2016-09-02 11:47:33 +02:00
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---
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abstract: Less than perfect C code
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2019-10-30 13:28:37 +01:00
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lastupdated: 2013
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2016-09-02 11:47:33 +02:00
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---
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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# Old junk code: Word finder
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2013-02-11 13:40:29 +01:00
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2019-10-30 13:28:37 +01:00
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*2013.*
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2016-09-02 11:47:33 +02:00
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![Based on [this](https://commons.wikimedia.org/wiki/File:2001-91-1_Computer,_Laptop,_Pentagon_(5891422370).jpg), CC BY 2.0](sadcomputer.png)
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2013-02-11 13:40:29 +01:00
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If you ever get tired of looking at your own junk code, take a look at this.
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In August 2008, when I was still learning to program in C, I created a program
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"ordfinder" (eng: word finder) which, given a word and a dictionary, prints the
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words from the dictionary which can be created from the letters from the given
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word in any order. Incredibly, it ended up compiling and works perfectly for any
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word whose length does not exceed 8 characters, although it is a bit slow.
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But why not more than 8 characters? My view of memory might have been a bit
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naive back then, because the first step in my algorithm is to generate and
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store all permutations of all subsequences of the given word. That is, if the
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2013-02-11 21:55:34 +01:00
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string is "me", my program stores the array ={ "m", "e", "me", "em" }= in
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2013-02-11 13:40:29 +01:00
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memory before going on to reading the dictionary and looking for matches.
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2013-02-11 21:55:34 +01:00
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If the string is "you", the program stores ={ "y", "o", "yo", "oy", "u", "yu",
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"uy", "ou", "uo", "you", "yuo", "oyu", "ouy", "uyo", "uoy" }=.
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2013-02-11 13:40:29 +01:00
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If the string is "computer", the program stores the 109600 permutations of the
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subsequences of "computer".
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If the string is "difficult", the length of 9 characters means that the program
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attempts to store 986409 strings of lengths 1 to 9. That probably takes up not
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more than 10 MB, so it shouldn't be a problem. However, my program seems to
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store the list of words on the stack instead of in memory, so words with length
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9 or above cause a stack overflow to happen.
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In any case, a word length of 10 would require about 100 MB, a word length of 11
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about 1.2 GB, a word length of 12 about 15.6 GB, and a word length of 17 (like
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"inconspicuousness") about 16,5 Petabytes (16500000 GB). That's 6,5 Petabytes
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2016-09-02 11:47:33 +02:00
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*more* than [what the Internet Archive uses](http://archive.org/web/petabox.php)
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to store millions of websites, books, video and audio.
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2013-02-11 13:40:29 +01:00
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So perhaps neither my algorithm nor my implementation was that good.
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2016-09-02 11:47:33 +02:00
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## The code
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2013-02-11 13:40:29 +01:00
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Note that this code doesn't actually compile, because of all the wrong
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code. However, it did compile back in 2008 which means that either I added the
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wrong code after I had compiled it, or I used an overfriendly compiler (I don't
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remember which compiler it was, but it ran on Windows). I have run the old
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2016-09-02 11:47:33 +02:00
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executable with `wine`, and that works.
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2013-02-11 13:40:29 +01:00
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It's not necesarry to know C to laugh at this code, but it helps.
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2013-02-11 21:55:34 +01:00
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We'll start with some basic ~#include~s.
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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```c
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <ctype.h>
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#include <math.h>
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```
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So far, so good. Then the global variables with descriptive names. And let's
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declare four strings of length 0 to be statically allocated, because we'll just
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extend them later on...?
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2016-09-02 11:47:33 +02:00
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```c
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char os[0],s[0],r[0],t[0];
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int l,c,rc,k,sk,i,ii,iii,ri;
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```
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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The next step is to define our own version of C's builtin `strstr` function
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2013-02-11 13:40:29 +01:00
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(almost). I was used to PHP, so I wanted the same return values as PHP's
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2016-09-02 11:47:33 +02:00
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`strpos`.
