.pbm文件图像渲染 - [vhold] scanline-wiggles?

时间:2013-07-19 01:12:01

标签: ghostscript postscript pbmplus pbm

我正在试图破解程序以读取pbm,pgm或ppm文件,并使用image运算符将图像渲染到postscript输出设备。只是测试P4输入(二进制可移植(1位)位图)路径,但我的输出都很复杂。

%!
% cf. http://en.wikipedia.org/wiki/Netpbm_format
% cf. http://en.wikipedia.org/wiki/Computer_Graphics (origin of image)
% $ wget http://upload.wikimedia.org/wikipedia/commons/thumb/2/23/Spacewar%21-PDP-1-20070512.jpg/320px-Spacewar%21-PDP-1-20070512.jpg
% $ convert 320px-Spacewar%21-PDP-1-20070512.jpg spacewar.pbm
% $ convert 320px-Spacewar%21-PDP-1-20070512.jpg spacewar.pgm
% $ convert 320px-Spacewar%21-PDP-1-20070512.jpg spacewar.ppm

/filename (spacewar.pbm) def
%/filename (spacewar.pgm) def
%/filename (spacewar.ppm) def

/infile filename (r) file def
/readscale false def

% Read magic number
infile token pop <<
    /P1 { /depth 1 def
        /readscale false def
        /filetype /ascii def }
    /P2 { /depth 8 def
        /readscale true def
        /filetype /ascii def }
    /P3 { /depth 24 def
        /readscale true def
        /filetype /ascii def }
    /P4 { /depth 1 def
        /readscale false def
        /filetype /binary def }
    /P5 { /depth 8 def
        /readscale true def
        /filetype /binary def }
    /P6 { /depth 24 def
        /readscale true def
        /filetype /binary def }
>> exch 2 copy known not{pop/default}if get exec

% Read header
/buf 256 string def
infile buf readline pop % line
(1:)print dup ==
(#) { % line (#)
    (2a:)print 1 index =
    search { % post (#) pre
        pop pop pop %
        infile buf readline pop % (#) next-line
        (#) % next-line (#)
        (2b pstack\n)print pstack()=
    }{ % line
        (2c:)print dup ==
        exit
    } ifelse
} loop % line
pstack()=
token pop /height exch def
token pop /width exch def
readscale {
    token pop /scale exch def
}{
    pop
}ifelse
/buf width
    depth mul
    8 div ceiling cvi
    string def
(bufsize: )print buf length =
/pad
    buf length 8 mul
    width sub def
(pad: )print pad =

/readdata <<
    /ascii { % file buf
        0 1 width 1 sub { % file buf i
            2 index token pop % file buf i
        } for
    }
    /binary { % file buf
        readstring pop
        %dup length 0 ne { 0 1 index length pad sub getinterval } if
        dup == flush
        %(bin)= flush
    }
>> filetype get def
%errordict/rangecheck{pstack dup length = quit}put

width
height
depth 
[ 1 0 0 -1 0 height ]
{
    infile buf readdata
} image

showpage

我很确定问题是我计算一行的字节宽度和预期的填充:

/buf width
    depth mul
    8 div ceiling cvi
    string def
(bufsize: )print buf length =
/pad
    buf length 8 mul
    width sub def
(pad: )print pad =

但是,当我逐步完成时,这似乎是正确的。对于这个215位宽的位图,我每行得到27个字节。

编辑:删除“pad”-chop有帮助。也许我需要添加额外的填充?

问题在输出中得到证明:

improved but still bad

this answer末尾的类似但更简单的程序可以表示正确。

ok image

1 个答案:

答案 0 :(得分:0)

哦,亲爱的,这是愚蠢的。

我让这两条线失败了:

 55 token pop /width exch def
 56 token pop /height exch def

在我输入的最后一次编辑中,这一切都来到我身边:

  

对于这个215位宽的位图,我每行得到27个字节。

然后我再次查看identify输出。果然,215是高度,而不是宽度。

image fixed