I get this error, but the code works correctly.
Notice: Undefined offset: 1
Here is the php:
$surl = substr($_SERVER['REQUEST_URI'], 1);
$params = explode('/test.php?=', $_SERVER['REQUEST_URI']);
foreach ($params AS $key => $value) {$$key = $value;}
if ($_SERVER['REQUEST_URI']=='/test.php?='){
$link=$params[1];
}else{
$link=$params[1];
}
I don't think you've posted the whole stack trace, but it seems your $params array doesn't have 2 indices in it, which leads me to believe $_SERVER['REQUEST_URI'] does not include '/test.php?='. Print the request uri to see what it does contain, and explode using that as the delimiter.
Related
$X['high'] = 1234;
$var = array("X","high");
This is working:
$temp = $$var[0];
$temp = $temp[$var[1]];
echo $temp;
But this isn't working:
echo $$var[0][$var[1]];
Why? How can i make it works?
You should explain to php parser how you want this statement to be parsed:
echo ${$var[0]}[$var[1]];
Without brackets you will have:
php7
Notice: Array to string conversion in /in/cvZqc on line 5
Notice: Undefined variable: Array in /in/cvZqc on line 5
php5
Warning: Illegal string offset 'high' in /in/cvZqc on line 5
Notice: Array to string conversion in /in/cvZqc on line 5
Sample link.
We're running PHP 5.3.10-1ubuntu3.15 with Suhosin-Patch, and I just ran across the weirdest thing. I keep getting an Array to string conversion error.
Here is some code with line numbers:
115 $report['report'][$key]['report'] = array();
116 watchdog('ranking_report_field', 'key is a: ' . gettype($key), array(), WATCHDOG_NOTICE);
117 $report['report'][$key]['report'] = array(
'#markup' => "<p>No information available.</p><p>For questions, <a href='mailto:$emailAddr'>email</a> your account executive ($emailAddr).</p>",
);
Here are Drupal's (sequential) logs for those line numbers:
Notice: Array to string conversion in foo() (line 115 of /var/www/...
key is a: string
Notice: Array to string conversion in foo() (line 117 of /var/www/...
So far as I can tell there's no array to string conversion that should be taking place. Someone help me out with a second pair of eyes, please - or is this some kind of bug that just hit PHP?
One of the array keys is mapped to a string not an array. Here is a program for how such an error could occur.
<?php
$key = 0;
$report = array();
$report['report'] = array();
$report['report'][$key] = 'report';
// Array to string conversion error
$report['report'][$key]['report'] = array();
// what I assume you are expecting is
$report['report'][$key] = array();
$report['report'][$key]['report'] = array(); // no more notices
NOTE: at his time the OP has not included info for how the array is created
This question already has answers here:
Reference - What does this error mean in PHP?
(38 answers)
Closed 9 years ago.
Not sure how to fix this error
Notice: Undefined offset: 0 in C:\xampp\htdocs\streams.php on line 50
Notice: Undefined offset: 0 in C:\xampp\htdocs\streams.php on line 53
Notice: Undefined offset: 0 in C:\xampp\htdocs\streams.php on line 54
Code its referring to:
<?php
$members = array("hawkmyg");
$userGrab = "http://api.justin.tv/api/stream/list.json?channel=";
$checkedOnline = array ();
foreach($members as $i =>$value){
$userGrab .= ",";
$userGrab .= $value;
}
unset($value);
//grabs the channel data from twitch.tv streams
$json_file = file_get_contents($userGrab, 0, null, null);
$json_array = json_decode($json_file, true);
//get's member names from stream url's and checks for online members
foreach($members as $i =>$value){
$title = $json_array[$i]['channel']['channel_url'];
$array = explode('/', $title);
$member = end($array);
$viewer = $json_array[$i] ['stream_count'];
onlinecheck($member, $viewer);
$checkedOnline[] = signin($member);
}
Cannot figure out how to fix
The notice of an undefined offset occurs when one calls an array element with the specific index, for example, echo $array[$index], but the index is not defined within the array.
In your code, the array $members has one element (with index 0). So we're walking exactly one time through your foreach loop.
You're calling $json_array[$i]['channel']['channel_url'] where $i = 0, but $json_array[0] does not exist.
You should check the contents of $json_array using print_r() or var_dump().
I tested the script myself, and when I read the contents of the link http://api.justin.tv/api/stream/list.json?channel=,hawkmyg, it returned an empty JSON array. The channel 'hawkmyg' does not exist.
I tried the channel 'hatoyatv', and it just worked.
I am getting this PHP error:
PHP Notice: Undefined offset: 1
Here is the PHP code that throws it:
$file_handle = fopen($path."/Summary/data.txt","r"); //open text file
$data = array(); // create new array map
while (!feof($file_handle) ) {
$line_of_text = fgets($file_handle); // read in each line
$parts = array_map('trim', explode(':', $line_of_text, 2));
// separates line_of_text by ':' trim strings for extra space
$data[$parts[0]] = $parts[1];
// map the resulting parts into array
//$results('NAME_BEFORE_:') = VALUE_AFTER_:
}
What does this error mean? What causes this error?
Change
$data[$parts[0]] = $parts[1];
to
if ( ! isset($parts[1])) {
$parts[1] = null;
}
$data[$parts[0]] = $parts[1];
or simply:
$data[$parts[0]] = isset($parts[1]) ? $parts[1] : null;
Not every line of your file has a colon in it and therefore explode on it returns an array of size 1.
