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I'm working on some text conversion routines that parse time values in different formats in Ruby. This routine is growing in complexity, and I'm currently testing a better approach to this problem.

I'm currently testing a way to use scanf. Why? I always thought that was faster than a regex, but what happened in Ruby? It was much slower!

What am I doing wrong?

Note: I'm using ruby-1.9.2-p290 [ x86_64 ] (MRI)

First Ruby test:

require "scanf"
require 'benchmark'

def duration_in_seconds_regex(duration)
  if duration =~ /^\d{2,}\:\d{2}:\d{2}$/
    h, m, s = duration.split(":").map{ |n| n.to_i }
    h * 3600 + m * 60 + s
  end
end

def duration_in_seconds_scanf(duration)
  a = duration.scanf("%d:%d:%d")
  a[0] * 3600 + a[1] * 60 + a[2]
end

n = 500000
Benchmark.bm do |x|
  x.report { for i in 1..n; duration_in_seconds_scanf("00:10:30"); end }
end

Benchmark.bm do |x|
  x.report { for i in 1..n; duration_in_seconds_regex("00:10:30"); end }
end

This is what I got using scanf first and a regex second:

      user     system      total        real
  95.020000   0.280000  95.300000 ( 96.364077)
       user     system      total        real
   2.820000   0.000000   2.820000 (  2.835170)

Second test using C:

#include <stdio.h>
#include <stdlib.h>
#include <time.h>
#include <sys/types.h>
#include <string.h>
#include <regex.h>

char *regexp(char *string, char *patrn, int *begin, int *end) {
    int i, w = 0, len;
    char *word = NULL;
    regex_t rgT;
    regmatch_t match;
    regcomp(&rgT, patrn, REG_EXTENDED);
    if ((regexec(&rgT, string, 1, &match, 0)) == 0) {
        *begin = (int) match.rm_so;
        *end = (int) match.rm_eo;
        len = *end - *begin;
        word = malloc(len + 1);
        for (i = *begin; i<*end; i++) {
            word[w] = string[i];
            w++;
        }
        word[w] = 0;
    }
    regfree(&rgT);
    return word;
}

int main(int argc, char** argv) {
    char * str = "00:01:30";
    int h, m, s;
    int i, b, e;
    float start_time, end_time, time_elapsed;
    regex_t regex;
    regmatch_t * pmatch;
    char msgbuf[100];
    char *pch;
    char *str2;
    char delims[] = ":";
    char *result = NULL;

    start_time = (float) clock() / CLOCKS_PER_SEC;
    for (i = 0; i < 500000; i++) {
        if (sscanf(str, "%d:%d:%d", &h, &m, &s) == 3) {
            s = h * 3600L + m * 60L + s;
        }
    }
    end_time = (float) clock() / CLOCKS_PER_SEC;
    time_elapsed = end_time - start_time;
    printf("sscanf_time (500k iterations): %.4f", time_elapsed);

    start_time = (float) clock() / CLOCKS_PER_SEC;
    for (i = 0; i < 500000; i++) {
        char * match = regexp(str, "[0-9]{2,}:[0-9]{2}:[0-9]{2}", &b, &e);
        if (strcmp(match, str) == 0) {
            str2 = (char*) malloc(sizeof (str));
            strcpy(str2, str);
            h = strtok(str2, delims);
            m = strtok(NULL, delims);
            s = strtok(NULL, delims);
            s = h * 3600L + m * 60L + s;
        }
    }
    end_time = (float) clock() / CLOCKS_PER_SEC;
    time_elapsed = end_time - start_time;
    printf("\n\nregex_time (500k iterations): %.4f", time_elapsed);

    return (EXIT_SUCCESS);
}

The C code results are obviously faster, and the regex results are slower than scanf results as expected:

sscanf_time (500k iterations): 0.1774

regex_time (500k iterations): 3.9692

It is obvious that the C running time is faster, so please don't comment that Ruby is interpreted and stuff like that please.

This is the related gist.

share|improve this question
    
Aren't you recompiling the expression every iteration in C? I don't think Ruby does that. I'd be interested to see the C results if you compile the expression only once. Also, why are you even using a split? You are matching the string so you could capture the values directly, without further operations on the string. –  Qtax Mar 1 '12 at 20:35
    
Yeah I'm recompiling, it could be even more fast than that but I do need to change the exp sometimes. –  AndreDurao Mar 1 '12 at 20:41
    
Then you only need to recompile it when it is changed. But I'd just like to see the numbers. ;-) –  Qtax Mar 1 '12 at 20:45

2 Answers 2

up vote 4 down vote accepted

The problem is not that it's interpreted, but that everything in Ruby is an object. You can explore "scanf.rb" in your Ruby distribution and compare it to scanf implementation in C.

Ruby implementation of scanf based on RegExp matching. Every atom like "%d" is an object in ruby, while it's only one case item in C. So, to my mind, the reason of such execution time is lots of object allocation/deallocation.

share|improve this answer
    
I thought that scanf use native implementation just like openssl and others that require .so files –  AndreDurao Mar 1 '12 at 20:49

Assuming MRI: scanf is written in Ruby (scanf.rb) apparently 10 years ago and never touched since (and it does look complex!). split, map, and regexes are implemented in heavily optimized C.

share|improve this answer

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