Fastest Way of Opening and Reading .csv Files (Currently using xlsread)

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I am currently trying to convert 100,000+ csv files (all the same size, with the same data structuring on the inside) to mat files, and I am running into the issue that it takes an extremely long time, and sometimes Excel stops responding. Are there any other functions that could cut down on the read time of these .csv files?
I read something about trying the COM server that runs Excel, but I am not sure how to implement it. Any thoughts?

Accepted Answer

Kirby Fears
Kirby Fears on 23 May 2016
Edited: Kirby Fears on 23 May 2016
Thankfully, you don't need to interact with Excel to read csv files. You can use textscan to read csv files quickly.
I wrote a function called delimread that utilizes textscan with automatic parameters. It might be easier than learning how to parameterize textscan.

More Answers (4)

Todd Leonhardt
Todd Leonhardt on 23 May 2016

Jeremy Hughes
Jeremy Hughes on 23 Aug 2017
Since you have multiple files, you may want to consider using datastore. (Since R2014b)
In many cases, you can just use the following pattern to read a large collection of files,
ds = datastore('folder/containing/your/files')
while(hasdata(ds))
t = read(ds)
% do stuff to t.
end
Hope this helps,
Jeremy

TastyPastry
TastyPastry on 23 May 2016
There's a function csvread() which only works on numeric data.
The other way you can do it is to use textscan(). Both of those methods should be faster than xlsread() since xlsread() uses Excel, which is pretty slow.

Kristoffer Walker
Kristoffer Walker on 23 Aug 2024
In my experience, the absolute fastest method is textscan. Here is a benchmark to support my claim using a 3.6 GB CSV file with 4 columns.
Using textscan: 81 seconds
Using readtable: 143 seconds
I tried dlmread and csmread, but they had problems with parsing input. They are not recommended.
Good luck.
Kris

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