Using filepath input in fopen

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Suha
Suha on 17 Aug 2017
Commented: Suha on 17 Aug 2017
Hi all, I can't seem to use fopen to open a file using a variable that stores the name and path of the file. For example, the variable [pathvariable] stores /imper/codec/data.txt. I am doing fid = fopen([pathvariable],'r') but it is not working.
I've tried the following too:
fid = fopen(pathvariable,'r')
fid = fopen('pathvariable','r')
In all cases, I get a fid of -1.
Could someone please help. Thanks.
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Stephen23
Stephen23 on 17 Aug 2017
@Suha: in 99 percent of cases the filepath is incorrect or there is a spelling mistake somewhere. Check the filename carefully.
Suha
Suha on 17 Aug 2017
Thank you KSSV and Stephen for your prompt reply ! My pathvariable was indeed the issue, which I have now fixed. :)

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Accepted Answer

Guillaume
Guillaume on 17 Aug 2017
The proper syntax is indeed your first example:
fid = fopen(pathvariable, 'r');
There could be many reasons for why it does not work: invalid path(file not found), file locked, permission denied, etc. First thing to do would be to look at the errmsg output of:
[fid, errmsg] = fopen(pathvariable, 'r')
which should give you more info.
If you're on Windows, /imper/codec/data.txt does not look like a absolute path which may be the problem. I would always use absolute paths with fopen to avoid any issue:
fid = fopen(fullfile('C:\some\where', relativepath), 'r');
  1 Comment
Suha
Suha on 17 Aug 2017
Thank you Guillaume for taking time out to write such a clear and detailed response. Much appreciated. Using the errmsg output I was able to spot that my pathvariable was incorrect, hence the file could not be detected. All fixed and working now. Many thanks !!

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