,tmp} best_distance = dst if dst = 0 then return best end if end if end if elsif lx1 != lx2 then line_slope = (ly2-ly1)/(lx2-lx1) if ray_slope = line_slope then if (y1 - (x1 * ray_slope)) = (ly1 - (lx1 * line_slope)) then if between(x1, lx1, lx2) then return {x1, y1} else tmp = 0 if (lx1-x1)*dx >= 0 then tmp = lines[i][1] end if if (lx2-x1)*dx >= 0 then if integer(tmp) then tmp = lines[i][2] else if ((tmp[1]-x1)*dx) > ((lx2-x1)*dx) then tmp = lines[i][2] end if end if end if if sequence(tmp) then dst = distance(x1,y1,tmp[1],tmp[2]) if integer(best) or dst < best_distance then best = tmp best_distance = dst end if end if end if end if else tmp = (ly1 - (line_slope * lx1) - y1 + (ray_slope * x1))/(ray_slope - line_slope) tmp2 = y1 + (ray_slope * (tmp - x1)) if ((tmp-x1)*dx) >= 0 then if between(tmp,lx1,lx2) and between(tmp2,ly1,ly2) then dst = distance(x1,y1,tmp,tmp2) if integer(best) or dst < best_distance then best = {tmp,tmp2} best_distance = dst if dst = 0 then return best end if end if end if end if end if end if end for return best end function