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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```c
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int strpos (const char *haystack, const char *needle) {
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int i;
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if (strlen (haystack) < strlen (needle))
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return -1;
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for (i = 0; i <= (strlen (haystack) - strlen(needle)); i++) {
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if (!strncmp (&haystack[i], needle, strlen(needle)))
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return i;
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}
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return -1;
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}
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2016-09-02 11:47:33 +02:00
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```
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2013-02-11 13:40:29 +01:00
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Then it's time for the main function. We don't want to separate it into
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auxiliary functions, because that's just ugly!
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Indentation? Too much wastes too much space.
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2016-09-02 11:47:33 +02:00
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```c
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2013-02-11 13:40:29 +01:00
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int main(int argc, char *argv[])
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{
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if (argc>1) {
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strcpy(os,argv[1]);
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}
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else {
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printf("Indtast ord: ");
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gets(os);
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}
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printf("T\x91nker...\n");
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strcpy(s,os);
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for(i=0;s[i];i++) {
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s[i]=tolower(s[i]);
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}
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2016-09-02 11:47:33 +02:00
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```
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2013-02-11 13:40:29 +01:00
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2013-02-11 21:55:34 +01:00
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Wait, what? We use ~strcpy~ to copy the string ~argv[1]~, which contains the
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word we want to permute, into the statically allocated ~os~ with length 0? Or we
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read a line from standard in and save in ~os~? And almost the same for ~s~?
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2013-02-11 13:40:29 +01:00
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That's... not good.
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At least these two lines aren't that bad.
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2016-09-02 11:47:33 +02:00
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```c
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l=strlen(s);
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c=pow(l,l);
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2016-09-02 11:47:33 +02:00
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```
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2013-02-11 13:40:29 +01:00
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But then begins the actual permutation generation logic. I have tried to
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re-understand it, with no success.
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2016-09-02 11:47:33 +02:00
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```c
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2013-02-11 13:40:29 +01:00
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rc=1;
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i=0;
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while (i<l-1) {
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rc=rc*(l-i);
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i++;
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}
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2016-09-02 11:47:33 +02:00
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```
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2013-02-11 13:40:29 +01:00
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While we're at it, why not declare two to-be-statically-allocated arrays with
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dynamically-generated ints as lengths?
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2016-09-02 11:47:33 +02:00
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```c
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int ca[l];
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char ra[rc][l+1];
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```
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2013-02-11 13:40:29 +01:00
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2013-02-11 21:55:34 +01:00
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And then some more assignments and ~while~ loops...
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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```c
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ri=0;
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i=0;
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while (i<c) {
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k=1;
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ii=0;
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while (ii<l && k==1) {
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```
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2013-02-11 13:40:29 +01:00
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This formula does something. I'm not sure what.
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2016-09-02 11:47:33 +02:00
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```c
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ca[ii]=floor(i/pow(l,l-ii-1))-floor(i/pow(l,l-ii))*l;
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```
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2013-02-11 13:40:29 +01:00
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2013-02-11 21:55:34 +01:00
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More ~while~ loops, now also with ~if~ statements.
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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```c
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iii=0;
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while (iii<ii) {
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if (ca[ii]==ca[iii]) {k=0;}
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iii++;
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}
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ii++;
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}
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if (k==1) {
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strcpy(ra[ri],"");
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ii=0;
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while (ii<l) {
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strncpy(t,s+ca[ii],1);
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```
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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Let's concatenate `t` onto ~ra[ri]~, a string which hardly exists due to the
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`char ra[rc][l+1];` magic above.
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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```c
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strcat(ra[ri],t);
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ii++;
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}
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2016-09-02 11:47:33 +02:00
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```
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2013-02-11 13:40:29 +01:00
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And why not concatenate an end-of-string mark onto a string which, if it
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doesn't have an end-of-string mark, will make ~strcat~ fail miserably?
