Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a multidimensional array of the following structure and I want to remove duplicates from it. For example if the ["amount"] is the same for two ["cities"] but the ["time"] is the same or different then I count this is a duplicate and want to remove this node from the array.

In the following example I want to remove completely node 0 from the array as the city and amount are the same as node 1. They are both Bristol (Bristol, United Kingdom) and 373 Even though the time is different being 17:15 and 17:16.

If the times are different as in this case then I would remove the later time.

array(8) {
  [0]=>
  array(3) {
    ["time"]=>
    string(5) "17:16"
    ["city"]=>
    string(33) "Bristol (Bristol, United Kingdom)"
    ["amount"]=>
    int(373)
  }
  [1]=>
  array(3) {
    ["time"]=>
    string(5) "17:15"
    ["city"]=>
    string(33) "Bristol (Bristol, United Kingdom)"
    ["amount"]=>
    int(373)
  }
  [2]=>
  array(3) {
    ["time"]=>
    string(5) "17:16"
    ["city"]=>
    string(37) "Wednesbury (Sandwell, United Kingdom)"
    ["amount"]=>
    int(699)
  }
  [3]=>
  array(3) {
    ["time"]=>
    string(5) "17:16"
    ["city"]=>
    string(45) "Wolverhampton (Wolverhampton, United Kingdom)"
    ["amount"]=>
    int(412)
  }
  [4]=>
  array(3) {
    ["time"]=>
    string(5) "17:15"
    ["city"]=>
    string(33) "Swansea (Swansea, United Kingdom)"
    ["amount"]=>
    int(249)
  }
  [5]=>
  array(3) {
    ["time"]=>
    string(5) "17:16"
    ["city"]=>
    string(39) "Watford (Hertfordshire, United Kingdom)"
    ["amount"]=>
    int(229)
  }
  [6]=>
  array(3) {
    ["time"]=>
    string(5) "17:14"
    ["city"]=>
    string(39) "Nottingham (Nottingham, United Kingdom)"
    ["amount"]=>
    int(139)
  }
  [7]=>
  array(3) {
    ["time"]=>
    string(5) "17:13"
    ["city"]=>
    string(31) "Dartford (Kent, United Kingdom)"
    ["amount"]=>
    int(103)
  }
}
share|improve this question

3 Answers 3

up vote 1 down vote accepted
<?php

$data = array(
    array(
        'time' => '17:16',
        'city' => 'Bristol',
        'amount' => 373,
    ),
    array(
        'time' => '18:16',
        'city' => 'Bristol',
        'amount' => 373,
    ),
    array(
        'time' => '18:16',
        'city' => 'Wednesbury',
        'amount' => 699,
    ),
    array(
        'time' => '19:16',
        'city' => 'Wednesbury',
        'amount' => 699,
    ),
);

$tmp = array();
foreach ($data as $row) {
    $city   = $row['city'];
    $amount = $row['amount'];

    if (!isset($tmp[$city][$amount]) 
        || $tmp[$city][$amount]['time'] < $row['time']) {
        $tmp[$city][$amount] = $row;
    }
}

$data = array();

foreach ($tmp as $cities) {
    foreach ($cities as $city) {
        $data[] = $city;
    }
}

var_dump($data);
share|improve this answer
    
Thanks this worked, I just had to change the $tmp[$city][$amount]['time'] < $row['time'] to $tmp[$city][$amount]['time'] > $row['time'] so that it kept the earlier time and the the later. –  Ben Paton Apr 14 at 18:25

Try this:

$result = array();
foreach ($array as $place) {
    if (!array_key_exists($place['time'], $result)) {
        $result[$place['time']] = $place;
    }
}
share|improve this answer

Create a 2-dimensional associative array, where one dimension is keyed off the city, and the other is the amount:

$assoc = array();
foreach ($data as $el) {
    $city = $el['city'];
    $amount = $el['amount'];
    if (isset($assoc[$city]) {
        $assoc[$city][$amount] = $el;
    } else {
        $assoc[$city] = array($amount => $el);
    }
}

// Now gather up all the elements back into a single array
$result = array();
foreach ($assoc as $cities)
    foreach ($cities as $city) {
        $result[] = $city;
    }
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.