According to php.net possible return values from explode:
Returns an array of strings created by splitting the string parameter on boundaries formed by the delimiter.
If delimiter is an empty string (""), explode() will return FALSE. If delimiter contains a value that is not contained in string and a negative limit is used, then an empty array will be returned, otherwise an array containing string will be returned.
How to reproduce the above error in PHP:
php> $yarr = array(3 => 'c', 4 => 'd');
php> echo $yarr[4];
d
php> echo $yarr[1];
PHP Notice: Undefined offset: 1 in
/usr/local/lib/python2.7/dist-packages/phpsh/phpsh.php(578) :
eval()'d code on line 1
What does that error message mean?
It means the php compiler looked for the key 1 and ran the hash against it and didn't find any value associated with it then said Undefined offset: 1
How do I make that error go away?
Ask the array if the key exists before returning its value like this:
php> echo array_key_exists(1, $yarr);
php> echo array_key_exists(4, $yarr);
1
If the array does not contain your key, don't ask for its value. Although this solution makes double-work for your program to "check if it's there" and then "go get it".
Alternative solution that's faster:
If getting a missing key is an exceptional circumstance caused by an error, it's faster to just get the value (as in echo $yarr[1];), and catch that offset error and handle it like this: https://stackoverflow.com/a/5373824/445131
Update in 2020 in Php7:
there is a better way to do this using the Null coalescing operator by just doing the following:
$data[$parts[0]] = $parts[1] ?? null;
This is a "PHP Notice", so you could in theory ignore it. Change php.ini:
error_reporting = E_ALL & ~E_NOTICE & ~E_STRICT & ~E_DEPRECATED
To
error_reporting = E_ALL & ~E_NOTICE
This show all errors, except for notices.
my quickest solution was to minus 1 to the length of the array as
$len = count($data);
for($i=1; $i<=$len-1;$i++){
echo $data[$i];
}
my offset was always the last value if the count was 140 then it will say offset 140 but after using the minus 1 everything was fine
The ideal solution would be as below. You won't miss the values from 0 to n.
$len=count($data);
for($i=0;$i<$len;$i++)
echo $data[$i]. "<br>";
In your code:
$parts = array_map('trim', explode(':', $line_of_text, 2));
You have ":" as separator. If you use another separator in file, then you will get an "Undefined offset: 1" but not "Undefined offset: 0" All information will be in $parts[0] but no information in $parts[1] or [2] etc. Try to echo $part[0]; echo $part[1]; you will see the information.
I just recently had this issue and I didn't even believe it was my mistype:
Array("Semester has been set as active!", true)
Array("Failed to set semester as active!". false)
And actually it was! I just accidentally typed "." rather than ","...
The output of the error, is because you call an index of the Array that does not exist, for example
$arr = Array(1,2,3);
echo $arr[3];
// Error PHP Notice: Undefined offset: 1 pointer 3 does not exist, the array only has 3 elements but starts at 0 to 2, not 3!
I am facing a problem that undefined offset :1 in line 3. I can't understand that what type of error it is.
Can anyone tell me that why such error occurs in php
Undefined offset in line : 3
foreach ($lines as $line)
{
list($var,$value) = explode('=', $line); //line 3
$data[$var] = $value;
}
Your are getting PHP notice because you are trying to access an array index which is not set.
list($var,$value) = explode('=', $line);
The above line explodes the string $line with = and assign 0th value in $var and 1st value in $value. The issue arises when $line contains some string without =.
I know this an old question and the answer provided is sufficient.
Your are getting PHP notice because you are trying to access an array
index which is not set.
But I believe the best way to overcome the problem with undefined indexes when there are cases where you may have an empty array using the list()/explode() combo is to set default values using array_pad().
The reason being is when you use list() you know the number of variables you want from the array.
For example:
$delim = '=';
$aArray = array()
$intNumberOfListItems = 2;
list($value1, $value2) = array_pad(explode($delim, $aArray, $intNumberOfListItems ), $intNumberOfListItems , null);
Essentially you pass a third parameter to explode stating how many values you need for your list() variables (in the above example two). Then you use array_pad() to give a default value (in the above example null) when the array does not contain a value for the list variable.
This is caused because your $line doesn't contain "=" anywhere in the string so it contains only one element in array.list() is used to assign a list of variables in one operation. Your list contains 2 elements but as from data returned by implode, there is only one data. So it throws a notice.
A way to overcome that is to use array_pad() method.
list($var,$value) = array_pad(explode('=', $line),2,null);
by doing list($var, $value) php will expect an array of 2 elements, if the explode function doesn't find an equal symbol it will only return an array with 1 element causing the undefined offset error, offset 1 is the second element of an array so most likely one of your $line variables doesn't have an equal sign
This is due to the array. The array index is not showing due to this undefine offset error will come...
So please check the array with print_r function.
The list language construct is used to create individual variables from an array. If your array doesn't have enough elements for the number of variables you are expecting in the list call, you will get an error. In your case you have 2 variables so you need an array with 2 items - indexes 0 and 1.
http://php.net/manual/en/function.list.php
Solution:
$lines = array('one' => 'fruit=apple', 'two' => 'color=red', 'three' => 'language');
foreach ($lines as $line)
{
list($var,$value) = (strstr($line, '=') ? explode('=', $line) : array($line, ''));
$data[$var] = $value;
}
print_r($data);
Try this one..
For reference
http://in1.php.net/manual/en/function.list.php
http://in1.php.net/manual/en/function.explode.php