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I've looked for questions on this topic, but failed to get what I'm looking for. This is for C++, I need similar for PHP. This is for including php files, I just want to read a CSV file.

I have this:

if(file_exists("data.csv")){
    echo "CSV file found";

    $csv_data = file_get_contents("data.csv"); 

    $lines = explode("\n", trim($csv_data));   

    $array = array();

    foreach ($lines as $line){
            $array[] = str_getcsv($line);

}else {echo "File not found";}

But I want to NOT specify the file name - i.e. generically load/read/open the file.

Is there any simple why of doing that? Doesn't make sense, but I was told to not have anything hard coded in my PHP script.

Thanks in advance.

share|improve this question
    
You mean you want to replace "data.csv" with a variable? –  andrewsi Aug 29 '12 at 14:10
    
You can just put the filename string in a variable. What do you mean by generically open the file? The is a specific file. –  Explosion Pills Aug 29 '12 at 14:10
    
where would the file location come from? –  Matt K Aug 29 '12 at 14:10
    
I think he wants to do it with a file handle rather than the filename string. –  Joe Aug 29 '12 at 14:14

3 Answers 3

up vote 2 down vote accepted

If you may not have anything hard coded in your script, you need to put those hardcoded things into some sort of external config file. You will have to hardcode the name of that config file into your bootstrap or whatever comes first in your application. Once the config is loaded, make the configuration data available in the places where it is needed. Not hardcoding configuration data into your code will allow you to create more reusable components and code, e.g. CSV Reader that can read any CSV file instead of a CSV Reader that can only read that one particular CSV file hardcoded into it.

Example:

// config.php
<?php
return array(
    'csvFile' => '/path/to/file.csv',
    …
);

// bootstrap.php
<?php
$config = include '/path/to/config.php';
…

// someFile.php
<?php
include '/path/to/bootstrap.php';
$file = new SplFileObject($config['csvFile']);
$file->setFlags(SplFileObject::READ_CSV);
foreach ($file as $row) {
   // Do something with values
}
share|improve this answer

use fgetcsv

if(file_exists("data.csv")){
    echo "CSV file found";
    $handle = fopen("data.csv", "r");
    if(!$handle) die("Could not open file!");
    while (($data = fgetcsv($handle, 1000, ",")) !== FALSE) {
      $num = count($data);
      $row++;
      for ($c=0; $c < $num; $c++) {
        echo $data[$c] . "<br />\n";
      }
    }
    fclose($handle); 

}else {echo "File not found";}
share|improve this answer
    
OK, I am probably missing something here. The OP states "I want to NOT specify the file name" and "I was told to not have anything hard coded in my PHP script". But your answer has the filename very much hardcoded. Still, this has three upvotes?! Why? –  Gordon Aug 29 '12 at 21:18
    
Because, I believe, when I was answering the question 7 hours ago it was more about how to open/parse a CSV file..dont know about the upvotes though :) –  raidenace Aug 29 '12 at 21:23

Put your code into a function...

function open_file($file_name)
{
    if (!file_exists($file_name))
    {
        return false;
    }

    $csv_data = file_get_contents($file_name);
    $lines = explode("\n", trim($csv_data));

    $array = array();
    foreach ($lines as $line)
    {
        $array[] = str_getcsv($line);
    }

    return $array;
}
share|improve this answer

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