13

I am using C and my knowledge is very basic. I want to scan a file and get the contents after the first or second line only ...

I tried :

fscanf(pointer,"\n",&(*struct).test[i][j]);

But this syntax simply starts from the first line =\

How is this possible ?

Thanks.

14

fgets will get one line, and set the file pointer starting at the next line. Then, you can start reading what you wish after that first line.

char buffer[100];
fgets(buffer, 100, pointer);

It works as long as your first line is less than 100 characters long. Otherwise, you must check and loop.

  • Thanks this works perfectly !! – NLed May 10 '10 at 0:12
  • Thanks, I created a question then deleted it and find my answer here :) – Bionix1441 Sep 21 '17 at 11:48
35

I was able to skip lines with scanf with the following instruction:

fscanf(config_file, "%*[^\n]\n", NULL);

the format string represent a line containing any character including spaces. The * in the format string and the NULL pointer mean we are not interested in saving the line, but just in incrementing the file position.

Format string explanation:
% is the character which each scanf format string starts with;
* indicates to not put the found pattern anywhere (typically you save pattern found into parameters after the format string, in this case the parameter is NULL);
[^\n] means any character except newline;
\n means newline;

so the [^\n]\n means a full text line ending with newline.

Reference here.

  • 3
    This is the most minimal solution and its working great, thanks! – Primož Kralj Jun 2 '13 at 5:45
  • This is great! However I really don't understand. If you can explain more, it will help more people like me. I never see the "%*[^\n]\n" before. – 喵喵是我的猫猫 Jul 30 '14 at 4:10
  • @buzhidao the * instructs fscanf (all of the scanf family, in fact) to parse the data out as presented in the format string, but NOT to store it at any target address (which is good, because there is none provided in an argument list). the [^\n] means take anything except a newline, so ALL data will be consumed up to (but not including) the newline. Finally, the final \n means "and consume (and ignore) the newline" (which we just stopped at when fulfilling the prior format spec). Btw, the NULL isn't required in the argument list. – WhozCraig Mar 30 '16 at 8:49
  • I don't think the trailing NULL is required. fscanf(config_file, "%*[^\n]\n"); should be sufficient on it's own as the * means don't store. – Jules Nov 12 '17 at 12:52
  • This does not compile for gcc 5.4.0 for Ubuntu 16.04. The storage parameter must be removed as suggested by @Jules. The working solution I found is fscanf(config_file, "%*[^\n]\n"); – kingledion May 2 '18 at 16:01
12

It's not clear what are you trying to store your data into so it's not easy to guess an answer, by the way you could just skip bytes until you go over a \n:

FILE *in = fopen("file.txt","rb");

Then you can either skip a whole line with fgets but it is unsafe (because you will need to estimate the length of the line a priori), otherwise use fgetc:

uchar8 c;
do
  c = fgetc(in);
while (c != '\n')

Finally you should have format specifiers inside your fscanf to actually parse data, like

fscanf(in, "%f", floatVariable);

you can refer here for specifiers.

  • Thanks for the reply, I tried using "rb" but that didnt work :( Thank you for the link to specifiers, im checking them now. – NLed May 10 '10 at 0:13
  • 3
    It shouldn't be "rb" but just "r". – Casey May 10 '10 at 0:38
3

fgets would work here.

#define MAX_LINE_LENGTH 80

char buf[MAX_LINE_LENGTH];

/* skip the first line (pFile is the pointer to your file handle): */
fgets(buf, MAX_LINE_LENGTH, pFile);

/* now you can read the rest of your formatted lines */

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