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2013-02-11 13:40:29 +01:00
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2016-09-02 11:47:33 +02:00
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```c
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strcat(ra[ri],"\0");
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```
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2013-02-11 13:40:29 +01:00
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And then more junk.
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2016-09-02 11:47:33 +02:00
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```c
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sk=1;
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ii=0;
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while (ii<ri && sk==1) {
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if (strcmp(ra[ri],ra[ii])==0) {sk=0;}
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ii++;
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}
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if (sk==1) {
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//printf("%s\n",ra[ri]);
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ri++;
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}
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}
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i++;
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}
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//printf("\nOrd: %s\nOrdl\x91ngde: %d\nOrdkombinationer: %d\n",os,l,ri);
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```
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2013-02-11 13:40:29 +01:00
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2013-02-11 21:55:34 +01:00
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Phew... At this point, I'm certain that ~ra~ is supposed to be an array of all
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2013-02-11 13:40:29 +01:00
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word permutations. So let's open our dictionary "ord.txt" and look for matches.
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2016-09-02 11:47:33 +02:00
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```c
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FILE *f;
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char wrd[128];
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if (f=fopen("ord.txt","r")) {
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FILE *fw;
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```
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2013-02-11 13:40:29 +01:00
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Everything is written both to output.txt *and* standard out. Anything else would
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be stupid.
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2016-09-02 11:47:33 +02:00
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```c
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fw=fopen("output.txt","w");
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printf("Ord dannet af \"%s\":\n\n",os);
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fprintf(fw,"Ord dannet af \"%s\":\n\n",os);
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int wc=0;
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while(!feof(f)) {
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if(fgets(wrd,126,f)) {
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```
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2013-02-11 13:40:29 +01:00
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The words each end with a newline, so let's replace the newline with an
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end-of-string mark.
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2016-09-02 11:47:33 +02:00
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```c
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wrd[strlen(wrd)-1]=0;
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//printf("%s\n",wrd);
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k=0;
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ii=0;
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while (ii<ri && k==0) {
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```
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2013-02-11 13:40:29 +01:00
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2013-02-11 21:55:34 +01:00
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The magical core of the matching logic, using our own ~strpos~:
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2016-09-02 11:47:33 +02:00
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```c
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if (strpos(ra[ii],wrd)>-1) {k=1;}
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```
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If ~k == 1~, something good happens. But it doesn't happen at once for some
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reason.
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2016-09-02 11:47:33 +02:00
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```c
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2013-02-11 13:40:29 +01:00
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ii++;
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}
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if (k==1) {
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printf("%s\n",wrd);
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fprintf(fw,"%s\n",wrd);
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wc++;
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}
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}
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}
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printf("\nI alt %d ord\n",wc);
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fprintf(fw,"\nI alt %d ord",wc);
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fclose(fw);
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fclose(f);
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system("output.txt");
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}
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return 0;
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}
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```
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2013-02-11 13:40:29 +01:00
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And that's my pretty C code.
