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On my machine, I have a file which is regenerated by an application every second - it contains different data each time, as it's based on some realtime data.

I would like to have a copy of this file, which would contain what the original file contained 5 minutes ago. Is this somehow easily achievable? I would be happy to do this using some BASH scripting magic, but adding some wise, memory efficient code to that original application (written in c++) would also satisfy me :)

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can you simply store the data in a variable? or perhaps a temp file? –  RozzA Jun 14 '12 at 17:53
    
Is while true; do cp file 5ago-file; sleep 300; done What you're looking for? –  Dave Jun 14 '12 at 17:54
    
Dave: If he needs to always be able to see what the file looked like 5 minutes ago, he'll need to copy the file every second and keep the past 5 minutes' worth of copies (i.e., 300 copies of files). –  Jay Sullivan Jun 14 '12 at 17:56
    
@Dave: Not exactly, I need that copy file to be also updated each second, yet with outdated data. –  rafalcieslak Jun 14 '12 at 17:56
1  
Lagging the file isn't impossible, but there are some tricks that might be a whole lot simpler. If you're just appending data to the end, why not just use a single file, timestamp all the entries, and read entries up until you reach 5 minutes ago? Or, if it's not appended sequentially, keep a map (in C++ terms) from records to timestamps. Does anything like that sound reasonable? –  abarnert Jun 14 '12 at 18:30

3 Answers 3

up vote 1 down vote accepted

If disk space isn't an issue, you could make the program create a new file every second instead of writing to the same file. You would need a total of 300 files (5 min * 60 sec/min). The file name to write to would be $somename + timestamp() % 300. That way, to get the file 5 minutes ago, you would just access the file $somename + (timestamp()+1) % 300.

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Note: % means "modulo". Replace with whatever function provides this in bash. (I'm mainly a PHP programmer) –  Mike Jun 14 '12 at 18:04
    
You can use the % operator inside a $(()) arithmetic block in bash. The full equivalent expression (assuming you have a "timestamp" function) would be "$somename$(($(timestamp)%300)), and the second expression is "$somename$((($(timestamp)+1)%300)). –  abarnert Jun 14 '12 at 18:27

You tagged your question with both and . This answer only applies to Linux.

You may be able to use inotify-tools (inotifywait man page) or incron (incrontab(5) man page) to watch the directory and make copies of the files as they are closed.

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In order to achieve that, you need the space to hold each of the 300 (5*60) files. Since you indicate that the files are only about 50K in size, this is doable in 15MB memory (if you don't want to clutter your filesystem)

It should be as simple as: (something like)

struct {char* buf; size_t size} hist[300]; //initalize to all nulls.
int n = 0;
struct stat st;
for(;;sleep(1)){
    int ifd  = open("file", O_READ);
    int ofd = open("file-lag", O_WRITE);
    stat(ifd, &st);
    hist[n].size = st.st_size;
    if(hist[n].buf)
       free(hist[n].buf);
    buffer[n] = malloc(hist[n].size);
    read(ifd, hist.buf[n], hist[n].size);
    n = (n+1)%300;
    if(hist[n].buf)
        write(ofd, hist.buf[n], hist[n].size)
    close(ofd);
    close(ifd);
}
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