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2016-09-02 11:47:33 +02:00
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## The SML equivalent
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2013-02-11 13:40:29 +01:00
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To make my inefficient algorithm a bit clearer, I have made a few SML functions
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to do the same as above:
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2016-09-02 11:47:33 +02:00
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```ocaml
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open List
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(* Removes an element from a list. *)
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fun remove x (y :: ys) = if x = y
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then ys
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else y :: remove x ys
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(* Tails of a list. Stolen from Haskell's Data.List. *)
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fun tails [] = [[]]
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| tails (xxs as (_ :: xs)) = xxs :: tails xs
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(* Non-empty subsequences of a list. Stolen from Haskell's Data.List. *)
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fun nonEmptySubsequences [] = []
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| nonEmptySubsequences (x :: xs) =
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let
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fun f (ys, r) = ys :: (x :: ys) :: r
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|
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|
in
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|
|
|
[x] :: foldr f [] (nonEmptySubsequences xs)
|
|
|
|
end
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|
|
|
|
|
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|
(* All permutations of a list. *)
|
|
|
|
fun permutations [] = [[]]
|
|
|
|
| permutations xs =
|
|
|
|
let
|
|
|
|
fun subPermutations x = map (fn ys => x :: ys) (permutations (remove x xs))
|
|
|
|
in
|
|
|
|
concat (map subPermutations xs)
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|
|
|
end
|
|
|
|
|
|
|
|
|
|
|
|
(* Permutations of subsequences of a list. *)
|
|
|
|
fun subsequencePermutations xs = concat (map permutations (nonEmptySubsequences xs))
|
|
|
|
|
|
|
|
(* The same, but for a string. *)
|
|
|
|
fun stringSubsequencePermutations s = map implode (subsequencePermutations (explode s))
|
|
|
|
|
|
|
|
(* Finds words in `wordList` which matches any permutation of any subsequence
|
|
|
|
* of `word`. *)
|
|
|
|
fun findMatchingWords word wordList =
|
|
|
|
let
|
|
|
|
val wordPermutations = stringSubsequencePermutations word
|
|
|
|
in
|
|
|
|
filter (fn testWord =>
|
|
|
|
exists (fn word => word = testWord)
|
|
|
|
wordPermutations) wordList
|
|
|
|
end
|
2016-09-02 11:47:33 +02:00
|
|
|
```
|
2013-02-11 13:40:29 +01:00
|
|
|
|
|
|
|
As well as some SML functions to calculate the number of permutations and bytes:
|
|
|
|
|
2016-09-02 11:47:33 +02:00
|
|
|
```ocaml
|
2013-02-11 13:40:29 +01:00
|
|
|
(* Calculates the factorial. *)
|
|
|
|
fun factorial 0 = 1
|
|
|
|
| factorial n = n * factorial (n - 1)
|
|
|
|
|
|
|
|
(* Calculates the binomial coeffecient. *)
|
|
|
|
fun binomc n k = factorial n div (factorial k * factorial (n - k))
|
|
|
|
|
|
|
|
(* Gives [m, m + 1, ..., n]. *)
|
|
|
|
fun upTo m n = if m < n
|
|
|
|
then m :: upTo (m + 1) n
|
|
|
|
else [m]
|
|
|
|
|
|
|
|
(* Gives the total number of word subsequence permutations for a given word
|
|
|
|
* length. *)
|
|
|
|
fun nPermutations len = foldl op+ 0 (map (fn n => factorial n * binomc len n)
|
|
|
|
(upTo 1 len))
|
|
|
|
|
|
|
|
(* Gives the size in bytes for storing all word subsequence permutations for a
|
2013-02-11 21:55:34 +01:00
|
|
|
* given word length in a space-saving way: there are ~len~ arrays, each taking
|
2013-02-11 13:40:29 +01:00
|
|
|
* up space for the pointer to the array and the permutations of subsequences of
|
2013-02-11 21:55:34 +01:00
|
|
|
* length n where ~1 <= n <= len~ and n is unique.
|
2013-02-11 13:40:29 +01:00
|
|
|
*)
|
|
|
|
fun nSize len = 8 * len + foldl op+ 0 (
|
|
|
|
map (fn n => (n + 1) * factorial n * binomc len n)
|
|
|
|
(upTo 1 len))
|
2016-09-02 11:47:33 +02:00
|
|
|
```
|
2013-02-11 13:40:29 +01:00
|
|
|
|
2016-09-02 11:47:33 +02:00
|
|
|
## The alternative
|
2013-02-11 13:40:29 +01:00
|
|
|
|
|
|
|
Preprocess the dictionary into a clever data structure and don't use up all the
|
|
|
|
memory.
|
|
|
|
|
2016-09-02 11:47:33 +02:00
|
|
|
Originally published
|
|
|
|
[here](http://dikutal.metanohi.name/artikler/old-junk-code-word-finder).
|